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Gut Microbiota Play Pivotal Role in Disordered Eating Tied to Repeated Dieting

Repeated cycles of strict dieting followed by overeating are not just frustrating — they actively rewire your brain and gut in ways that make breaking the habit even harder. Researchers found that yo-yo dieting alters gut bacteria so profoundly that it drives powerful cravings for high-calorie, highly processed foods.1 In other words, your gut starts sending your brain signals to binge, even when you’re not physically hungry.

Binge-eating disorder, characterized by consuming unusually large amounts of food in a short time with a sense of loss of control, affects millions worldwide and is linked to obesity, depression, and metabolic disease. Symptoms often include eating rapidly, eating past fullness, and feeling guilt or distress afterward. Left unaddressed, it contributes to diabetes, cardiovascular disease, and liver damage.

The research reveals a biological feedback loop: the more you restrict and then indulge, the more your gut microbiota changes to support those destructive eating patterns. Evidence published in Neuroscience Applied shows similar patterns in humans, where people with binge-eating disorder have lower levels of beneficial bacteria like Akkermansia and Bifidobacterium, alongside higher levels of species tied to inflammation and poor metabolic health.2

These microbial shifts influence dopamine systems, affecting mood, impulse control, and your brain’s reward circuitry — all of which make it harder to resist high-reward foods. This emerging picture changes the way you should think about dieting and eating behavior.

It’s not just about willpower or “bad habits” — there’s a biological push-and-pull between your gut and brain shaping what, when, and how much you eat. Understanding that connection is the first step toward strategies that interrupt this cycle and restore balance, which is exactly what the first study explores in detail.

Yo-Yo Dieting Reshapes Your Gut and Brain to Drive Cravings

In a study published in Advanced Science, researchers examined how repeated food restriction followed by binge eating affects the gut-brain axis in animal models.3 The goal was to determine whether these eating cycles physically change the gut microbiome and the brain’s reward systems in ways that fuel cravings for high-calorie foods.

• Researchers observed changes in gut bacteria linked to stronger junk food cravings — Dieting and binging shifted the gut microbiota toward species that promote fat storage and inflammation. These changes altered the chemical messages traveling from the gut to the brain, increasing activity in brain regions tied to reward and compulsive eating. This means your gut starts signaling your brain to seek more calorie-dense, ultraprocessed foods, even when you’re not hungry.

• Diet cycles made food cues harder to resist — Animals exposed to yo-yo dieting became far more responsive to food-related triggers — like the smell or sight of calorie-rich food — and were quicker to overeat. This heightened reactivity didn’t fade with time, suggesting that once the gut-brain loop is altered, the drive to binge remains strong without targeted intervention.

• Shifts in gut chemistry affected brain reward pathways — The research identified that dieting-binging cycles reduced beneficial bacteria that support balanced dopamine and serotonin activity in the brain. Lower levels of these bacteria disrupted mood regulation and impulse control, reinforcing the urge to overeat.

• Gut bacteria from yo-yo dieters trigger junk food cravings — When gut bacteria from mice that had gone through repeated yo-yo dieting were transplanted into healthy mice that had never eaten a Western diet, the healthy mice developed the same strong craving for junk food — showing that the unbalanced gut bacteria were driving the overeating.

• Targeting the microbiome could interrupt the craving cycle — The findings suggest that restoring beneficial gut bacteria could help normalize brain reward pathways, reduce inflammation, and make resisting junk foods easier. This offers a biological path to recovery that goes beyond willpower alone.

Human Gut Bacteria Shape How Binge Eating Starts — and Why It Gets Worse

Research published in Neuroscience Applied explored how gut bacteria influence binge-eating disorder through their effects on brain signaling related to satiety, reward, and impulse control.4 The study concluded that poor diet quality and erratic eating patterns in BED significantly disrupt the balance and diversity of gut microbes — and these shifts feed directly into behaviors that keep the disorder going.

• Binge eating patterns reduce microbial diversity and fuel inflammation — Individuals with binge-eating disorder tend to consume large volumes of ultraprocessed foods in short periods of time. These binge-eating episodes, especially when followed by food restriction, deplete beneficial bacteria and make the microbial environment more unstable. This volatility leads to higher levels of gut and systemic inflammation, which weakens the gut lining and disrupts normal brain communication.

• The gut’s influence on brain reward systems makes binge eating harder to stop — The gut microbiota produces key metabolites that impact dopamine and serotonin signaling — the same chemicals involved in reward, motivation, and mood. When microbial diversity drops, so does the production of these compounds. This alters the way your brain perceives pleasure from food, increasing cravings and making it harder to stop eating once a binge begins.

• Impaired satiety signals mean food doesn’t register as “enough” — Many people with binge-eating disorder report eating past fullness or never feeling truly satisfied. Researchers suggest this stems in part from microbiota disruption that interferes with both local gut signaling and brain responses to satiety. Some bacterial byproducts normally help regulate fullness, and when these are missing, it becomes harder to sense when to stop.

• Emotional eating and impulsivity also connect back to your gut — People with binge-eating disorder often eat in response to stress or negative emotions, and this too has roots in the microbiota. The study noted that inflammation caused by gut imbalances affects the brain’s stress response system and increases emotional reactivity while reducing impulse control.

How to Repair Your Gut and End the Binge-Restrict Cycle for Good

If you want lasting freedom from the trap of restrictive dieting followed by overeating, you need to stop thinking in terms of “on” and “off” plans and start focusing on building eating habits your gut and metabolism thrive on year-round. The state of your gut will determine how well your body handles different foods — and ignoring its signals will keep you stuck.

1. Check your gut health before making big diet changes — Pay attention to how your digestion reacts after meals. If you regularly feel bloated, go days without a bowel movement, have frequent loose stools, or react badly to certain foods, your gut is likely too inflamed or imbalanced to handle complex carbs right now. Instead of guessing, use your symptoms as feedback. Your gut is telling you what it can handle — and what’s setting it off.

2. Avoid fiber-heavy carbs until your gut is stable — When your gut lining is irritated or dominated by harmful bacteria, even “healthy” high-fiber foods like whole grains, leafy greens, and cruciferous vegetables ferment quickly, causing more bloating, gas, and inflammation. In the early healing stage, stick to gentle, easy-to-digest carbs like whole fruits and white rice. Once your digestion is smooth and regular, you can slowly bring back more complex carbs without triggering flare-ups.

3. Eliminate ultraprocessed carbs completely — If it comes in a bag, box, or bar with ingredients you can’t pronounce, it’s not doing your body any favors. Vegetable oils rich in linoleic acid (LA) and processed carbs like cookies, breakfast cereals, store-bought baked goods, and granola bars damage your gut and drain your energy over time. Replace them with carbs from real, whole foods that your body uses for repair and energy.

4. Fuel your cells with the right amount of carbs — Your body runs best on glucose, and glucose comes from carbohydrates. If you’ve been low-carb or keto, your mitochondria — the tiny engines in your cells — have been running on suboptimal fuel, slowing recovery and stressing your system.

Aim for about 250 grams of healthy carbs daily from sources like fresh fruit and white rice. When your gut is ready, add root vegetables, then legumes, and eventually well-tolerated whole grains to keep your metabolism strong.

5. Repair the gut damage left behind by yo-yo dieting — After your digestion has stabilized, it’s time to rebuild the gut environment that repeated dieting has damaged. Yo-yo dieting doesn’t just confuse your metabolism — it reshapes your gut microbiome in ways that make it harder to resist junk food and easier to gain weight. The solution is to repopulate your gut with the right bacteria strains, especially those that boost butyrate production.

Butyrate is a powerful short-chain fatty acid that helps heal your gut lining, lowers inflammation, and improves nutrient absorption. When your gut makes more butyrate, it becomes a stronger barrier against toxins and a better foundation for long-term health. This kind of environment helps shift the balance back in favor of the good microbes — the ones that keep cravings down and energy up. But don’t skip steps: you need to fix your gut terrain first, or even the best probiotics won’t take hold.

FAQs About Gut Microbes and Yo-Yo Dieting

Q: How does repeated dieting affect my gut and brain?
A: Yo-yo dieting — constantly switching between restrictive eating and binging — changes the balance of your gut bacteria in harmful ways. These changes directly affect your brain’s reward system, making you crave junk food even when you’re not hungry and weakening your ability to stop once you start eating.

Q: What role does my gut play in binge-eating disorder?
A: In binge-eating disorder, your gut microbiome becomes less diverse and more inflamed, which disrupts signals to your brain that control fullness, mood, and impulse control. This leads to stronger cravings, emotional eating, and a sense of not feeling satisfied after meals.

Q: Why do some people overeat even when they’re full?
A: A damaged gut interferes with your brain’s ability to register satiety. When key gut bacteria are missing, your body doesn’t produce enough of the chemicals that tell your brain you’ve had enough — so you keep eating, often past the point of comfort.

Q: Can gut bacteria from others affect your own eating behavior?
A: Yes. In one study, mice given gut bacteria from others with a history of dieting and binging developed strong cravings for junk food — even though they had never eaten a Western diet themselves. This shows how powerful and transferable your gut environment is when it comes to food behavior.

Q: What’s the best way to break the binge-restrict cycle for good?
A: Start by calming your gut with easy-to-digest whole foods and removing ultraprocessed foods. Once your digestion improves, support your microbiome with probiotics that promote butyrate — a compound that heals your gut lining and reduces inflammation. This creates a strong foundation that helps you regain control over your cravings and supports sustainable, long-term eating habits.

How to Stay Motivated to Exercise

Every January, gyms fill up with new members, and by March, many of them have vanished. It’s tempting to blame willpower, as if some people are simply born with more of it. But the research tells a very different story. If sheer discipline were the deciding factor, you’d expect the people who stick with exercise to simply be more rigid with themselves than the people who quit.

That’s not always what separates them. What actually determines whether a workout habit survives has far more to do with how the routine feels in the moment than how much grit you bring to it. This isn’t about toughness; it’s about neural and behavioral momentum — the brain treats a repeated action as easier to repeat again. A workout that leaves you depleted, bored or discouraged is sabotaging you at a level no amount of good intentions can fix.

The research on why some people keep exercising for years while others fall off within weeks points to a different set of levers, ones that have nothing to do with toughness and everything to do with how you structure your routine, how you respond when you miss a day, and whether you’ve chosen movement that actually fits your life.

Your Workout Has to Feel Worth Repeating

An overview of exercise motivation published by News Medical examines why some people keep moving for years while others abandon a routine within weeks.1 It describes adherence as more than simply following a plan. It’s the “dynamic alignment” between your attitudes and your actual exercise behavior. Adherence isn’t about willpower matching a plan on paper — it’s about your daily habits actually lining up with what you believe matters, day after day.

A workout plan only works when it fits into your life often enough to become familiar. Knowing that movement supports long-term health doesn’t automatically make you want to lace up your shoes today. Instead, certain experiences make a person return: enjoyment, personal control, confidence, and supportive surroundings.

• Motivation predicts whether you remain active, but the type matters — Autonomous motivation means you choose an activity because it feels enjoyable, personally meaningful or connected to a value you care about. Outside pressure, such as guilt, fear, appearance concerns, or another person’s expectations, creates a far weaker foundation.

Identified regulation, a term for exercising because you recognize its personal value, appears especially useful when you begin a routine. Intrinsic motivation, meaning you enjoy the activity for its own sake, becomes more important as the months pass.

This means a walk with your dog, a dance class or a strength routine that makes you feel capable has more staying power than a workout you force yourself to endure. Think of it like this: identified regulation is exercising because you know it’s good for your heart — a reason you’ve accepted intellectually. Intrinsic motivation is exercising because the walk itself feels good, no reasoning required.

• Your immediate experience helps decide whether you return — Positive feelings during a workout shape what you expect future exercise to feel like. A better mood, pleasant bodily sensations, social interaction, and a sense of accomplishment create an immediate reward. Your brain begins to connect movement with something desirable instead of another draining obligation.

By contrast, exercise often drops off when the immediate costs feel too high. Fatigue, discomfort, lack of time, and a routine that exceeds your current capacity can produce frustration or a sense of incompetence.

• Confidence grows when you follow through — Among novice fitness-club members, regular attendance over one year was most strongly associated with enjoyment, self-efficacy for sticking with exercise, and social support.2 Self-efficacy simply means your belief that you can do the task and continue despite ordinary setbacks.

Build that belief with evidence, not harsh self-talk. Set a small weekly target that fits your current life, such as three 15-minute walks or two brief resistance-band sessions. Mark each completed session on a calendar. That visible record turns effort into proof of progress and gives you a low-pressure challenge to complete each week. One of the fastest ways to build that confidence is to control the difficulty yourself instead of following someone else’s script.

• Control over intensity helps protect motivation — This is exactly where self-paced control comes in. Personalized plans that account for your preferences, fitness level, and schedule make it easier to adjust difficulty before a workout becomes overwhelming.3 Self-paced exercise lets you control the intensity, which supports more positive feelings during the activity. You don’t need to match another person’s speed, distance or workout length to gain value from movement.

Exercise variety also reduces boredom, particularly when you’re new to working out. Rotate between walking, light strength work, cycling, swimming, mobility drills, or another activity you look forward to. Keep the process simple: choose one movement you enjoy, schedule the next session, and record that you showed up. Those small successes create a routine that feels like yours.

• Your environment can either reduce friction or multiply it — Encouragement from family, friends, and peers is linked to higher physical-activity levels and stronger follow-through. Group activities and welcoming social settings reduce isolation and increase commitment. A supportive exercise partner doesn’t need to train beside you every day; even a brief check-in can make your goal feel more real.

Practical details matter too. Flexible hours, varied options, supportive staff, and a comfortable setting encourage regular attendance, while unsafe spaces, transportation barriers, and poorly maintained facilities discourage it.

How You Reset After a Slip Matters

Research on exercise motivation and habit formation shows that harsh self-judgment often keeps you stuck, while a calmer response to missing a workout (or several) helps you restart. Self-compassion means giving yourself the same support you would offer a friend.

In a self-compassion intervention for people with prediabetes, participants practiced mindfulness and wrote themselves a supportive letter after setbacks.4 Instead of asking, “Why did I ruin this?” ask, “What is one realistic action I would encourage a friend to take today?”

• A setback becomes less powerful when you reframe it — Research in breast cancer survivors linked self-compassion with physical activity through emotion regulation.5 Emotion regulation is simply how you handle difficult feelings — whether you let frustration steer your next move, or you steer it instead.

Cognitive reappraisal, or looking at a situation through a more useful lens, was associated with more physical activity. Expressive suppression, meaning you bottle up frustration or disappointment, was associated with less. A missed week of exercise doesn’t need a dramatic explanation. Call it an interruption, identify what disrupted your schedule and choose a smaller return point, such as a 10-minute walk or one set of bodyweight exercises.

• Exercise habits develop at different speeds — A 2024 meta-analysis found that health habits took a median of about 59 to 66 days to form. Individual results varied widely, from roughly four to 335 days.6 That range should put to rest any promise that everyone can build a lasting habit on the same 21-day or 30-day timeline. Frequency, timing, personal choice, and morning routines all influenced habit strength. Track your own pattern instead of racing an arbitrary deadline.

• Your past pattern is one of the strongest predictors of your next one — A longitudinal study that tested a physical-activity maintenance model found that prior exercise frequency was the strongest predictor of future adherence, with past experience close behind.7

People who paired strong intentions with regular activity were more likely to preserve or increase future exercise. This is permission to stop chasing heroic workouts and start valuing small, repeated ones instead. Even a short routine done consistently gives your brain evidence that movement belongs in your week.

• Interest and safety shape the routine you’ll actually keep — Research on exercise preferences among people with depression found that “interestingness” ranked as the most important feature, followed by safety.8 Participants favored activities that felt fun, safe, and realistic three to four times each week. That finding gives you permission to stop copying workouts that don’t fit you.

Try a small personal experiment for two weeks: choose three forms of movement, rate each from 1 to 5 for interest, comfort, and how you feel afterward, then keep the highest-scoring option in your regular schedule.

A plan built around your real response is harder to abandon than one based on someone else’s idea of discipline. Across conditions as different as prediabetes, cancer recovery and Parkinson’s disease, the same pattern keeps showing up: how kindly you treat yourself under stress predicts whether you keep moving.

• Self-compassion also supports motivation in people facing illness — Parkinson’s disease is the latest example. A study of people with Parkinson’s disease found that stronger current motivation to exercise was associated with greater self-compassion, higher earlier motivation and lower depression.9 Self-compassion won’t dissolve every barrier Parkinson’s creates, but how you respond internally to those barriers still shapes whether you keep showing up.

How to Make Your Exercise Routine Easier to Return To

Even a perfectly designed routine won’t survive without a plan for the days it falls apart. Workout routines break down when exercise feels punishing, disconnected from your preferences or too difficult to fit into your real life. For lasting fitness success, build a plan that gives you regular successes, leaves enough energy for tomorrow and makes restarting simple after an interruption.

1. Choose movement you genuinely look forward to — Start with the question, “What type of movement feels interesting enough to repeat?” If you enjoy music, use a dance workout or a brisk walk with a favorite playlist. If you prefer quiet, choose a neighborhood walk, swimming or simple strength work at home.

Give each option a two-week trial, then rate your interest, comfort, and mood afterward from 1 to 5. Keep the activity with the highest total. Your own scorecard turns vague motivation into a clear decision.

2. Make your starting workouts small enough to finish — Begin with a target that feels manageable: a 10-minute walk, one lap around the block, five minutes of mobility work, or one set of resistance-band exercises. Shorter sessions give you repeated proof that you follow through, which strengthens your confidence that you can keep a promise to yourself.

I recommend that you create a backup version for days when your regular workout doesn’t fit. Your usual plan might be a 30-minute or one-hour walk, while your backup plan is 15 minutes outside. On busy or low-energy days, complete the backup version instead of skipping movement altogether.

3. Exercise where your life already happens — Reduce the number of decisions between you and movement. If you walk after dinner, leave your shoes by the door. If you use resistance bands, keep them where you first see them in the morning. If you prefer a gym, choose a location and time that fit your normal travel route.

Your environment either adds friction or removes it. Make the next step obvious: lay out your clothes, keep a walking route you know and love, or add your workout session to your calendar as a nonnegotiable appointment with yourself.

4. Use visible progress instead of waiting for dramatic results — Track actions, not only body changes. Mark every completed session on a calendar, log your walks, or write down the number of times you chose your backup workout instead of quitting. Goal setting and progress monitoring act as tools that strengthen your confidence and consistency.

Give yourself a weekly challenge that matches your current level. For example, aim for three movement checkmarks this week. Once that feels stable, add one more next week. Your goal is a pattern you trust yourself to repeat.

5. Treat missed days as information, not failure — After a skipped workout, write one sentence about what got in the way: poor sleep, a packed schedule, soreness, travel, or a plan that asked too much. Then choose the smallest next session and put it on your calendar before the day ends. This replaces self-criticism with a specific restart.

Self-compassion supports self-regulation by reducing difficult emotions and encouraging more adaptive coping. Talk to yourself as you would talk to a friend who had a rough week. A missed session doesn’t cancel your progress. Your next step to get back on track is what rebuilds momentum.

FAQs About Staying Motivated to Exercise

Q: Why do people quit exercising even when they know it’s good for them?
A: Knowing that exercise supports long-term health doesn’t always make a routine feel worth doing today. People are more likely to stop when workouts leave them bored, overly tired, discouraged or pressed for time. Enjoyment, personal control, confidence, and social support create a stronger foundation than guilt, fear or pressure from others.

Q: What type of exercise routine is easiest to maintain?
A: The best routine is one that fits your interests, current fitness level and schedule. A walk with your dog, swimming, cycling, dancing, or resistance-band exercises at home can work better than a demanding plan you dread. Research on people with depression found that “interestingness” was the top exercise preference, followed by safety, with participants favoring activities that felt fun, safe, and realistic three to four times a week.10

Q: How do I build confidence to stick with exercise?
A: Start with a target you can realistically complete, then track it. Among novice fitness-club members, regular attendance over one year was strongly linked to enjoyment, confidence in sticking with exercise, and social support.11 A calendar checkmark, a walking log or a weekly movement goal gives you visible proof that you followed through.

Q: How long does it take to make exercise a habit?
A: A 2024 meta-analysis found that health habits took a median of about 59 to 66 days to form, but individual timelines ranged from roughly four to 335 days.12 Your habit develops through repetition, not through a fixed deadline. Frequency, timing, personal choice, and morning routines all influenced how strongly habits formed.

Q: What should I do after I miss a workout?
A: Treat the missed session as information, not failure. Identify what interrupted your plan, such as poor sleep, travel, soreness, or an unrealistic schedule, then choose the smallest next action. Research on self-compassion found that reframing a setback in a more constructive way was linked to greater physical activity, while bottling up disappointment was linked to less activity.13 Your next return to movement matters more than criticizing yourself for the lapse.

Test Your Knowledge with Today’s Quiz!
Take today’s quiz to see how much you’ve learned from yesterday’s Mercola.com article.

Which strategy helps make a supplement routine easier to follow?

Taking several pills at strict, scheduled times
Choosing products with a stronger smell
Adding support to meals already eaten
Adding a supplement to a familiar meal gives the habit a daily cue, making it easier to remember and repeat without a separate routine. Learn more.
Replacing food with a supplement plan

Why You Should Never Take OTC Painkillers While on Antibiotics

Every year, 4.95 million deaths worldwide are tied to antimicrobial resistance.1 That figure is not only staggering — it makes drug-resistant infections one of the leading threats to human survival today. Antibiotic overuse is the obvious culprit, but research from the University of South Australia shows a new, overlooked danger hiding in plain sight: common over-the-counter (OTC) painkillers like ibuprofen and acetaminophen turbocharge bacteria’s ability to resist antibiotics.

Instead of being wiped out, bacteria adapt and become stronger, raising the risk that ordinary infections will linger longer, recur more often, or require more aggressive treatment. The danger is amplified in people who take multiple medications at once, such as older adults in nursing homes or those managing chronic conditions. Each added drug creates another opportunity for bacteria to evolve into strains that resist even the most powerful antibiotics.

This growing crisis highlights the importance of looking beyond antibiotic overuse alone. Understanding the hidden risks of mixing common medications is a key step in protecting your health and making better choices the next time you reach for a pill.

OTC Painkillers Fuel Antibiotic Resistance

A paper published in npj Antimicrobials and Resistance examined how nine non-antibiotic medications — including acetaminophen, ibuprofen, diclofenac, tramadol, metformin, and others — affect bacteria when taken alongside antibiotics.2 These drugs are widely used, including in nursing homes and hospitals where people are often managing multiple chronic conditions. Researchers wanted to know if these everyday medications make it easier for bacteria to become resistant to antibiotics, and the results were troubling.

• Painkillers helped bacteria adapt faster — The study focused on E. coli, bacteria that often cause urinary tract infections. When E. coli was exposed to ciprofloxacin, a common antibiotic, and combined with drugs like acetaminophen or ibuprofen, the bacteria didn’t just survive — they adapted and multiplied. This means if you’re taking a painkiller while on antibiotics, your infection could become harder to treat, leaving you at risk for longer-lasting or recurring illness.

• Resistance levels spiked dramatically — The data showed up to a 32-fold increase in resistance in some strains, and in certain combinations, resistance shot up 64-fold. These numbers represent a massive leap in how quickly bacteria learn to dodge the effects of medicine. This translates into infections that could linger despite treatment, forcing you into stronger or longer antibiotic courses that strain your body and gut health.

• Certain drug pairings produced the strongest effect — Ibuprofen and acetaminophen — two of the most common over-the-counter pain relievers — were singled out as especially dangerous when taken with ciprofloxacin.

In fact, bacteria exposed to these combinations didn’t just resist one drug — they also became resistant to other antibiotics, like levofloxacin and ceftazidime. That’s called “cross-resistance,” and it means one mistake in mixing drugs today could limit your treatment options tomorrow.

• Older adults face the highest risk — The research pointed out that people in residential aged care facilities are especially vulnerable. Many take multiple medications every day — a situation called polypharmacy. Add in antibiotics for common infections, and you’ve got the perfect environment for resistant bacteria to flourish. If you’re caring for an older family member, this highlights why medication combinations deserve close attention.

Antibiotics Combined with OTC Painkillers Gave Bacteria a Survival Advantage

When bacteria were exposed to both antibiotics and painkillers, they activated survival systems that worked like tiny drug expulsion units inside their cell walls. In simple terms, the microbes pushed the antibiotics back out before the drugs had a chance to do damage. Once these systems switched on, the bacteria didn’t just survive — they became tougher, multiplying even in the presence of strong medications.

• Mutations locked resistance into place — Researchers also found mutations in key bacterial genes that locked in the resistance. Think of it like bacteria rewriting their instruction manual, making sure future generations inherit this survival trick. Once that happens, antibiotics lose their edge, and your treatment choices shrink.

• Multiple antibiotics became less effective — Once resistance took hold, it spread to several drug classes. Resistance wasn’t just limited to ciprofloxacin but also included drugs like amoxicillin. This matters for you because it means one resistant infection today could influence your options for entirely different infections in the future.

• Key takeaway for your health — This research makes it clear: taking OTC painkillers at the same time as antibiotics isn’t harmless. It actively fuels bacterial evolution, creating resistant strains that threaten not just you but your family, your community, and even hospital systems. That means every pill choice matters, and avoiding risky combinations gives you the power to protect your health.

How to Protect Yourself from Dangerous Drug Combinations

If you’ve ever reached for a painkiller while on antibiotics, you probably didn’t think twice. But the truth is, those small choices stack up. Mixing certain medications doesn’t just blunt the power of your prescription — it feeds resistant bacteria that stick around, spread, and make future infections harder to treat. The good news is that you’re not powerless. By taking a few simple steps, you put yourself back in control and lower your risk of fueling drug resistance.

1. Use antibiotics only when absolutely necessary — If you’re tempted to take antibiotics for every cough, cold, or sore throat, stop and think. Many of those illnesses are caused by viruses, and antibiotics only work against bacteria. Using them when you don’t need them doesn’t help you heal faster — it just trains bacteria to fight harder next time. Ask yourself: “Do I truly need this round of antibiotics, or is my body capable of recovering on its own?”

2. Avoid meats that contain antibiotic residues — If you eat conventional meat from grocery stores or fast-food chains, you’re also swallowing small doses of antibiotics fed to animals in concentrated animal feeding operation (CAFOs). This low-level exposure fuels resistance in your gut bacteria. Choosing pasture-raised or organic meats protects your microbiome from that constant drip of drug residues and reduces your share of the antibiotic burden.

3. Limit OTC painkillers and try natural options first — If you’ve been prescribed an antibiotic, avoid pairing it with ibuprofen, acetaminophen, or similar painkillers unless absolutely necessary. Not only do these drugs accelerate antibiotic resistance, but they also carry their own risks — acetaminophen stresses your liver, while ibuprofen irritates your stomach and kidneys.

For pain relief, try safer, natural approaches first: massage, acupuncture, gentle exercise, turmeric or curcumin for joint pain, magnesium for muscle cramps, or herbal remedies for chronic discomfort. These strategies ease pain without sabotaging your antibiotics or overloading your body.

4. Turn to natural antibacterial remedies when appropriate — If you’re looking for alternatives that don’t trigger resistance, certain natural remedies help. For instance, medicinal honey has been used for centuries to kill harmful bacteria, and oregano oil has strong antibacterial properties as well. If you’re fighting a mild infection or want to support your body between prescriptions, these remedies give you safe options that don’t train bacteria to outsmart antibiotics.

5. Rethink long-term medication habits — If you’re taking multiple prescriptions or OTC medications every day, step back and look at the bigger picture. The more drugs you rely on, the greater your chances of unexpected interactions, weakened gut health, and resistant bacteria taking hold. Simplifying your routine and leaning on lifestyle practices — like improving sleep, managing stress, moving your body, avoiding toxins and eating real food — reduces your dependence on pills.

This shift helps your body heal naturally, lowers your risk of resistance, and keeps your treatment options open if you ever face a serious infection. By making these choices, you not only protect yourself — you’re also protecting your loved ones and community from the spread of resistant infections. Every smart step you take adds up to a safer, healthier future.

FAQs About the Risks of OTC Painkillers Taken with Antibiotics

Q: Why is it risky to take OTC painkillers while on antibiotics?
A: Mixing common painkillers like ibuprofen or acetaminophen with antibiotics such as ciprofloxacin fuels bacterial resistance. Research shows bacteria adapt faster, survive longer, and even pass resistance on to future generations when exposed to this drug combination.

Q: What types of resistance did the study find?
A: The study revealed resistance increases up to 32-fold and, in some cases, 64-fold when antibiotics and painkillers were combined. This didn’t just affect one drug — it spread across multiple antibiotic classes, including levofloxacin, minocycline, and amoxicillin.

Q: Who is at the greatest risk from these drug interactions?
A: Though anyone can be affected, older adults in long-term care facilities are most vulnerable. Many take multiple medications daily, including antibiotics, creating the perfect breeding ground for resistant bacteria to spread.

Q: How do bacteria become resistant in this situation?
A: The study found that bacteria activate internal systems that push antibiotics back out of their cells before the drugs cause harm. They also mutate key genes, locking resistance into future generations of bacteria.

Q: What can I do to protect myself from fueling resistance?
A: You can lower your risk by:

• Only using antibiotics when absolutely necessary.
• Avoiding CAFO meats that contain antibiotic residues.
• Limiting OTC painkillers and using natural approaches first (massage, turmeric, magnesium, acupuncture).
• Considering natural antibacterial remedies like medicinal honey and oregano oil.
• Rethinking daily medication habits and focusing on lifestyle strategies to strengthen your health.

Unlocking Nature’s Healing Potential — The Power of DMSO and Botanical Combinations

Over the last year, I’ve worked to bring the public’s attention to dimethyl sulfoxide (DMSO) a forgotten natural therapy which rapidly treats a wide range of conditions and that many studies have shown is very safe (provided it’s used correctly), and most importantly (thanks to the 1994 DSHEA act which legalized all natural therapies)1 is now readily available.

Since I believe DMSO has immense potential to offer the medical community and individual patients, I’ve diligently worked to compile evidence that best supports its rediscovery. As such, throughout this series, I’ve presented over a thousand studies that DMSO effectively treats:

• Strokes, paralysis, and many other neurological or circulatory disorders (discussed here).

• Chronic pain and tissue injuries, such as sprains, burns and non-healing wounds (discussed here).

• Numerous autoimmune and contractile disorders (discussed here).

• Head conditions, such as tinnitus, vision loss, dental problems, and sinusitis (discussed here).

• Internal organ diseases, such as pancreatitis, infertility, liver cirrhosis, and endometriosis (discussed here).

• Skin conditions, such as varicose veins, acne, hair loss, ulcers, and skin cancer (discussed here).

• Many different cancers (discussed here).

• Lung disorders, including asthma, COPD, pulmonary fibrosis, and cystic fibrosis (discussed here).

• Infections, including chronic bacterial infections, herpes, and shingles (discussed here).

Statins, Cholesterol, and the Real Cause of Heart Disease

Frequently in science, fundamental facts are altered to create a profitable industry. Previously, I showed how this occurs with blood pressure: rather than causing arterial damage, high blood pressure is a response to arterial damage that ensures damaged arteries can still deliver blood to the tissues.

In turn, rather than helping patients, aggressively lowering blood pressure can be quite harmful. In this article, I will look at the other half of the coin, statins, cholesterol, and heart disease — something that harms so many Americans, it was poignantly discussed by comedian Jimmy Dore.

First, they scammed you on skin cancer when the sun is good for you.Now, they’re scamming you again on cholesterol to sell you a lifetime medication.This entire narrative of cholesterol being the villain in heart disease was built on a lie.What doctors fail to tell you is… pic.twitter.com/bhhkFBBDbb— A Midwestern Doctor (@MidwesternDoc) September 11, 2024
Video Link

Cholesterol and Heart Disease

Frequently, when an industry harms many people, it will create a scapegoat to deflect blame. Once this happens, a variety of other sectors will jump on the bandwagon and create an unshakable societal dogma.

For example, the health of a population (or if they are being poisoned by environmental toxins) determines how easily an infectious disease can sweep through a population and who is susceptible to it, but reframing infectious diseases as a “deficiency of vaccines” it both takes the (costly) onus off the industries to clean up the society and simultaneously allows them to get rich promoting the pharmaceutical products that “manage” each epidemic and the even larger epidemic of chronic diseases caused by those vaccines (discussed in detail here).

Note: The major decline in infectious illness credited to vaccines was actually the result of improved public sanitation; when the data are examined (e.g., for smallpox) those early vaccination campaigns made outcomes worse, not better.

In the 1960s and 1970s, a debate emerged over the causes of heart disease. On one side, John Yudkin effectively argued that the sugar being added to our food by the processed food industry was the chief culprit.1 On the other side, Ancel Keys (who attacked Yudkin’s work) argued that it was due to saturated fat and cholesterol.2

Note: Leaders in the field of natural medicine have made a strong case that this spike came from the mass adoption of seed oils3 (which thanks to our unprecedented political climate is at last being discussed on the mainstream news4). Likewise, some attribute this increase to the advent of water chlorination.5

Ancel Keys won, Yudkin’s work was largely dismissed, and Keys became nutritional dogma. A large part of Keys’ victory was based on his study of seven countries (Italy, Greece, Former Yugoslavia, Netherlands, Finland, America, and Japan), which showed that as saturated fat consumption increased, heart disease increased in a linear fashion.

However, this result was simply a product of the countries Keys chose (e.g., if Finland, Israel, the Netherlands, Germany, Switzerland, France, and Sweden had been chosen, the opposite correlation would have been found).

Fortunately, it’s gradually become recognized that Keys did not accurately report his data. For example, an unpublished 56-month randomized study of 9,423 adults living in state mental hospitals or a nursing home (which made it possible to rigidly control their diets) that Keys directed was unearthed.6

It found that replacing half of one’s animal (saturated) fats with seed oil (e.g., corn oil) lowered their cholesterol, but for every 30 points it dropped, their risk of death increased by 22% (which roughly translates to each 1% drop in cholesterol raising the risk of death by 1%).

Note: Another (unpublished) study from the 1970s (of 458 Australians), found that partially replacing dietary saturated fat with seed oils increased the risk of dying by 17.6%.7

Likewise, one of the most prestigious medical journals in the world published internal sugar industry documents.8 They showed the sugar industry had used bribes to make scientists place the blame for heart disease on fat so Yudkin’s work would not threaten the sugar industry.9 Remarkably, it is now generally accepted that Yudkin was right, but nonetheless, our medical guidelines are still largely based on Keys’ work.

Likewise, the need to lower cholesterol to prevent heart disease is still a dogma within cardiology,10,11,12,13,14,15 despite things like this Lancet study16 which in 1986 showed:

“During 10 years of follow-up from Dec 1, 1986 to Oct 1, 1996, a total of 642 participants died. Each 1 mmol/L increase in total cholesterol corresponded to a 15% decrease in mortality (risk ratio 0—85 [95% Cl 0·79—0·91]).”

Statins Marketing

Once a drug is identified that can “beneficially” change a number, medical practice guidelines will inevitably shift to prioritizing treating that number in more and more people. For example, this is what happened with blood pressure:

Prior to statins, it was difficult to reliably lower cholesterol, but once they were introduced, research rapidly emerged arguing for a greater and greater need to lower cholesterol (and put more people on statins).

Note: In 2008 to 2009, 12% of Americans over 40 reported taking a statin, whereas in 2018 to 2019, that figure increased to 35%,17 and Americans now spend approximately 25 billion annually on statins.18

In tandem, a cancel culture (reminiscent of what we saw with the COVID vaccines) has been created where anyone who challenges the use of statins is immediately labeled as a “statin denier” accused of being a mass murderer, and effectively canceled. Here, dissident cardiologist Aseem Malhotra discusses the dirty parallels between these two industries with Joe Rogan:

As such, beyond doctors being forced to follow these guidelines, patients often are too. Ideological doctors will retaliate against patients who do not take statins (similar to how unvaccinated patients were reprehensibly denied essential medical care during COVID-19), employers sometimes require cholesterol numbers to meet a certain threshold for employment, and life insurance policies often penalize those with “unsafe” cholesterol numbers.

Statin Injuries

This status quo is inexcusable as statins have a very high rate of injury. For example, the existing studies find between a 5% to 30% rate of injuries,19 and Dr. Malhotra, having gone through all the existing evidence estimates that 20% of statin users are injured by them.

Likewise, statins are well known for having a high percentage of patients discontinue the drugs due to their side effects (e.g., one large study found 44.7% of older adults discontinue the drugs within a year of starting them,20 while another large study of adults of all ages found 47% discontinued within a year).21

Statins in turn, are linked to a large number of complications that have been well-characterized (e.g., mechanistically) and described throughout the medical literature.22,23,24,25,26,27,28 One group of side effects are those perceived by the patient (which often make them want to stop using the medications). These include:

• A high incidence of muscle pain29,30,31,32,33,34,35

• Fatigue36,37 especially with exertion and exercise38

• Muscle inflammation (whose cause remains “unknown”)39,40

• Autoimmune muscle damage41,42,43,44

• Psychiatric and neurologic issues such as depression, confusion, aggression, and memory loss45,46,47,48,49,50,51,52,53

• Severe irritability54
• Sleep issues55
• Musculoskeletal disorders and injuries56,57
• Sudden (sensorineural) hearing loss58
• Gastrointestinal distress59

The other group are those not overtly noticed by the patient. These include:

• Type 2 diabetes60,61,62,63,64 particularly in women65,66,67

• Cancer68,69,70,71

• Liver dysfunction and failure72,73

• Cataracts74,75

• ALS-like conditions and other central motor disorders (e.g., Parkinson’s disease and cerebellar ataxia)76,77,78,79,80

• Lupus-like syndrome81
• Susceptibility to herpes zoster (shingles)82,83,84
• Interstitial cystitis85
• Polymyalgia rheumatica86
• Kidney injury87,88
• Renal failure89

From the start, I noticed statin patients often reported numbness, muscle pain, or cognitive issues after starting these drugs, which resolved once they stopped. When this was brought up with their doctors, the response was often hostile, with doctors insisting statins couldn’t be the cause, (citing their own experience of never having seen this happen to a patient) or claiming the patient needed to continue the medication regardless to avoid a heart attack.

In turn, as the years went by, I saw increasingly elaborate excuses being created to protect the statins from an ever-increasing awareness of their dangers. A common one was the “nocebo effect” — the idea that negative expectations caused the reported symptoms. For example, I lost count of how many doctors I knew who cited this 2016 study90 when patients stated they had been injured.

The nocebo effect is the opposite of the placebo effect. While the placebo effect occurs when a person experiences positive outcomes from a treatment because they believe it will help, the nocebo effect happens when negative outcomes arise simply because a person expects harm from a treatment, even if the treatment itself is harmless or ineffective.

This theory was used to dismiss patients’ experiences despite the fact that many were unaware of possible side effects until they occurred and then looked them up.

If you take this story and replace “statin” with COVID-19 vaccines, you will see it is essentially what everyone has experienced over the last four years (e.g., I lost count of how many times vaccine myocarditis was diagnosed as “anxiety”).

Note: Two adverse event reporting systems exist for adverse reactions to pharmaceuticals, MedWatch91 and FAERS.92 Like VAERS, they suffer from severe underreporting (it is estimated only 1% to 10% of adverse events are reported to them), but nonetheless, thousands of (ignored) reports can be found there of the common injuries which result from statins.93

‘Cholesterol’ Plaques

Many medical beliefs emerge from the pharmaceutical marketing departments. For example, the widespread belief that depression is due to a “chemical imbalance” is actually false and never had any evidence supporting it.

Likewise, they made us believe heart disease results from fat clogging the arteries, much like it does for a drain pipe, as this metaphor is easy for everyone to visualize and immediately elicits a sense of disgust.

However, given that there is no link between cholesterol and heart disease, is it necessarily true? Malcolm Kendrick MD, in turn, discovered that the well-known risk factors for heart disease do not corroborate the standard model.94 For example, to calculate the risk of heart disease, England combines the adjustable risks for heart disease (e.g., age) with the conditions commonly associated with causing heart disease.95

Likewise, in a 2017 study, the records of 378,256 English patients were analyzed by an AI system to identify which characteristics were associated with the highest risk of a cardiovascular event over the next 10 years. The ten greatest risk factors (in order) were:96

From this, Kendrick concluded that the common thread was that many of these (e.g., lupus or cortisol) are associated with damage to blood vessels and impaired microcirculation (a consequence of such damage) rather than with cholesterol.97

Presently, cardiology believes cholesterol somehow gets into a blood vessel and then damages it (leaving an atherosclerotic plaque). Kendrick saw that a forgotten model (that the medical profession largely buried) provides a much better explanation of the causes of heart disease:

Blood vessels get damaged.
The body repairs the damage with cholesterol containing clots.
As clots heal, they are pulled inside the blood vessel wall, and a new layer of endothelium (blood vessel lining) grows over them.
As this occurs multiple times in the same area, the damage (plaques) under the blood vessel becomes more abnormal.

Some of the key points of evidence he uses to support this argument are:98

• Most of the risk factors for heart disease overlap with things that would be expected to damage the blood vessel lining (endothelium).
• Plaques tend to form at arterial branch (junction) points, which are the parts of the artery that are subjected to the greatest shear stress.99
• When you examine the components of a plaque, they are found to contain the same debris found in blood clots.100,101,102
• There is no established mechanism for how cholesterol from the bloodstream can get under the endothelium. However, red blood cells (which play a key role in forming clots103) contain a large amount of cholesterol (50% of the total amount in the bloodstream104), and hence will bring it into clots that form.
• Plaques contain cholesterol crystals. These crystals can form only from free cholesterol,105 which is present in red blood cells, but not from the “bad” cholesterol that circulates in the bloodstream (contained within lipoproteins). Likewise, much of the cholesterol found in atherosclerotic plaques is free cholesterol.106
• The remnants of lipoproteins that are found in plaques are not cholesterol lipoproteins, but rather lipoprotein A, something the body uses to repair damage to the arterial walls.107 This is supported by the fact elevated blood lipoprotein A levels are associated with increased lipoprotein remnants in plaques108 and that the specific marker of lipoprotein A is found to concentrate in atherosclerotic plaques.109
Lipoprotein A in turn is problematic because while it can patch and repair arterial damage, it also makes clots resistant to subsequent degradation, guaranteeing that they will eventually be pulled under the endothelium and transformed into an atherosclerotic plaque (which may in turn explain why elevated lipoprotein A levels are associated with a three-fold increase in the risk of a heart attack or stroke110).

In short, a strong case can be made that our entire heart disease model rests on a variety of correlations that were erroneously assumed to demonstrate causation. Sadly, while the “correlation is not causation” mantra is frequently used to dismiss anything that challenges the orthodoxy, you will frequently find overtly false correlations that support the medical industry’s bottom line being treated as unquestionable dogmas.

Note: One of the best examples is the widespread belief vaccines eliminated infectious disease, even though no correlation exists (whereas public sanitation directly correlates with the elimination of infectious diseases).

The Causes and Treatments of Heart Disease

Kendrick’s model essentially argues the following:

• Most cardiovascular disease results from the blood vessel lining becoming damaged (due to the atherosclerotic lesions) and losing the ability to perform the normal functions (e.g., nitric oxide secretion) that allow it to protect the circulation.
• Inflammation and periods of prolonged and severe stress (e.g., from mental illness, cigarettes, or extreme social oppression) frequently damage the endothelium and hence contribute to heart disease.
• Heart attacks are due to blood clots (which frequently are a result of damaged endothelium) interrupting a critical blood supply to the heart.

Remarkably, most of Kendrick’s model is in complete agreement with the conventional cardiovascular disease paradigm, he just emphasizes stress and inflammation rather than cholesterol and prioritizes treating the functional impairments of the blood vessels (e.g., reduced nitric oxide synthesis).

Note: Kendrick argues the small benefits experienced from statins are likely due to the drugs also having anti-inflammatory effects111 and increasing endothelial nitric oxide.112

Similarly, smoking is well recognized to cause heart disease because it damages the blood vessels (e.g., by creating plaques and impairing their ability to make nitric oxide113), but we rarely ask why or note that similar damage has been repeatedly demonstrated with fine particulates from coal mines,114 breathing air in crowded cities,115 cooking with a wood burning stove,116 or being exposed to wildfire smoke.117
Likewise, lead is quite damaging to the endothelium,118,119 rapidly enters the bloodstream once inhaled,120 and a strong correlation exists between lead use in gasoline and heart disease in America.121

Note: It’s estimated that around 400,000 deaths each year in America are due to lead exposure122 and in a study of 868 men, it was observed that high levels of lead exposure (assessed by its presence in the bones) increased their risk of dying by over 700%,123 particularly since lead returns to the bloodstream as aging bones break down.

Sadly, as you cannot sell drugs for any of these causes of heart disease, they rarely get mentioned, and instead almost all of the research and discussions on heart disease are directed at cholesterol.

Conclusion

Kendrick presciently argued that because of how much money has been invested in establishing the cholesterol hypothesis, the industry will never let it go. This, in short, accounts for why we continue to spend billions each on these drugs despite their benefit being almost nonexistent (e.g., unbiased research shows taking statins for five years, on average, only extends life by 3 to 4 days124 — and only in men)125 and their harms being common and immense.

Fortunately, we have at last reached a point where real progress is being made. For example, despite immense institutional pushback, MAHA updated the Federal Dietary Guidelines to at last correct the 50-year-mistake created by Keys’ doctored data and acknowledge the importance of consuming healthy animal fats.

The insatiable greed which birthed the unconscionable COVID vaccines and their mandates has at last opened the public’s eyes to the marketing myths the pharmaceutical industry has bombarded us from birth with so we perpetually consume their products. Because of that, we at last have a once in a lifetime opportunity to correct many of these disastrous policies, and as MAHA’s revision of the food pyramid shows (which I never imagined would occur), change is actually happening.

Unfortunately, decades of other disastrous health policies also need to be fixed, and for that to happen, it is essential we bring awareness to each of them. I sincerely thank each of you for allowing me to share the truth about statins with you; so many people I know have been hurt by them, and with your help, we can at last end this.

Author’s Note: This is an abridged version of a longer article about the great cholesterol scam which goes into greater detail on the dangers of statins, the actual causes of heart disease, and the natural ways to safely heal the arterial system and prevent heart disease. That article and its additional references can be read here.

A Note from Dr. Mercola About the Author

A Midwestern Doctor (AMD) is a board-certified physician from the Midwest and a longtime reader of Mercola.com. I appreciate their exceptional insight on a wide range of topics and I’m grateful to share them. I also respect AMD’s desire to remain anonymous since AMD is still on the front lines treating patients. To find more of AMD’s work, be sure to check out The Forgotten Side of Medicine on Substack.

Why Food-Based Formats Change Behavior

We don’t fight food the way we fight pills. There’s a reason a child will happily eat a strawberry and fight you over a vitamin. We are wired for food. It’s familiar, it’s pleasurable, it belongs to some of the most enjoyable parts of our day.

Taking a pill, by contrast, tends to feel clinical — a dutiful act we perform because we either know or suspect there’s “something wrong” with our health, and the pill, much like a medication, is supposed to make us healthier. That subtle and mostly subconscious difference in mindset can quietly decide whether a supplement routine survives or falls by the wayside.

Behavior Follows Feeling, Not Logic

We like to think we run our health on reasoning: we weigh the evidence, decide what’s good for us, and act accordingly. In practice, behavior follows feeling far more than it follows logic. We lean into what feels good and familiar, and we resist what feels clinical, no matter how sound the rationale.

You can see this plainly in how most people treat supplements. When researchers sat down with older adults to understand why they abandon nutritional supplements, the reasons weren’t about logic at all. Participants described the products as “disgusting” and “manufactured,” associated them with illness and end-of-life care. Many even said they tried to “avoid taking medicines,” even as most of them dutifully took prescriptions they’d been told they needed.1

So, the objection was not to the added nutrition that supplements provide. It was to the feeling: this is medicine, and medicine is something I endure, not something I want. Fight that wiring and you lose. Work with it and consistency stops being a battle. This is the quiet lever the supplement industry has almost entirely overlooked — not because feelings are trivial, but because they’re hard to put on a label.

This Is Why Food-Based Formats Change Behavior

When a supplement is added to your food rather than downed by the handful, it becomes part of the meal rather than a medical event, which removes much of that emotional friction. It also enhances habit formation.

Behavior becomes automatic when it’s repeatedly performed in a stable, recurring context — and the most dependable context most of us have is a meal. In a randomized study of everyday nutrition behaviors, people who anchored a new habit to an existing daily routine built automaticity steadily, with repeated enactment in the same context being the key to making it stick.2

A separate ritual, where you down several pills with a glass of water one to three times a day, requires you to remember and will yourself to do it. Meanwhile, stirring a scoop of a nutritional powder into your breakfast borrows a cue that’s already there.

Taste and feel also matter, and the evidence here is blunt. In a large study of children taking nutritional supplements, taste was the single most influential factor in whether the supplement was accepted, and smell was the leading reason for poor adherence.3 The lesson generalizes to all of us: a supplement that’s pleasant and effortless gets taken, and one that’s unpleasant gets quietly abandoned, no matter how good it is on paper.

This isn’t just about psychology, though. Working with the body’s design, rather than against it, is almost always the easier road to staying consistent, and we are designed to receive nourishment through food. Nutrients in a meal arrive the way the body evolved to handle them: mixed in with other foods and delivered at the pace of eating rather than dumped in all at once.

Food First

Powder-based supplements are also the most natural expression of an idea that runs through everything we teach: food first. Getting most of your nutrition from real food has always been the foundation, and supplements are just that — support for when real food intake is insufficient. Supplements cannot replace real food and are not permission slips to ignore food quality.

Oftentimes the pill format works against that philosophy, turning nourishment into pharmacy by standing the “health pills” apart from the meal as if they had nothing to do with each other.

That separation shows up in how people feel about supplements, too: in that same research with older adults, one of the recurring worries was that supplements might displace real food rather than complement it — and a clear preference emerged for products added to real food instead of replacing a meal.4 A food-first, food-based format finally puts the supplement back on the same side as the food, where it belongs.

Food-Connected Supplements Change the Emotional Story

There’s one more shift, and it may be the most powerful of all. A food-based format changes the emotional story of taking care of yourself. Instead of a small daily reminder that something might be wrong with you (the very association that made those older adults recoil), it becomes part of the culinary sphere — a small daily act of feeding yourself well.

Remember, the story we attach to a behavior largely determines whether we keep it up. A chore performed out of vague worry is fragile; it survives only as long as the worry and the willpower last. An act of self-care woven into a pleasure we already enjoy is more durable. That shift in mindset — from a clinical, disease-based chore to an act of basic nourishment — is exactly the kind of thing that can turn a supplement regimen into a habit that lasts.

The Bottom Line

Behavior change is rarely about trying harder. It’s about removing the friction and working with how people are actually built — wired for food, moved by feeling, and far more likely to keep doing something that fits pleasurably into a day they’re already living. Food-based formats do both at once: they strip away the friction of the pill routine, and they work with our nature instead of against it.

Frequently Asked Questions

Q: If the nutrients are the same, why would changing the format make any difference?
A: Because whether a supplement does anything for you depends on whether you actually take it, day after day — and that’s shaped as much by how it feels to take as by what’s inside. A food-based format you don’t dread, folded into a meal you already eat, tends to get taken consistently; a pill that feels like a chore and is associated with “being ill” tends to get skipped.

Q: Why does folding a supplement into a meal help so much?
A: Because habits form through repetition in a stable, familiar context, and a meal is the most dependable daily context most people have. Tying the supplement to eating means there’s no separate ritual to remember and nothing extra to will into place. It rides along with something you already do without thinking.

Q: Does a food-based format mean it’s a meal replacement?
A: No — the opposite. The whole idea is food first: real meals are the foundation, and the supplement is there to support them, not to replace them or excuse a poor diet. A food-based format simply keeps targeted support on the same side as the food instead of standing apart from it.

Q: Why does the “feels like medicine” association matter?
A: Because people resist what feels clinical. When something registers as “medicine,” it gets filed under things we endure rather than things we want — and that quiet aversion can be enough to end a routine over time. Making a supplement feel like part of a meal removes that aversion, so consistency stops depending on willpower.

These statements have not been evaluated by the U.S. Food and Drug Administration.

This article is for general education. The products described are dietary supplements intended to support normal health and wellbeing as part of a food-first lifestyle. They are not a substitute for a varied diet, a healthy lifestyle, or the advice of your physician. If you are pregnant, nursing, taking medication, or managing a health condition, talk with your healthcare provider before beginning any supplement.

This article is for informational purposes only and does not constitute medical advice. Consult a qualified healthcare provider before making changes to your health regimen.

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PFAS ‘Universe’ Mapped — Nearly 15,000 Chemicals, Scant Human Data

You’ve been exposed to toxic chemicals that your doctor hasn’t ever mentioned, and they’re likely in your blood right now. You didn’t choose this, but industry did. Over the last century, companies have quietly released thousands of synthetic compounds into the environment, embedding them in everyday items like packaging, cookware, and clothing. These substances were designed to last forever — and that’s exactly what they’re doing inside your body.

Even low levels of these chemicals are now being linked to serious health problems, including hormone disruption, immune suppression, and cancer. Yet almost none of them have ever been tested for safety in humans.

And while the U.S. Environmental Protection Agency (EPA) has begun regulating a few of the oldest and most well-known types, the vast majority remain completely unmonitored, with no warnings, no restrictions, and no accountability. This article traces how one chemical invention spiraled into a global contamination crisis — and what you can do to protect yourself.

A Kitchen Coating Triggered One of the Worst Toxic Disasters in US History

The documentary How One Company Secretly Poisoned the Planet traces the shocking history of per- and polyfluoroalkyl substances (PFAS) back to a single lab accident.1 In 1938, a chemist at DuPont named Roy Plunkett accidentally created a slippery white powder — polytetrafluoroethylene — later branded as Teflon.

It seemed miraculous: it resisted heat, water, acid, and almost every chemical. That same indestructibility made it valuable to the military and industry. But manufacturing it required a separate chemical called PFOA (also known as C8), which would later be linked to widespread human health harm.

• Factory workers and residents living near DuPont’s plant were exposed to extremely toxic water and air — DuPont began producing Teflon at its Washington Works plant in Parkersburg, West Virginia, using C8 to polymerize the material. Instead of safely disposing of the waste, the company dumped thousands of pounds of C8 into the Ohio River, local landfills, and the air. The company’s own internal records from the 1960s showed that C8 caused organ damage and cancer in lab animals.

Still, they kept quiet and continued production. One local farmer, Earl Tennant, lost dozens of cattle that developed tumors, blackened teeth, and skin lesions. His creek had white foam pouring out from a DuPont discharge pipe. When Tennant sued, DuPont settled privately and did not admit fault.

• DuPont workers had blood levels of C8 more than 1,000 times higher than the U.S. average — According to the film, when 3M — the original supplier of C8 — found PFOA in the blood of the general U.S. population in the 1970s, they approached DuPont. DuPont tested its workers and discovered astronomically high levels.

Some employees already showed signs of liver dysfunction, and pregnant employees had birth defects in their children. Despite the alarming data, DuPont calculated its own “safe” limit for PFOA in water: one part per billion (ppb).

• Exposure spread far beyond the plant, with drinking water contamination reaching tens of thousands of residents — DuPont’s internal tests found 1,600 ppb of C8 in landfill water near Tennant’s farm — 1,600 times higher than their own safety threshold.

Yet they told no one. In a later class-action lawsuit covering 70,000 residents, an independent scientific panel found a “probable link” between C8 and six human diseases, including thyroid disease, ulcerative colitis, pregnancy-induced high blood pressure, and both testicular and kidney cancers. These health problems were observed at average blood concentrations of just 28 parts per billion.

• PFAS is extremely difficult to remove from your body once it builds up — C8 mimics fatty acids in the body, which means it binds to proteins in your blood and travels to organs like your liver, kidneys, and even your brain. Because your body doesn’t have a natural way to break carbon-fluorine bonds, these chemicals take years to leave your system.

That long retention time increases the chance of cumulative harm, even from small exposures. Researchers found that firefighters who donated blood regularly reduced their PFAS levels by up to 30% within a year. But the documentary stressed that placing the burden on individuals to filter or detox is backward. The real solution is stopping production and holding manufacturers accountable.

• The biggest risks were from packaging, food, and local water — Most people assume they’re exposed through nonstick cookware. While this is one route of exposure, another major risk is environmental — through contaminated water, processed food packaging, stain-resistant furniture, and firefighting foams.

Microwave popcorn bags, in particular, leach PFAS directly into the food during heating. Even small concentrations in water — just a few parts per trillion — build up in your bloodstream over time and push your levels into the danger zone.

Thousands of Toxic Chemicals, but Almost No Safety Data

A systematic evidence map published in Environmental Health Perspectives noted that about 14,735 individual PFAS substances are currently known to exist.2 Despite their widespread use, only 214 of those compounds have any published toxicology data. This means over 98% of PFAS have never been assessed for their health risks. For the average person, that translates into daily exposure to chemicals that regulatory agencies haven’t even begun to study or monitor.

• Toxicology studies focused heavily on just a few legacy chemicals, leaving major gaps — Of all the PFAS with published data, nearly every study focused on a handful of well-known substances like PFOA, PFOS, PFHxS, and PFNA.

These four chemicals dominate the scientific literature because they’ve been in use longest and were involved in lawsuits. But that leaves newer, so-called “replacement” PFAS like GenX and ADONA largely unstudied, even though early evidence suggests they’re just as harmful, or worse.

• The study authors warned that these gaps are regulatory blind spots — Just six PFAS are currently regulated under the EPA’s 2024 national drinking water standard. That leaves nearly 15,000 chemicals essentially unregulated in food, water, air, and consumer products. This patchwork regulation is fundamentally inadequate. Without broad-spectrum testing and proactive bans, industries simply substitute one PFAS for another without ever proving that the replacement is safe.

• PFAS manufacturers are exploiting the lack of data to delay regulations — Because most PFAS don’t have safety profiles, manufacturers claim there’s “no evidence of harm” — even though there’s also no evidence of safety.

This tactic, sometimes called the “regulatory data gap,” allows companies to shift public pressure off themselves and onto regulators who are already overwhelmed. For consumers, this means you’re likely using products daily that contain untested PFAS, and there’s no law requiring disclosure or warning.

• Scientists called for urgent reform to close the data gap and protect public health — The paper recommended expanding the use of high-throughput toxicity screening, which uses automated tools to test large numbers of chemicals quickly. It also called for predictive modeling to estimate toxicity based on chemical structure and prioritized testing based on likelihood of human exposure.

Without these tools, regulatory agencies are left playing catch-up with industries that are constantly developing new PFAS faster than they’re assessed. In the meantime, the public continues to be exposed, unknowingly and without protection.

How to Protect Yourself and Reduce Your Body Burden

You’re not helpless in this. While the contamination began with industry, there are still smart steps you can take right now to reduce your exposure, support your body’s detox systems, and push for real change. You’ll need to take action on two fronts: what comes into your body and how well your body handles it once it’s there.

If you’ve already been exposed, and nearly everyone has, your focus should be on stopping the source and helping your system eliminate what’s already built up. These five steps are a powerful place to start.

1. Filter your drinking water with a system that removes PFAS — If you’re not sure whether your area has contaminated water, check your local water utility’s report or test your water with a PFAS-specific kit. If PFAS is detected, choose a high-quality water filtration system designed to remove it. This is an effective step to help limit daily exposure.

2. Stop bringing new PFAS into your home — That means cutting out nonstick cookware, stain-resistant carpets and furniture, waterproofed clothing (like Gore-Tex), and fast food packaging. Look for PFAS-free or fluorine-free labels. If you’re a parent, especially watch out for school uniforms and outdoor gear treated with water- and stain-proof chemicals. These are common sources of childhood exposure.

3. Donate blood or plasma to lower your PFAS levels — If you meet donation criteria, this is one of the most effective ways to remove PFAS from your body. Several studies have shown that regular blood or plasma donations help clear compounds like PFOS and PFHxS, which otherwise take years to leave your system. This isn’t just a nice thing to do — it’s an active form of self-defense.

4. Support your liver and kidneys — your body’s natural detox system — You don’t need a trendy cleanse or expensive detox powder. What you need is consistent support for your detoxification organs. Eat sulfur-rich foods like garlic, onions, and cruciferous vegetables to fuel glutathione production, your body’s master detox compound.

Hydrate with filtered water, avoid alcohol, and remove vegetable oils from your diet — they’re high in linoleic acid (LA) that impairs mitochondrial function and slows down toxin elimination.

5. Push back, because voluntary industry change won’t protect you — The reason you’ve been exposed isn’t personal. It’s policy. Industry exploited a regulatory gap, and now the burden falls on you. So, don’t stop at protecting your own home. Support state-level bans on PFAS in consumer products, demand full ingredient disclosure on packaging, and advocate for expanded testing and cleanup in contaminated communities.

Your voice matters more than you think. Each layer of exposure you remove lowers your lifetime toxic burden and gives your body a better shot at recovery. This isn’t just about avoiding illness. It’s about reclaiming control over what gets into your body — and what doesn’t.

FAQs About PFAS

Q: What are PFAS and why should I be concerned?
A: PFAS are manmade chemicals used in nonstick cookware, stain-resistant fabrics, food packaging, waterproof clothing, and industrial processes. They’re called “forever chemicals” because they don’t break down in the environment or your body. Even low levels of PFAS are linked to serious health problems, including cancer, liver damage, thyroid dysfunction, and immune suppression.

Q: How widespread is PFAS contamination?
A: It’s virtually everywhere. According to current estimates, more than 98% of Americans have PFAS in their blood. These chemicals contaminate water, air, soil, and food products. A single PFAS, PFOA, was found in water supplies near military bases, airports, and manufacturing plants at levels far exceeding safety guidelines.

Q: Why haven’t more of these chemicals been regulated or tested?
A: Nearly 15,000 PFAS compounds are known to exist, but only about 200 have been studied for toxicity. Just six are currently regulated in U.S. drinking water. Industry often replaces banned PFAS with new versions that haven’t been tested, creating a cycle of ongoing exposure with little accountability.

Q: How do I reduce my PFAS exposure at home?
A: Start by filtering your drinking water with a system designed to remove PFAS. Avoid products labeled stain-resistant or waterproof, skip fast food packaging and microwave popcorn bags, and switch to stainless steel cookware. These steps cut off major exposure sources.

Q: Can I remove PFAS from my body once I’ve been exposed?
A: PFAS are slow to leave your body, but you can accelerate the process by donating blood or plasma, which helps remove these compounds from your system. You should also support your detox pathways by eating sulfur-rich foods, staying hydrated with clean water, and eliminating vegetable oils that impair mitochondrial health.

Insufficient Sleep Strongly Predicts Reduced Long-Term Well-Being

Sleep loss rarely feels dangerous in the moment. Many people treat it as a temporary tradeoff — a late night here, an early morning there — with the assumption that their body will catch up later. What often goes unrecognized is that sleep is not just about how rested you feel tomorrow. It’s a biological process that shapes how resilient your body remains over time.

While often viewed as an afterthought, sleep is a core life-support function, not a lifestyle add-on. When sleep runs short night after night, your nervous system stays on alert, repair work gets postponed, and stress chemistry becomes the default setting. Surface effects typically occur first — lower patience, foggy thinking, slower recovery — but the deeper cost builds out of sight. This is why sleep loss shows up across so many health outcomes, even when people eat well and exercise.

What changed is not our understanding that sleep matters, but how clearly its absence now maps onto long-term health outcomes at a population level. Large-scale data has removed any doubt that sleep duration tracks with long-term health in a direct, measurable way.1

That clarity forces a harder question: if sleep is this foundational, what exactly is happening when entire communities fail to get enough of it? The next section walks through how researchers answered that question — and why their findings reframe sleep as one of the strongest factors in our long-term well-being.

Study Suggests a Caffeine ‘Sweet Spot’ for Fat Burn During Exercise

You scoop a little extra pre-workout powder into the shaker or pour a second cup of coffee before heading out the door, figuring the bigger jolt will help you burn more fat once you start moving. It’s an easy assumption to make. Caffeine is one of the most widely used stimulants in the world, and its reputation as a fat-burning aid is well earned. The logic seems to follow on its own: if a little caffeine helps your body tap into stored fat during exercise, then more should help even more.

But that assumption deserves a closer look. Stimulants don’t always reward you in proportion to the dose, and your cardiovascular system has its own opinion about how much is too much. Pushing caffeine higher and higher might do nothing extra for fat burning while quietly taxing your heart and blood vessels in the process.

A study set out to find exactly where that line falls — whether stacking on more caffeine actually improves how much fat your body burns during a workout, or whether there’s a point where the benefit stalls and the cost starts to climb. The answer reframes how anyone trying to lose body fat should think about that pre-workout cup.

The Lowest Effective Dose Delivered the Best Trade-Off

For the study, published in the Journal of the International Society of Sports Nutrition, researchers investigated whether different caffeine doses changed fat burning and cardiovascular responses during exercise in overweight or obese sedentary female college students.1 Researchers recruited 11 women with an average age of 20 years and compared a placebo against caffeine doses of 3, 5, and 9 milligrams (mg) per kilogram (kg) of body weight.

After taking the capsules, participants rested for 60 minutes and then completed 40 minutes of treadmill exercise at their individual FATmax intensity, the pace at which their bodies burned the greatest amount of fat for fuel. The goal was simple: determine whether more caffeine actually improved fat use during exercise and identify the dose that provided the greatest benefit with the fewest drawbacks.

• The participants represented a group that often struggles with fat loss — All of the women were sedentary, exercised fewer than three times per week, and had body fat percentages above 30%. Researchers selected this population because people who carry excess body fat often have lower rates of fat oxidation during exercise.

The results showed that caffeine at 3 mg/kg and 5 mg/kg significantly increased fat oxidation compared to placebo, while the highest dose, 9 mg/kg, failed to provide additional benefits. This means taking more caffeine didn’t produce more fat burning. Instead, the metabolic advantage appeared to level off once caffeine intake exceeded a certain threshold.

• The most impressive finding was what happened during exercise — Fat oxidation steadily increased throughout the 40-minute workout in participants who consumed 3 mg/kg or 5 mg/kg of caffeine. Researchers found that total fat oxidation over the entire exercise session was significantly higher in both groups than in the placebo group.

Meanwhile, the 9 mg/kg dose produced no significant improvement over placebo. If your goal is to encourage your body to rely more heavily on stored fat during moderate exercise, this finding suggests that a moderate caffeine dose outperforms an aggressive one.

• Higher doses shifted the body away from the desired response — A moderate dose also nudged the body to reach for fat instead of sugar. Carbohydrate oxidation — how much sugar you burn for fuel — dropped significantly at 5 mg/kg compared to placebo.

By contrast, the 9 mg/kg dose pushed carbohydrate oxidation back up and erased much of the advantage seen with the moderate doses. This helps explain why more caffeine did not translate into greater fat use. The body’s fuel selection changed in a less favorable direction when caffeine intake became excessive.2

• The cardiovascular response revealed an important trade-off — Here the doses parted ways. The 3 mg/kg dose improved fat oxidation while leaving heart rate and blood pressure essentially unchanged. The 5 mg/kg and 9 mg/kg doses both raised cardiovascular markers, with heart rate climbing significantly compared to placebo. Blood pressure followed a similar pattern.

Systolic blood pressure, the top number in a blood pressure reading, remained elevated after exercise in participants taking 5 mg/kg and 9 mg/kg of caffeine. Diastolic blood pressure, the bottom number, also increased with those larger doses.

The 3 mg/kg dose improved fat oxidation without causing these significant cardiovascular effects. For someone seeking a practical pre-workout strategy, that distinction matters because it delivers the metabolic benefit without adding unnecessary stress to the heart and blood vessels.

• Researchers explained why caffeine affects fat burning in the first place — Caffeine blocks adenosine receptors in the body. Adenosine is a signaling molecule that promotes relaxation and reduces cellular activity. When caffeine blocks those receptors, levels of stimulatory hormones such as epinephrine rise. This activates hormone-sensitive lipase, an enzyme that helps release fatty acids from stored body fat.

Caffeine also boosts a cellular messenger called cyclic AMP, or cAMP, which acts like a volume knob inside the cell, turning up how strongly the “release fat” signal plays. Together, these actions increase the amount of fatty acids available to working muscles during exercise.

Yet this study showed that once caffeine intake rises too high, those mechanisms stop producing additional fat-burning benefits. That is why the researchers concluded that 3 mg/kg offered the best balance between improved fat oxidation and cardiovascular safety in this population.

Note: These findings come from a small, randomized study and from observational and genetic research. Results may not apply to all individuals.

Use Caffeine as a Tool, Not a Crutch

The study’s biggest lesson isn’t that caffeine burns fat. It’s that the right dose matters. The women who experienced the best balance of increased fat use and cardiovascular safety didn’t take the most caffeine. They used a moderate amount and paired it with the right type of exercise. If your goal is to improve body composition, relying on ever-larger doses of stimulants misses the real issue. Your body burns fat most effectively when your exercise, nutrition, and recovery habits work together.

1. Exercise at an intensity where your body prefers fat as fuel — The participants exercised at FATmax, the intensity where fat burning peaks. You don’t need laboratory equipment to apply this concept. For most people, FATmax feels like a brisk walk or an easy-to-moderate pace where conversation remains comfortable. If you finish every workout exhausted and gasping for air, you’re often pushing past the range where fat oxidation is highest. Consistency beats intensity when your goal is greater fat use.

2. Use caffeine strategically and choose better coffee sources — The study found that 3 mg/kg of caffeine provided the best combination of increased fat oxidation and cardiovascular safety. For a 150-pound person, that works out to roughly 200 mg of caffeine. In the study, the capsule was taken roughly 45 to 60 minutes before exercise — a reasonable guide if you and your doctor have decided caffeine is appropriate for you.

In coffee terms, 200 mg is closer to two 8-ounce cups than one, though the actual amount swings widely by bean, roast, and brew method — a strong cup can carry far more than a weak one. More was not better. The highest dose failed to improve fat burning and increased cardiovascular strain.

Treat caffeine like a precision tool instead of a challenge to see how much you can tolerate. One caveat matters. The study’s authors recommended this approach only for people with no history of cardiovascular issues or heightened caffeine sensitivity. If you have a heart condition, high blood pressure, or take blood pressure medication, clear pre-workout caffeine with your doctor first.

Just as important as the dose is the source. I recommend choosing filtered coffee over instant coffee; research has linked instant coffee to shorter telomeres,3 the protective caps on your chromosomes tied to healthy aging, and a higher risk of certain eye diseases, associations that filtered coffee didn’t share.4

Because coffee is one of the most heavily sprayed crops in the world, look for certified organic or biodynamic beans whenever possible and brew from whole beans rather than reaching for convenience.

Shade-grown coffee is another sign of quality because coffee naturally thrives under a forest canopy, and shade-grown farming practices are often closer to the plant’s natural growing conditions. Rather than drinking coffee black, add a little natural sweetener — a small amount of raw honey or maple syrup — along with a splash of raw grass fed milk, which turns it into a simple latte-style drink without processed creamers. A dash of cinnamon works well, too.

3. Build metabolic flexibility with daily movement — Fat burning during exercise improves when your muscles become more efficient at using fuel. One of the easiest ways to accomplish this is through regular movement. Walking, cycling, swimming, and other low-to-moderate intensity activities can help train your body to access stored fat more effectively. Think of it as building your metabolic engine one workout at a time. Small daily wins accumulate into meaningful changes over months.

4. Support your metabolism with adequate carbohydrates and protein — Your body requires carbohydrates to produce energy efficiently. Most adults need approximately 250 grams of carbohydrates daily, with higher amounts for active individuals. Pair that with about 0.8 grams of protein per pound (or 1.76 grams per kilogram) of ideal body weight, with roughly one-third coming from collagen-rich sources.

When your cells have the fuel and building blocks they need, exercise becomes more productive and recovery improves.

5. Focus on long-term habits instead of quick fixes — The participants in this study didn’t burn dramatically more fat because they discovered a miracle supplement. They responded to a combination of caffeine and carefully structured exercise.

Your biggest advantage comes from repeating healthy behaviors consistently. Track your walks, celebrate streaks, gradually increase activity, and make each week slightly better than the last. Those small victories create momentum, and momentum is what transforms body composition over time.

FAQs About Caffeine and Fat Burning During Exercise

Q: What caffeine dose increased fat burning the most during exercise?
A: The study found that caffeine doses of 3 mg/kg and 5 mg/kg significantly increased fat oxidation during exercise compared to a placebo. However, the researchers concluded that 3 mg/kg offered the best balance because it improved fat burning without causing the cardiovascular strain seen with higher doses.

Q: Does taking more caffeine burn more fat?
A: No. The highest dose tested, 9 mg/kg, did not produce greater fat burning than the lower doses. In fact, the benefits appeared to level off, showing that more caffeine does not automatically translate into more fat use during exercise.

Q: Why did the researchers recommend the lower caffeine dose?
A: The 3 mg/kg dose increased fat oxidation while avoiding the significant increases in heart rate and blood pressure observed with the 5 mg/kg and 9 mg/kg doses. This made it the most effective and safest option among the doses tested.

Q: How does caffeine help your body use more fat for fuel?
A: Caffeine blocks adenosine receptors, which increases the release of stimulatory hormones such as epinephrine. This activates enzymes that release fatty acids from stored body fat and increases their availability to working muscles. As a result, your body relies more heavily on fat as a fuel source during exercise.

Q: What’s the best way to use caffeine if my goal is fat loss?
A: Use caffeine as part of a broader strategy rather than relying on it alone. Exercise at a moderate intensity where fat burning is highest, choose a reasonable caffeine dose instead of chasing larger amounts, prioritize high-quality coffee sources, stay physically active every day, and support your metabolism with adequate carbohydrates and protein. Together, those habits produce far greater results than caffeine alone.

This article is for informational purposes only and does not constitute medical advice. Consult a qualified health care provider before making changes to your health regimen.

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What silent health crisis now affects about 788 million adults worldwide?

High blood pressure
Heart rhythm problems
Low vitamin D status
Chronic kidney disease
Chronic kidney disease affected about 788 million adults in 2023, and early stages can progress quietly before clear symptoms appear. Learn more.

This Silent Health Crisis Is Now Affecting Nearly 800 Million People

Chronic kidney disease is a gradual loss of your kidneys’ ability to filter waste, balance fluids, and regulate the minerals your body depends on. What makes it so dangerous is how quietly it begins. Early on, you may notice nothing at all, or you may shrug off vague signs like fatigue, swelling in your legs or feet, or subtle changes in urination. By the time the damage makes itself obvious, much of it has often already been done.

That silence is exactly what makes a recent global analysis so unsettling. Drawing on health data spanning more than three decades and hundreds of countries and territories, researchers set out to measure how far this condition has actually spread, and what they uncovered suggests it has become one of the most widespread chronic threats to human health, with consequences that reach well past the kidneys and into the heart itself.1

The detail that deserves your attention most, though, isn’t the sheer size of the problem. It’s that the majority of people whose kidneys are already in trouble have no idea, because the early stages do their damage without raising an alarm. That gap, between how common this condition has become and how rarely it gets caught in time, is the real story. And it starts with what this landmark analysis revealed about the true scope of the crisis.

Kidney Disease Quietly Became One of the World’s Biggest Health Threats

Published in The Lancet, this global analysis examined chronic kidney disease trends across 204 countries and territories between 1990 and 2023. Researchers drew on published studies, household surveys, treatment registries, and national health records to determine how many adults were affected, how many died from the condition, and which risk factors contributed most heavily to the burden of disease.2

Their findings revealed that chronic kidney disease is no longer a niche medical problem; it’s become one of the largest health challenges facing adults worldwide.

• The number of affected adults more than doubled in three decades — According to the analysis, 788 million adults were living with chronic kidney disease in 2023, compared to 378 million in 1990. Researchers reported that the global prevalence reached 14.2% of adults, meaning roughly one in seven adults now has some level of kidney damage or impaired kidney function.3

For you, that reframes the question — kidney disease is no longer a problem confined to a high-risk few, which means the odds it’s relevant to you personally are higher than you might assume.

• Most people are stuck in the silent stages — The overwhelming majority of cases occurred in stages 1 through 3. These are the earlier phases of kidney disease, when the kidneys still perform much of their job but damage has already begun. Researchers estimated that stage 1 through stage 3 disease accounted for a combined prevalence of 13.9% of adults worldwide.

This matters because early kidney disease rarely causes obvious symptoms. You can feel completely normal while damage progresses in the background. That creates a challenge, but it also creates an opportunity. If you identify the problem early, you have a much larger window to address the factors that drive further decline.

• Kidney disease reaches far beyond the kidneys themselves — The analysis found that chronic kidney disease ranked as the ninth leading cause of death globally in 2023, accounting for approximately 1.48 million deaths. Researchers also calculated that impaired kidney function contributed to 11.5% of cardiovascular deaths worldwide.

Unhealthy kidneys place extra stress on your entire circulatory system. Your kidneys help regulate fluid levels, blood pressure, and numerous chemical signals throughout the body. As kidney function declines, the strain extends to the heart and blood vessels, increasing the likelihood of serious cardiovascular problems.

• Blood sugar emerged as the biggest contributor to kidney-related health loss — When researchers compared risk factors, high fasting blood glucose accounted for the largest share of kidney-related disability-adjusted life years — a measure that combines years lost to illness and to premature death — at 31.9%. High systolic blood pressure (24.5%) and excess body weight (23.5%) followed closely behind, while dietary factors accounted for 17.6%.

Because these figures come from an observational analysis, they show how strongly each factor is associated with kidney-related health loss — not that any one directly causes it. Even so, improving blood sugar control, maintaining healthy blood pressure, and managing excess weight may help address the factors contributing the greatest share of kidney-related health loss worldwide.

• Age dramatically increased the burden, but the trend affected all adults — Researchers observed that both the prevalence and severity of chronic kidney disease rose steadily with age. More advanced stages became increasingly common among older adults, while the contribution of high blood pressure to kidney-related disease burden also increased with advancing age.

Yet the findings were not limited to seniors. The study focused on adults beginning at age 20, highlighting that kidney damage often develops decades before severe symptoms appear. If you think of kidney health as a long-term challenge rather than an old-age problem, you gain a major advantage. Every positive step you take today gives your kidneys a better chance of functioning well years from now.

Support Your Kidney Health and Lower Your Risk

The findings from this global analysis point to a simple reality: Chronic kidney disease rarely begins in the kidneys alone. The biggest contributors were high blood sugar, high blood pressure, and excess body weight. That means the most effective strategy is to address the metabolic and lifestyle factors that place stress on your kidneys year after year.

High blood pressure deserves special attention because it doesn’t just accompany kidney disease — it also contributes to it. Over time, elevated pressure damages the tiny blood vessels inside your kidneys, reducing their ability to filter waste efficiently, while declining kidney function often pushes blood pressure even higher. The earlier you address the factors that strain both your blood vessels and your kidneys, the greater your opportunity to preserve kidney function for decades.

The following strategies are for prevention and early-stage risk reduction; anyone with diagnosed kidney disease should treat potassium, protein, and fluid targets as clinician-directed, because the right numbers flip once function is significantly impaired.

1. Make blood sugar control your first priority — High fasting blood sugar was the largest contributor to kidney disease burden worldwide. When blood sugar remains elevated, excess glucose damages the small blood vessels that allow your kidneys to filter waste effectively. Focus on improving metabolic health with whole foods, adequate protein, and healthy carbohydrates that match your activity level.

For most adults, that means approximately 250 grams of carbohydrates daily, with higher amounts if you’re physically active. Prioritize ripe fruit, root vegetables, and other nutrient-dense carbohydrate sources while eliminating ultraprocessed foods, including seed oils and sugary beverages.

Because protein is essential for maintaining muscle and metabolic health, aim for roughly 0.8 grams of protein per pound (or 1.76 grams per kilogram) of ideal body weight, with approximately one-third coming from collagen-rich sources like slow-cooked meats or bone broth.

2. Improve your blood pressure by improving your metabolism — High blood pressure ranked among the leading contributors to chronic kidney disease worldwide. Yet blood pressure often reflects deeper metabolic problems rather than an isolated condition. Excess weight, poor blood sugar control, chronic stress, and nutrient imbalances all place additional strain on your blood vessels and kidneys.

If you’re carrying excess weight, improving body composition often reduces pressure on both systems simultaneously. Daily movement, strength training, adequate sleep, and stress reduction support healthy blood pressure while helping protect your kidneys from further wear and tear. Even a daily walking routine creates meaningful improvements over time.

3. Restore a healthy sodium-to-potassium balance — Many people focus exclusively on reducing salt, but healthy blood pressure depends heavily on maintaining the proper balance between sodium and potassium. The larger problem is that most dietary sodium comes from ultraprocessed foods that contain very little potassium while delivering excess sugar, phosphate additives, seed oils, and other compounds that increase your kidneys’ workload.

Instead of aggressively restricting salt, focus on removing ultraprocessed foods and replacing them with whole-food potassium sources such as ripe fruit, root vegetables, and well-cooked greens. This strategy supports fluid balance, healthy blood pressure, and kidney function at the same time. It also reduces exposure to additives that place additional stress on kidney tissue.

One important exception: If you already have diagnosed kidney disease, especially stage 3b or beyond, don’t increase dietary potassium without checking with your doctor and knowing your latest labs. Once kidney function is significantly reduced, the kidneys can’t clear potassium efficiently, and too much can become dangerous. The advice to raise potassium applies to prevention and early-stage risk reduction, not to established, more advanced disease.

4. Optimize vitamin D through sensible sun exposure and daily movement — Vitamin D helps regulate the hormonal system that controls blood pressure and fluid balance. When vitamin D levels remain low, that system may become overstimulated, which research has linked to increased tension in your blood vessels and added strain on your kidneys.

Regular sun exposure helps to support vitamin D production, cellular energy generation, and healthy circulation. Aim for a vitamin D level between 60 and 80 ng/mL (150 to 200 nmol/L). If you still consume significant amounts of seed oils and other sources of linoleic acid (LA), avoid intense sun exposure until you have reduced those foods for at least six months.

This is because LA is a polyunsaturated fat that oxidizes easily, builds up in your skin, and increases your risk of skin damage. Pair sunlight with regular movement. An hour of walking, cycling, swimming, or similar activity each day improves circulation, supports healthy blood sugar levels, and reduces pressure on your kidneys’ filtering units. If you’re just getting started, even 10-minute sessions create momentum.

5. Stay hydrated, reduce unnecessary kidney stress, and screen early — For healthy kidneys, hydration helps dilute and remove waste while lowering kidney-stone risk, and thirst is usually a reliable guide. If you’ve been diagnosed with kidney disease, fluid needs can change — sometimes downward — so follow your doctor’s guidance rather than thirst alone.

Pale yellow urine also generally reflects adequate hydration. If you have a history of kidney stones, pay attention to foods high in oxalates, including spinach, sweet potatoes, and figs.

Pairing oxalate-containing foods with calcium-rich foods helps bind oxalates in your digestive tract so fewer reach your kidneys. At the same time, reduce phosphorus from processed foods, colas, and fast-food meats, since excess phosphorus disrupts mineral balance and places additional strain on kidney tissue.

If you have high blood pressure, diabetes, obesity, a family history of kidney disease, or other metabolic risk factors, make kidney screening part of your routine. Ask specifically for two tests: an eGFR (estimated glomerular filtration rate), which estimates how much blood your kidneys filter each minute, and a urine albumin-to-creatinine ratio (uACR), which catches protein leaking through damaged filters — often the earliest warning sign, before eGFR has budged.

Because early-stage kidney disease often produces no symptoms, these simple tests help identify problems long before significant damage occurs.

If you are considering kidney-function or vitamin D testing, talk to your health care provider about whether they’re appropriate for you.

FAQs About Chronic Kidney Disease

Q: What is chronic kidney disease and why is it called a silent health crisis?
A: Chronic kidney disease is a gradual loss of kidney function that often develops without obvious symptoms. Many people remain unaware they have it because early-stage kidney disease rarely causes noticeable problems. By the time symptoms become clear, significant damage has often already occurred.

Q: How common is chronic kidney disease?
A: According to the global analysis published in The Lancet, an estimated 788 million adults were living with chronic kidney disease in 2023. The condition now affects roughly one in seven adults worldwide and has more than doubled in prevalence since 1990.

Q: What are the biggest factors driving chronic kidney disease?
A: The leading contributors identified in the research were high fasting blood sugar, high blood pressure, and excess body weight. These metabolic factors damage the blood vessels that supply the kidneys and increase the strain placed on the kidneys over time.

Q: How does kidney disease affect the rest of the body?
A: Kidney disease affects far more than waste filtration. The kidneys help regulate blood pressure, fluid balance, and numerous chemical signals throughout your body. As kidney function declines, the risk of cardiovascular disease rises substantially. Researchers estimated that impaired kidney function contributes to 11.5% of cardiovascular deaths worldwide.

Q: What are the most important steps to protect kidney health?
A: Focus on addressing the root causes of kidney damage before permanent decline occurs. Maintain healthy blood sugar levels, improve blood pressure through better metabolic health, restore a healthy sodium-to-potassium balance with whole foods, optimize vitamin D through sensible sun exposure and regular movement, stay hydrated, and monitor kidney function early if you have risk factors such as diabetes, obesity, high blood pressure, or a family history of kidney disease.

This article is for informational purposes only and does not constitute medical advice. Consult a qualified health care provider before making changes to your health regimen.

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Take today’s quiz to see how much you’ve learned from yesterday’s Mercola.com article.

How much additional processed meat consumed per day was linked to higher cancer risk?

5 grams
15 grams
30 grams
Every extra 30 grams of processed meat daily was linked to a 9% higher gastric cancer risk and a 13% higher esophageal cancer risk Learn more.
60 grams

The Importance of Getting Regular Health Tests

When was the last time you had a thorough assessment of your health? Guessing about the current state of your health can lead to risky assumptions and dangerous oversights. Without concrete information, symptoms are likely to be misinterpreted or dismissed, allowing underlying issues to progress unnoticed. On the other hand, too much intake of a specific nutrient will also lead to health issues.

Lab testing removes uncertainty by providing precise, actionable insights into your health. By leveraging data-driven results, you gain clarity about your body’s true state, enabling you to select the optimal strategy to boost your health and proactively address concerns. The following are the tests I recommend that you take to keep you updated on what’s happening inside your body.

How to Test for Iron

One good reason why I recommend taking regular tests is to catch an unsuspecting health problem affecting many people — iron overload. In fact, it’s more widespread than iron deficiency. In addition, I’ve also written a paper about the duality of iron as a toxin and a nutrient, which will be published in the future. The recommendations I mention below stem from the findings of that specific research.

• How iron is normally tested — Checking for excess iron is straightforward and starts with a basic serum ferritin test, which shows how much iron your body has stored. This test reveals if your iron storage has reached higher-than-normal levels.

For context, transferrin refers to a protein produced in your liver that transports (hence the “transfer” in the name) iron molecules it binds to, transporting it to tissues. One example is your bone marrow, which requires iron to create new blood cells.1

• Transferrin saturation (TSAT) — While a serum ferritin test is a cornerstone test, it shows an incomplete picture. It works best alongside a TSAT test.

TSAT levels — calculated as serum iron divided by total iron-binding capacity (TIBC) then multiplied by 100 — shows the current amount of transferrin protein that’s bound to iron. Thus, it shows you the current iron levels you have available for erythropoiesis, commonly known as red blood cell production.

• Results to watch out for — When it comes to serum ferritin levels, I believe that the ideal range is between 30 and 100 ng/mL (nanograms per milliliter). This is sufficient for hemoglobin synthesis and avoids iron accumulation that can lead to oxidative stress in your body.

As for TSAT, my research indicates that the ideal range is between 25% and 35%. If regular tests show a range above 35%, you likely have iron overload. At 35% to 40%, iron that isn’t bound by transferrin protein — also known as toxic non-transferrin-bound iron (NTBI) — will damage your vital organs.2 In fact, TSAT ranges between 45% and 55% are linked to a 60% to 67% increase in all-cause mortality.

• Ideal ranges — To summarize, healthy results should show TSAT levels between 25% and 35%, alongside serum ferritin levels between 30 and 100 ng/mL.

Now, if your combined results show TSAT levels below 20% and serum ferritin levels below 15 micrograms per liter (µg/L), you likely have depleted iron reserves. Conversely, TSAT levels above 45% and ferritin levels above 100 ng/mL indicate excess iron. Taken altogether, serum ferritin not only serve as diagnostic markers — they also function as risk predictors.

• Other tests that detect iron — A comprehensive assessment usually includes an iron panel, complete blood count (CBC), gamma-glutamyl transferase (GGT), and a metabolic panel to fully understand your body’s iron status and overall health.

A healthy ferritin level is between 20 and 40 ng/mL. If results show that you’re below 20 ng/mL, you’re deficient in iron, which isn’t what you also want to happen. Conversely, you want your ferritin below 100 ng/mL, which is the maximum cut off.

• GGT test — This refers to the enzyme mainly produced by the liver, and is responsible for breaking down medications and toxins. When too much iron builds up in your body, it can harm your liver cells, causing GGT levels to rise significantly in your bloodstream.

What’s great about this test is that it also gives you insights on your excess free iron, as well as your risk for sudden death, insulin resistance, and cardiometabolic disease. Once you have your results, refer to the table below to know where you stand:

Ideal GGT Level, units per liter (U/L)
Average level, above which your risk for chronic disease increases significantly
“Normal” GGT Level

Men
Less than 16 U/L
25 U/L
Up to 70 U/L

Women
Less than 9 U/L
18 U/L
Up to 45 U/L

Fine-Tuning Your Lifestyle for Longevity

Testing for possible nutrient deficiencies (or overload) is just one aspect of the big picture. You also need to test for other biomarkers, such as your hormones (testosterone, cortisol, and insulin) to detect your current stress levels. Doing so will lead to better metabolic health management.

• How cortisol is measured — Cortisol is produced by your adrenal glands, and it can be detected via your blood, urine, or saliva. Once samples are provided, be sure to follow your doctor’s instructions to generate the most accurate results possible.3

According to the Cleveland Clinic, cortisol in the blood, urine, or saliva are at their highest during the early morning and then decline afterward — midnight is the lowest point.4

• What your cortisol levels tell you about your health — In addition to measuring your stress levels, cortisol tests help rule out other conditions. For example, Addison’s disease occurs when your body isn’t producing enough cortisol. Conversely, Cushing’s syndrome is marked by high cortisol levels. Tumors are also marked by elevated cortisol.5

Finding out your current cortisol levels is important for overall health. It drastically accelerates aging and even contributes to muscle degradation over time. Lastly, it contributes to inflammation and a weakened immune system.

• The importance of testosterone — In a previous article, I cited research showing the link between sex hormones and mortality risk in men. Basically, if your testosterone levels drop by 213 ng/dL (nanograms per deciliter), you have a higher risk of all-cause mortality. In addition, testosterone levels below 153 ng/dL were associated with increased cardiovascular mortality risk.

• Ideal testosterone range — To find out your current levels, you’ll need to have your blood tested. That said, what’s a healthy range? In this article, I mentioned 300 to 1,000 ng/dL as a baseline.

• Testing for insulin resistance — In addition to cortisol, another crucial test that I recommend you take is measuring your insulin resistance. This is essential because results will serve as warning signs for your metabolic health. That said, insulin resistance is measured via the Homeostatic Model Assessment of Insulin Resistance (HOMA-IR) test. It calculates how your fasting glucose and insulin levels interact, and finds out how your body uses insulin.

• Interpreting HOMA-IR results — Below is a breakdown on how the HOMA-IR test is calculated. A score below 1 means you are currently insulin-sensitive and functioning well. Anything above that means that you currently have insulin resistance.

HOMA-IR = (Fasting Glucose x Fasting Insulin) / 405, where

◦ Fasting glucose is measured in mg/dL
◦ Fasting insulin is measured in μIU/mL (microinternational units per milliliter)
◦ 405 is a constant that normalizes the values

If you’re using mmol/L for glucose instead of mg/dL, the formula changes slightly:

HOMA-IR = (Fasting Glucose x Fasting Insulin) / 22.5, where

◦ Fasting glucose is measured in mmol/L (millimoles per liter)
◦ Fasting insulin is measured in μIU/mL, and
◦ 22.5 is the normalizing factor for this unit of measurement

Testing for Other Important Biomarkers

So far, I’ve covered the importance of having your iron, cortisol, insulin resistance, and testosterone levels tested. While they may seem like a lot, there’s still a few more tests that need to be done.

• Monitor your vitamin D — This nutrient is a crucial contributor to optimal health, and I’ve espoused its importance for many years now. Considering this, a simple blood test is all you need to know your current levels.

My recommended range is between 60 ng/mL and 80 ng/mL, and the cutoff for sufficiency is around 40 ng/mL. Once you’ve confirmed your level, you’ll know how much sun exposure or supplementation (if needed) is necessary for you to reach the ideal range. Then, retest in the next three to four months to make sure you’ve hit your goals.

• Don’t forget your thyroid hormones — Your endocrine system is a complex network of glands and organs that regulate hormone production. Among the many hormones produced in your body, the ones produced in the thyroid are perhaps the most important because they help regulate metabolism and are found in nearly every physiological process within you.

• Understanding thyroid antibodies — Examples include thyroglobulin antibodies (TgAb) and thyroid peroxidase antibodies (TPOAb). Results will give you deeper insight into whether autoimmune processes are attacking your thyroid gland. Pairing these antibody results with symptoms helps you make meaningful connections and clarifies what’s really going on with your body, particularly if you’re dealing with an autoimmune condition.

• Traditional thyroid assessments aren’t effective anymore — Testing for thyroid-stimulating hormone (TSH) alone often misses underlying issues. That’s because TSH levels fluctuate significantly and you’ll even appear relatively normal even when you’re actually experiencing severe symptoms.

For instance, individuals with Hashimoto’s thyroiditis might have completely normal hormone levels yet feel persistently unwell. Similarly, basal body temperature is also an unreliable indicator of thyroid health, as it can be influenced by multiple factors unrelated to thyroid function.

• How to test thyroid function — A full thyroid assessment should show the following results:

◦ Low TSH
◦ T3 levels in the upper range
◦ rT3 levels in the lower range
◦ Moderate T4 levels

However, note that even “normal” results will not guarantee that your thyroid is functioning properly. For deeper insight, test for rT3 and cholesterol. Small amounts of rT3 are normal and act as a buffer against thyroid overactivity. On the other end, elevated rT3 is problematic because it competes with T3, reducing your metabolic rate. Elevated cholesterol levels also usually signal suboptimal thyroid function.

Importance of NAD+ Testing

Nicotinamide adenine dinucleotide (NAD+) is an important molecule in your body. It plays a role in converting food to energy, as well as maintaining DNA integrity and proper cell function.

• A new test will come out soon — I’m excited to announce the upcoming Mitochondrial Wellness Test Kit, which will provide a snapshot of your latest mitochondrial function. While helpful, certain specialized tests will be needed to understand the nuances of your health.

• Current NAD+ testing is unsatisfactory — NAD+ rapidly deteriorates once it’s outside your cells, making accurate measurement tricky. Because of this fragility, samples require immediate handling and specialized techniques to avoid losing accuracy.

Typically, precise NAD+ measurement demands blood samples to be drawn and analyzed swiftly within the same specialized research facility — something not possible at most regular clinics. Transporting samples between labs also compromises results significantly due to degradation. However, these challenges haven’t stopped our mission to deliver valuable health insights.

• NAD+ testing standards will rise — My team and I have developed an innovative approach that bypasses the complexity of direct NAD+ measurement. Instead, our method evaluates your NAD+ status indirectly by examining the redox balance among these essential markers — acetoacetate and betahydroxybutyrate, lactate and pyruvate, and the oxidized and reduced forms of glutathione.

• The test will be affordable — I’m proud to share that this cutting-edge NAD+ test is inexpensive, giving more people access to their current cellular health. More announcements will be made once this product is available.

Assessing Your Gut Health

Another crucial aspect of your health that needs to be tested regularly is your gut function. As you know, certain gut strains are beneficial, while others aren’t. Thus, figuring out which bacteria are dominating your gut will give you an insight to what’s happening.

• Gut Microbiome Wellness Test Kit — Just like the Mitochondrial Wellness Test Kit, my team and I will be releasing the Gut Microbiome Wellness Test Kit. It’s uniquely crafted to help you gain insights into your gut bacteria’s profile. It will seamlessly pair with the upcoming Mercola Health Coach app, providing you with a seamless end-to-end journey — from collecting your sample to interpreting your results.

To paint a picture of this process, you’ll need to send over a fecal sample. Afterward, you’ll be provided with a detailed breakdown of key bacterial species, allowing you to make smarter dietary and lifestyle decisions. To encourage broad access among the public, we’re also giving it an affordable price tag.

• Frequency of gut microbiome testing — One major reason why we’ve made this test affordable is to encourage repeat testing, ideally twice a year. This is needed to see whether your situation has improved or worsened, and you cannot know what your status is if a single test already requires a significant amount of cash.

Tips on Addressing Nutritional and Hormonal Deficiencies

The reason why I recommend you get yourself screened is to help save you time and money. For example, if one vitamin is already at an optimal range, you can focus your effort on others that need more attention. That said, I recommend going through the following articles. They contain helpful strategies to help you maintain optimal health after you’ve completed your tests:

• Everything You Need to Know About Vitamin D for Your Health

• High Iron Levels Threaten Bone Health and Increase Fracture Risk

• How Low Testosterone Affects Men’s Health

• Blocking Cortisol Extends Lifespan by Improving Mitochondrial Function

• Key Nutrients to Support Optimal Thyroid Health

• The Crucial Role of NAD+ in Optimal Health

• Unlocking the Secrets of Gut Health

Frequently Asked Questions (FAQs) About Regular Health Screenings

Q: Why is guessing about your health risky?
A: Guessing or relying on symptoms alone can result in serious health issues going undetected, delaying necessary treatments and reducing your chances of successful recovery. Accurate lab testing removes uncertainty, providing clear insights into your health status.

Q: What tests are essential for assessing iron overload?
A: Begin with a serum ferritin test, which reveals how much iron your body stores. For a comprehensive view, consider an iron panel, Complete Blood Count (CBC), gamma-glutamyl transferase (GGT), and a metabolic panel to fully evaluate your iron levels and overall health risks.

Q: Why is it important to monitor cortisol and testosterone levels?
A: Cortisol levels reflect stress and inflammation, significantly influencing aging, muscle health, and immune function. Testosterone is linked directly to mortality risk, cardiovascular health, and overall vitality. Regularly testing these hormones helps detect and manage imbalances early, protecting your long-term health.

Q: How can you accurately assess your thyroid health?
A: Traditional testing methods, like TSH levels or basal body temperature alone, often fail to identify underlying thyroid conditions such as Hashimoto’s thyroiditis. Testing thyroid antibodies (TgAb and TPOAb), along with a comprehensive panel (TSH, T3, T4, reverse T3, cholesterol), provides a clearer picture and helps target autoimmune-related thyroid issues.

Q: How do NAD+ and gut microbiome tests contribute to overall wellness?
A: Measuring NAD+ indirectly through redox balance markers provides critical insights into mitochondrial and cellular health, influencing energy and metabolic functions. Gut microbiome testing identifies beneficial and harmful bacterial strains, guiding informed dietary and lifestyle adjustments. Both tests are designed to be affordable, accessible, and offer actionable results for improving overall wellness.

This Small Molecule Reverses Alzheimer’s Disease Progression, Study Shows

Nicotinamide adenine dinucleotide (NAD+) may be one of the most overlooked factors when it comes to optimizing cellular health. It is a cellular coenzyme that plays a role in many metabolic and signaling reactions.

For example, it partakes in redox reactions — chemical exchanges that transfer energy between molecules — which lead to the production of adenosine triphosphate (ATP), your body’s energy currency.1 In fact, research shows that a deficiency is linked to an array of conditions, such as sarcopenia and diabetes.2

But that’s not all — Alzheimer’s disease, the most common form of dementia,3 has now been linked to declining NAD+ levels. Following this line of thought, emerging research shows that boosting NAD+ intake can reverse the progression of Alzheimer’s disease. This discovery could be one of the biggest breakthroughs in recent times, as most people believe that Alzheimer’s only worsens the longer it goes,4 and treatment focuses on slowing decline rather than reversing it.

Why Phosphate-Loaded Sodas Hammer Your Metabolism Harder Than Sugar

A single can of cola delivers more than just refined sugar — it delivers a metabolic ambush that your body absorbs within minutes. While most people know to worry about the high-fructose corn syrup (HFCS) lurking in soft drinks, few realize that the real damage comes from the phosphate hidden in plain sight.

Phosphoric acid is added to cola for flavor and shelf life, but what it delivers is a rapid spike in inorganic phosphate, a form your body absorbs almost entirely. Your bloodstream reacts fast. Within just 30 to 60 minutes, phosphate levels surge — and with them, a hormone called fibroblast growth factor 23 (FGF23). That one surge sets off a hormonal chain reaction that disrupts calcium absorption, suppresses vitamin D, stresses your kidneys, and begins laying the groundwork for hardening of your arteries.

Unlike the sugar in soda, phosphate acts more like a stealth hormone disruptor. It hijacks your endocrine system with every sip. And it doesn’t matter how healthy you think you are. Even young adults with no chronic conditions have shown elevated FGF23 levels within hours of a single phosphate load.

What’s worse, this phosphate exposure is virtually unregulated by your body. While natural food sources contain phosphate bound in protein or phytate, which slows absorption, sodas deliver inorganic phosphates that enter your system quickly. This largely bypasses your digestive safeguards and leaves your organs to clean up the mess.

It’s a burden your kidneys never signed up for and one your arteries pay for over time. That’s why the real danger in soda isn’t just about sugar — it’s about what happens when fructose and phosphate collide in the same can. Let’s take a closer look at the two ingredients side by side.

What’s Really in a Can of Cola?

When you crack open a can of soda, you’re not just sipping something sweet. You’re taking in a concentrated mix of biologically active compounds that hit your metabolism hard. Each 12-ounce serving of cola contains ingredients that work against your health in different ways — and some are far more damaging than they appear.

• High-fructose corn syrup (HFCS-55, ~39 grams of total sugar) — HFCS-55 is made of roughly 55% fructose and 45% glucose. While glucose raises blood sugar and stimulates insulin, it’s the fructose component that does the deeper damage. Your liver takes the hit first.

Fructose gets funneled directly into your liver’s fat-making process, increasing your liver’s fat load and elevating triglycerides. At the same time, it spikes uric acid, which increases oxidative stress, raises blood pressure, and damages mitochondria. Over time, this combination drives insulin resistance — the foundational defect in obesity, diabetes, and cardiovascular disease.

• Phosphoric acid (~50 to 60 milligrams (mg) of elemental phosphorus) — This is where things turn hormonal. Unlike phosphate found in whole foods, the phosphate in cola is inorganic and nearly 100% bioavailable. That means your body absorbs almost all of it, quickly. Within minutes, it forces your kidneys and bones to compensate.

You’ll see a spike in FGF23 — a hormone that lowers vitamin D, impairs calcium metabolism, and forces your kidneys to waste phosphate in an effort to protect your bloodstream. Repeated exposure increases vascular stiffness and elevates cardiovascular risk, even in people without existing kidney problems.

• Caffeine, caramel color, and artificial flavors — Don’t dismiss the trace components. Caffeine itself increases calcium loss in your urine, compounding the calcium-phosphate imbalance created by phosphoric acid.

Caramel color, especially the ammonia-sulfite processed kind, adds another layer of risk by introducing advanced glycation end products (AGEs). These compounds contribute to inflammation, oxidative stress, and tissue aging. Artificial flavors may seem harmless, but their unknown interactions with your gut and liver remain poorly studied.

Each of these ingredients hits a different pathway — metabolic, endocrine, vascular — but the real problem is how they interact. Fructose depletes adenosine triphosphate (ATP) and raises uric acid. Phosphate hijacks your hormone signaling. Add caffeine and AGEs, and you’ve got a cocktail that does far more than add inches to your waistline.

How Inorganic Phosphate Hijacks Your Hormones and Stresses Your Kidneys

When you eat whole foods, like meat, eggs, or legumes, the phosphate they contain is naturally bound to proteins or plant compounds like phytate. Your body takes its time breaking those down, and you only absorb about 40% to 60% of the phosphate in a typical meal. That’s a manageable load.

But the phosphate in soda doesn’t play by those rules. Phosphoric acid is a form of inorganic phosphate that’s not bound to anything. It bypasses digestion and enters your bloodstream at nearly 100% absorption. Within 30 to 60 minutes, your blood phosphate level spikes. And your body scrambles to respond.

• FGF23 is the hormone that flips your metabolism into damage control — This sudden phosphate flood triggers a spike in FGF23.1 This hormone is produced by your bones to get rid of excess phosphate, but FGF23 suppresses the enzyme 1α-hydroxylase, which your kidneys need to convert vitamin D into its active form, calcitriol. Without calcitriol, your body struggles to absorb calcium, shutting down bone turnover and starving your cells of calcium even when your diet is sufficient.

• Your body tries to rebalance, and your skeleton pays the price — As calcium levels drop, your parathyroid glands kick in. They release parathyroid hormone (PTH), which pulls calcium out of your bones to bring blood levels back up. But this leaching process weakens bone structure over time. If you’re regularly drinking cola, your bones are constantly being tapped to fix a problem that started in your soda can.

• A silent source of wear and tear on your kidneys — With every phosphate spike, your kidneys start dumping phosphate into your urine to keep blood levels in check. This ongoing flush seems protective, but it comes at a cost: micro-damage, oxidative stress, and accelerated wear on delicate filtering structures. Over time, even small, repeated injuries add up, especially if you’re already dealing with other metabolic stressors like insulin resistance or high uric acid.

How Phosphate Hardens Your Arteries and Raises Your Risk of a Heart Attack

You don’t need kidney disease for phosphate to wreck your heart. Even if your lab tests look normal, chronically high phosphate levels, like the ones triggered by regular soda consumption, quietly damage your blood vessels and heart over time. The damage starts in your bloodstream, but it doesn’t stay there.

• Your arteries aren’t supposed to turn into bone, but that’s what happens — Under normal conditions, smooth muscle cells in your arterial walls stay flexible and elastic. But when exposed to persistently elevated phosphate, those same cells begin expressing genes typically seen in bone-forming cells. This process turns pliable arteries into rigid, calcium-laced pipes. Once this transformation begins, it’s extremely difficult to reverse.

• Your hormonal defense system collapses — High phosphate doesn’t just activate bone-building pathways in your arteries. It also disrupts the protective feedback loop between FGF23 and a protein called α-Klotho.2

These two normally work together to regulate phosphate and calcium balance. But when phosphate keeps flooding your system, this balance breaks. Klotho levels drop, oxidative stress goes up, and arterial walls stiffen.3 That stiffening drives up blood pressure and reduces blood flow, setting the stage for a heart attack or stroke.

• Phosphate raises your risk of dying from heart disease — A 2024 meta-analysis showed that people in the highest phosphate quartile had a 44% greater risk of cardiovascular death compared to those with lower phosphate levels, even if their kidney function was perfectly normal.4 This isn’t about end-stage disease or rare cases. It’s about everyday exposures, like the phosphate in your soda, quietly eroding your cardiovascular resilience year after year.

The Collateral Damage You Don’t See — Kidney Strain, Bone Loss, and Faster Aging

The impact of high-phosphate sodas goes far beyond your arteries. What starts as a seemingly harmless beverage choice quickly spreads into a web of silent damage that hits multiple systems in your body. If you’re drinking cola regularly, you’re stacking the odds against your kidneys, bones, and even your longevity.

• Phosphate overload speeds up kidney decline, even before symptoms show up — If you already have mild kidney dysfunction, high-phosphate intake pushes that damage into overdrive. Diets rich in inorganic phosphate, like what’s found in sodas and ultraprocessed foods, accelerate the progression of chronic kidney disease.5

Your kidneys are forced to work overtime to dump excess phosphate from your bloodstream, which increases oxidative stress and causes scarring in the nephrons — the tiny filters inside your kidneys that clean your blood. Over time, this leads to progressive loss of kidney function, even in people who aren’t diabetic or hypertensive. And because kidney damage is largely symptomless until advanced stages, you may not even know it’s happening.

• Soda pulls calcium out of your skeleton and leaves it brittle — Women who drink cola four or more times per week have significantly lower BMD in the hip, one of the most fracture-prone areas of the skeleton.6 The combination of high phosphate and low calcium absorption makes bones porous and weak, raising the risk of osteoporosis and fractures.

• Excess phosphate accelerates the biological clock — Phosphate affects you down to the cellular level. High phosphate levels activate mTOR, a key regulator of growth and metabolism.7

While mTOR has beneficial roles in controlled settings, chronic overactivation leads to DNA damage,8 increased cellular replication errors, and premature senescence — a state where cells stop dividing and enter a permanent state of aging. This isn’t just about disease — it’s about quality of life. Phosphate-laden sodas rob you of resilience, making it harder for your body to recover, repair, and maintain the energy you need to thrive.

Fructose in Soda Still Damages Your Metabolism

Fructose in soda isn’t off the hook. You’ll find about 22 grams of it in every can of HFCS-sweetened soda, and that’s more than enough to create metabolic chaos in the wrong context. But unlike phosphate, which hits hard no matter what, you do have some leverage when it comes to fructose’s effects.

• Fructose goes straight to your liver and turns into fat — Unlike glucose, which is used by nearly every cell in your body, fructose has a narrow processing window — it’s metabolized almost entirely in your liver.

When your liver is already loaded with energy (especially in sedentary or overfed states), it begins converting that fructose into fat. This results in fat droplets building up inside your liver cells and elevates triglycerides in your bloodstream. Over time, this fat buildup contributes to insulin resistance, fatty liver disease, and rising cardiovascular risk.

• Fructose metabolism generates uric acid as a byproduct — High uric acid levels drive inflammation. They impair nitric oxide availability in your blood vessels, reducing their ability to relax and regulate pressure. Elevated uric acid also promotes oxidative stress through the generation of reactive oxygen species (ROS), further damaging the endothelium — the delicate lining of your arteries. This sets the stage for high blood pressure, kidney strain, and accelerated aging.

• Fructose feeds the wrong microbes and fuels leaky gut — Too much fructose also disrupts your gut. It feeds opportunistic bacteria in your small intestine, creating dysbiosis — a microbial imbalance that weakens your gut barrier. When that happens, endotoxins seep into your bloodstream. These toxic fragments drive systemic inflammation, contributing to joint pain, brain fog, and autoimmune flare-ups.

• Fructose isn’t harmful in small, buffered doses — The damage from fructose largely depends on how and when you consume it. When eaten with fiber-rich whole foods like fruit, fructose does far less harm. The fiber slows absorption, and the nutrients in whole fruit counterbalance the inflammatory effects. But in soda, you’re drinking a fast-acting dose with zero buffering — just straight metabolic stress.

How to Protect Yourself from the Hidden Damage in Soda

If you’ve been drinking soda regularly, even just a few cans per week, your body is already dealing with the consequences. That phosphate-fructose combo doesn’t just affect your blood sugar or waistline. It hijacks your hormones, leaches calcium from your bones, stiffens your arteries, and stresses your kidneys.

But the good news is, you’re not stuck. You can take control starting today by removing the source and supporting your body’s natural defenses. Whether you’re an athlete using energy drinks, a parent reaching for a cola, or just looking to break a soda habit, these steps will help you protect your metabolism and cellular health.

1. Swap soda for sparkling water with fresh citrus — If you’re drinking cola — even the diet kind — you’re getting a dose of inorganic phosphate that hits your bloodstream fast. Switch to sparkling mineral water and squeeze in some lemon or lime. You’ll get flavor, hydration, and a small amount of citrate, which helps support kidney function without adding phosphate or HFCS.

2. Ditch phosphate-loaded energy drinks and reach for coconut water with sea salt — If you’re an athlete or just someone who relies on energy drinks or sports colas, those are hammering your kidneys and arteries every time you sip. Coconut water mixed with a pinch of sea salt offers natural electrolytes without the phosphate hit, helping your cells rehydrate and recover without metabolic fallout.

3. Use maple-salt rice bars instead of commercial gels — If you’re using sports gels or preworkout drinks with cola flavoring or phosphoric acid, it’s time to upgrade. Cook some white rice, mix in a little maple syrup and sea salt, press it into a pan, and let it chill. You’ll get slow-burning carbs, no added phosphate, and a better energy profile that doesn’t disrupt your insulin response.

4. Shield your system with magnesium glycinate — If you drink soda now and then — maybe socially or during travel — take 200 to 400 mg of magnesium glycinate with it. This helps bind phosphate, restore calcium balance, and reduce the risk of vascular and kidney damage. It’s a simple tool to soften the metabolic blow.

5. Use vitamin K2 (MK-7) daily to guard your arteries — Vitamin K2 activates matrix-Gla protein, which prevents calcium from getting deposited in soft tissues like your arteries. I recommend 100 to 200 micrograms per day. If you’ve ever had a history of soda drinking, this is a long-term investment in your vascular health. If you’ve already been exposed for years, don’t panic. Your body has the capacity to recover, but only if you remove the drivers and give it the nutrients it needs to repair.

FAQs About Phosphate-Loaded Sodas

Q: What makes soda harmful beyond the sugar content?
A: While HFCS in soda is damaging to liver and metabolic health, the phosphate — especially in the form of phosphoric acid — delivers a faster and more disruptive blow. Inorganic phosphate is absorbed almost instantly, spiking the hormone FGF23, which suppresses vitamin D, disrupts calcium metabolism, and stresses your kidneys and arteries.

Q: How does phosphate affect my bones and heart?
A: Inorganic phosphate triggers hormonal shifts that leach calcium from your bones, weaken your skeleton, and harden your arteries. The rise in FGF23 and drop in active vitamin D impair calcium handling, while high phosphate levels drive smooth muscle cells in your arteries to behave like bone cells, increasing cardiovascular risk even in healthy individuals.

Q: What are the long-term risks of drinking cola regularly?
A: Regular soda consumption increases your risk for chronic kidney disease, osteoporosis, vascular calcification, and premature aging. Studies show that even people without kidney disease experience microdamage to their filtering systems and a significant increase in cardiovascular mortality risk when phosphate levels remain elevated.

Q: Is HFCS still a problem in soda?
A: Yes. HFCS in soda drives fat production in your liver, raises uric acid, and fuels gut dysbiosis. However, the effects of fructose are context-dependent — fructose in fruit behaves differently than HFCS in soda due to the presence of fiber and protective nutrients. In soda, fructose is unbuffered, rapidly absorbed, and synergistically harmful alongside phosphate.

Q: What can I do to protect myself if I’ve been drinking soda?
A: Eliminate soda and similar phosphate-loaded drinks. Replace them with sparkling water and natural electrolyte options like coconut water with sea salt. Use magnesium glycinate (200 to 400 mg) to buffer phosphate exposure and consider taking vitamin K2 (100 to 200 mcg daily) to help prevent calcium from depositing in your arteries. These steps support bone, kidney, and cardiovascular recovery.

Weekly Health Quiz: Dental Amalgam Facts and Undiagnosed Kidney Damage

1 Which heavy metal is found in dental amalgam fillings?

Lead
Cadmium
Mercury
Mercury is a major component of dental amalgam and can release vapors that may reach tissues throughout the body. Learn more.
Arsenic

2 In high-income countries, which group is more likely to have chronic kidney disease go undiagnosed?

Toddlers
Older teenagers
White men
Women
Women may be up to twice as likely as white men to remain undiagnosed even when signs of kidney damage are present. Learn more.

3 What causes the bright yellow urine sometimes seen after taking a multivitamin?

Unused vitamin C
Extra magnesium
Excess riboflavin
Riboflavin, or vitamin B2, is water-soluble. When the body cannot use all of it at once, the excess is excreted in urine. Learn more.
Excess calcium

4 Which age group in children may be especially sensitive to mercury vapor from dental amalgam?

Children younger than 6
The U.S. Food and Drug Administration (FDA) notes that neurological development is still underway in young children, which may make them more vulnerable to mercury exposure. Learn more.
Children older than 12
Teenagers over age 15
Adults younger than 30

5 Which short-chain fatty acid (SCFA) helps support the intestinal barrier?

Acetate
Butyrate
Butyrate is produced by beneficial gut bacteria and serves as an important fuel source for cells lining the colon. Learn more.
Lactate
Citrate

6 How much did pharyngeal cancer risk rise at 40 grams (g) of alcohol per day?

56%
116%
173%
About 40 g of alcohol per day, or roughly three standard drinks, was linked to a 173% higher risk compared with not drinking. Learn more.
240%

7 About 70% of Campylobacter transmission is linked to what food source?

Poultry products
A 2025 review published in Microorganisms reported that poultry accounts for about 70% of Campylobacter transmission, especially through raw or undercooked meat. Learn more.
Dairy products
Seafood products
Beef products

 

Test Your Knowledge with
The Master Level Quiz

1 Which of these statements about mercury is false?

It is a heavy metal
It can release vapors
It can reach the brain and kidneys
It has a copper-like appearance
Mercury is described as a toxic, highly vaporous heavy metal that can reach the brain, kidneys, placenta, and breastmilk. Learn more.

2 What treatments are commonly used to manage autoimmune conditions?

Antibiotics and antivirals
Steroids and immunosuppressants
Conventional treatment often uses steroids and immunosuppressants to reduce immune activity and control autoimmune symptoms. Learn more.
Antacids and pain relievers
Hormones and blood thinners

3 Why do some people have limited access to nonmercury dental fillings?

Some dental offices continue using mercury because of lower treatment costs
Certain dental plans provide fewer options for alternative filling materials
Some insurance and government programs still favor mercury fillings
Some people have fewer choices because certain insurance plans, government programs, and institutions continue to favor mercury amalgam fillings. Learn more.
Limited coverage can make nonmercury fillings harder for patients to access

4 Where does high blood pressure place constant stress in the kidneys?

Tiny blood vessels that filter waste
Ongoing pressure can damage the kidneys’ filtering system, making it harder to remove waste and control fluid balance. Learn more.
Large arteries that supply minor calyx
Nerves that control the bladder
Muscles surrounding the kidneys

5 Which sweetener is commonly used in sodas and energy drinks?

Agave nectar (AN)
Brown rice syrup (BRS)
Evaporated cane juice (ECJ)
High-fructose corn syrup (HFCS)
High-fructose corn syrup (HFCS) is a common refined sweetener in sugar-sweetened beverages such as sodas, energy drinks, fruit punches, and sweetened lemonades. Learn more.

6 How often does a heart attack occur in the United States?

Every 20 seconds
Every 40 seconds
According to the U.S. Centers for Disease Control and Prevention (CDC), a heart attack occurs about every 40 seconds, totaling roughly 805,000 cases each year. Learn more.
Every 60 seconds
Every 90 seconds

7 Which mineral can become harder to absorb after taking a large dose?

Iron
A large dose of iron raises hepcidin, a hormone that temporarily limits how much iron the body absorbs from later doses. Learn more.
Calcium
Potassium
Zinc

8 Which common type of oil is rich in linoleic acid (LA)?

Coconut oil
Extra virgin olive oil
Vegetable oil
Vegetable oils are a major source of linoleic acid (LA), a polyunsaturated fat that may interfere with mitochondrial energy production when consumed in excess. Learn more.
Avocado oil

9 How much of a conventional chicken’s weight may come from injected liquid and additives?

5%
10%
15%
Some conventional chickens are injected with water, salt, and phosphates, so consumers may be paying for added liquid rather than actual meat. Learn more.
20%

10 Which material can dentists use as a mercury-free alternative to dental amalgam?

Stainless steel
Gold alloy
Elemental silver
Composite resin
The U.S. Food and Drug Administration (FDA) names composite resins and glass ionomer cements as nonmercury filling options that may be used when appropriate. Learn more.

11 What metabolic problem is linked to low vitamin D levels?

Low blood pressure
Iron deficiency
Insulin resistance
Low vitamin D was linked to higher insulin resistance, which may worsen fatty liver disease and related problems such as diabetes and high blood pressure. Learn more.
Stroke

12 About how many tramadol prescriptions are written each year in the U.S.?

10 million
30 million
Tramadol is one of the most commonly prescribed pain medications in the U.S., with more than 30 million prescriptions written each year. Learn more.
50 million
70 million

13 Which food can help support natural butyrate production?

White bread
Fried potatoes
Processed cereal
Green bananas
Green bananas provide resistant starch, which reaches the colon and helps feed beneficial bacteria involved in butyrate production. Learn more.

14 What dangerous condition can some antidepressants cause by lowering blood sodium?

Hyperkalemia
Hyponatremia
Hyponatremia is a dangerous drop in blood sodium that can affect nerves and muscles, causing confusion, fainting, or seizures in severe cases. Learn more.
Hyperglycemia
Hypocalcemia

15 What may speed up bone breakdown and lower bone density?

High serotonin levels
Higher serotonin levels outside the brain may send stress signals to bone tissue, causing bone to break down faster over time. Learn more.
Normal calcium levels
Regular strength training
Consistent meal timing

16 What toxic byproduct forms when the body breaks down alcohol?

Formaldehyde
Acetone
Acetaldehyde
Acetaldehyde can damage DNA, increasing the chance that abnormal cells develop and contribute to cancer over time. Learn more.
Ethylene glycol

17 Which statement is not true about circadian syndrome (CircS)?

It is linked to sleep and metabolic problems
It may raise the risk of early death
Irregular schedules can disrupt the body clock
Nighttime screen use helps restore circadian rhythm
Nighttime screens and artificial light can disrupt the body’s internal clock. Morning sunlight, regular movement, and consistent routines may help support a healthier circadian rhythm. Learn more.

18 What is the brain’s primary calming neurotransmitter?

Dopamine
Serotonin
Glutamate
Gamma-aminobutyric acid (GABA)
Gamma-aminobutyric acid (GABA) helps slow excessive nerve activity, supporting relaxation, calmness, and sleep. Learn more.

19 What simple step can help prevent Campylobacter from spreading in the kitchen?

Use a separate cutting board for raw poultry
Keeping raw poultry separate helps prevent bacteria from spreading to hands, counters, utensils, and foods that may not be cooked. Learn more.
Rinse raw chicken in the kitchen sink
Leave raw chicken uncovered on the counter
Use the same knife for chicken and salad

20 What role does hydrogen-rich water perform in the body?

A stimulant for faster muscle contractions
A selective antioxidant
Hydrogen-rich water contains molecular hydrogen (H2), which helps neutralize harmful free radicals while supporting the body’s natural antioxidant defenses. Learn more.
A replacement for regular, filtered water
A quick fix for food cravings

21 Which vitamin may improve the absorption and delivery of progesterone?

Vitamin A
Vitamin C
Vitamin E
Vitamin E can improve progesterone bioavailability and help carry it through the body by binding with red blood cells. Learn more.
Vitamin K

 

Oral Cancer Risk Could Be Raised by This Common Food

Processed foods make up a large share of the modern diet, yet growing evidence suggests they do more than affect your waistline. Two studies — one tracking hundreds of thousands of adults across Europe for more than a decade, the other focused on patients already diagnosed with oral cancer — point toward the same uncomfortable conclusion: The meats you eat, and the way you prepare them, may help shape your cancer risk over a lifetime.

The tissues most exposed are the ones food touches first. Oral cancer, marked by persistent mouth sores, difficulty swallowing, unexplained bleeding, pain, and lumps or patches that don’t heal, develops in the very surfaces that meet every bite you take. Left unchecked, it spreads into nearby tissues, disrupts speech and eating, and becomes far harder to treat.

The cancers of the stomach and esophagus examined alongside it develop further down the same path, in tissues exposed to many of the same compounds meal after meal. What unites the research is a focus on the degree of processing and the method of preparation rather than any single villainous ingredient.

Curing agents, preservatives, and the compounds formed when meat meets high heat all enter the picture, and the findings suggest these exposures matter most not in one indulgent meal, but in the patterns repeated thousands of times across the years.

That raises the questions the researchers set out to answer: which meats carried the greatest risk, how much did preparation method change the equation, and what happened to the people consuming the highest amounts?

More Processed Meat Was Linked to Higher Cancer Risk

Published in the International Journal of Cancer, a large prospective study investigated whether different types of meat were associated with cancers of the stomach and esophagus.1 Researchers analyzed data from 450,112 adults enrolled in the European Prospective Investigation Into Cancer and Nutrition (EPIC) study and followed them for an average of 14.1 years.

During that time, 876 participants developed gastric cancer and 215 developed esophageal adenocarcinoma, allowing researchers to compare long-term dietary habits with future cancer diagnoses. Rather than grouping all meat together, the researchers examined red meat, processed meat, and white meat separately. Processed meat included foods such as ham, bacon, sausages, processed meat cuts, hamburgers, meatballs, and pâtés.

• Risk rose as processed meat intake increased — For every additional 30 grams of processed meat consumed per day, roughly one slice of thick deli meat or about one sausage link, gastric cancer risk was associated with a 9% higher rate, and esophageal adenocarcinoma risk with a 13% higher rate — though the esophageal adenocarcinoma estimate’s confidence interval was wide, meaning it should be interpreted with caution.

Even more concerning, participants in the highest intake category had a 46% higher risk of gastric cancer and more than double the risk of esophageal adenocarcinoma compared to those in the lowest intake category.

• Certain stomach cancers appeared especially sensitive to processed meat intake — Researchers examined different forms of gastric cancer and found that processed meat was linked to intestinal-type gastric cancer, one of the most common forms of stomach cancer.

Participants with higher processed meat consumption was associated with an 11% higher risk for this subtype for every additional 30 grams consumed daily. The highest consumers also showed elevated rates of diffuse-type gastric cancer, another form that tends to spread more aggressively through the stomach wall. This suggests the association was not limited to one narrow category of disease.

• Men and women did not respond exactly the same way — Gastric cancer occurred about three times more often in men than women overall. Yet the dietary patterns revealed some interesting differences. Among men, processed meat was the primary meat category associated with greater gastric cancer risk. Among women, both processed meat and white meat showed positive associations with certain gastric cancer outcomes.

Researchers didn’t establish why these differences existed, but the findings suggest that biological sex, lifestyle factors, and dietary patterns interact in complex ways that deserve further investigation.

• The findings point toward long-term exposure rather than a single meal — This study wasn’t about what happens after eating a hot dog at a baseball game or enjoying bacon with breakfast once in a while. Instead, it examined eating patterns sustained over many years. Researchers adjusted their analyses for smoking, alcohol intake, body weight, education level, and total calorie intake, yet the association between processed meat and cancer risk remained.

That persistence strengthens the case that something about processed meat itself, not just the habits that tend to accompany it, may be driving the observed increase in risk, though an observational study like this can show a consistent association without proving cause.

Processed meats contain preservatives and curing compounds added to improve shelf life, color, and flavor. Those substances repeatedly contact tissues throughout the digestive tract over decades. From a practical standpoint, every processed meat serving you replace with a less processed option becomes another opportunity to lower your cumulative exposure over time.

How Cooking Methods Change the Risk Equation

For a study published in Nutrients, researchers investigated whether certain dietary habits were associated with a greater likelihood of developing oral cancer.2 Unlike the first study, which examined long-term cancer outcomes across a large European population, this research looked specifically at oral cancer patients and evaluated the role of red meat and thermally processed meat — meat exposed to high cooking temperatures such as frying, roasting, smoking, and grilling.

The researchers used a standardized food frequency questionnaire and statistical analysis to identify dietary patterns associated with oral cancer risk. This was a smaller case-control study of 165 people — 85 oral cancer patients and 80 cancer-free adults — treated at a single hospital in Poland, and it relied on participants’ recollection of their eating habits, a design that carries more uncertainty than the large prospective EPIC cohort described above.

• The concern centered on compounds formed during cooking — In this study, both red meat in general and high-heat preparation were linked to oral cancer risk, but when the cooking methods were compared head to head, smoked meat stood out as the strongest independent factor.

The study emphasized that high-temperature cooking creates compounds known as polycyclic aromatic hydrocarbons (PAHs) and heterocyclic aromatic amines (HAAs). You don’t need to memorize those names. What matters is that these compounds have been identified as mutagenic and carcinogenic, meaning they damage genetic material and contribute to the cancer process.

• Diet contributes to an estimated 30% to 35% of cancers — That means many risk factors aren’t hidden inside your genes or beyond your control. They’re connected to everyday choices repeated thousands of times over a lifetime. The researchers noted that oral cancer remains an important research priority because incidence rates continue to rise worldwide.

This creates an opportunity rather than a reason for fear. Every meal becomes a chance to lower exposure to harmful compounds instead of adding to it.

• The study identified protective dietary patterns as well — Unlike heavily processed and highly heated meat products, vegetable consumption emerged as a protective factor against oral cancer. Researchers also reported that dried fruit consumption was associated with a lower risk of oral cancer, with statistical analysis showing a significant protective relationship.

Interestingly, the same analysis found that fresh fruit intake was associated with a higher risk of oral cancer — a counterintuitive result the researchers themselves flagged, and one they suggested may reflect dietary changes or recall patterns among people already living with cancer rather than a true harmful effect of fruit itself.

These findings suggest that the foods added to your plate matter just as much as the foods removed from it. Building meals around nutrient-dense whole foods gives your tissues access to compounds that support normal cellular maintenance rather than exposing them to additional dietary carcinogens.

• Repeated exposure to carcinogenic compounds from thermally processed meat contributes to cellular damage over time — PAHs and HAAs interact with cells and DNA, increasing the likelihood that genetic mistakes accumulate. When enough of those mistakes occur, normal growth controls begin to fail.

The researchers concluded that limiting meat products prepared with high-heat methods and modifying cooking practices could reduce exposure to these compounds and lower oral cancer risk.

Reduce Your Exposure to Food-Borne Carcinogens

The studies point toward a common theme: repeated exposure to carcinogenic compounds formed during food processing and high-heat cooking appears to play an important role in cancer risk. Instead of focusing on a single food, focus on reducing the sources of exposure that accumulate over years. Small changes repeated every day produce the greatest benefit because they lower the burden on your tissues meal after meal.

1. Replace processed meats with minimally processed protein sources — If processed meats appear in your meals most days of the week, start there. Bacon, sausage, hot dogs, deli meats, and similar products were most strongly associated with the increased risks observed in the research. Replace them with fresh grass fed beef, lamb, eggs, or other minimally processed protein sources.

I like to think of this as a simple scorecard: Each time you swap a processed meat for a fresh protein source, you earn a point toward lowering your long-term exposure.

2. Change how you cook meat — The second study showed that smoked, fried, and heavily roasted meats were associated with greater oral cancer risk. Avoid charring, blackening, and excessive browning. Lower-temperature cooking methods such as slow cooking, stewing, braising, and gentle baking can help reduce the formation of PAHs and HAAs linked to cellular damage. The goal isn’t to fear meat; it’s to avoid creating unnecessary carcinogens during preparation.

3. Build every meal around protective whole foods — Vegetables emerged as a protective factor in the oral cancer study. Make them a routine part of lunch and dinner rather than an occasional side dish. If you struggle with consistency, create a simple challenge: include at least one colorful vegetable with every main meal. Over time, those choices may help displace foods associated with higher risk while supplying nutrients that support normal tissue maintenance and repair.

4. Reduce your reliance on ultraprocessed foods — Look beyond meat alone. Many packaged convenience foods contain seed oils and other refined ingredients, additives, and industrial processing byproducts. If you’re eating most of your meals from boxes, bags, or drive-through windows, begin replacing one item at a time with a whole-food alternative.

Sustainable progress comes from steady improvement, not perfection. Even replacing one ultraprocessed food each day creates meaningful change over the course of a year.

5. Track your weekly exposure and make steady changes — Many people underestimate how often processed foods appear in their diet. Spend one week keeping a simple tally of processed meats, heavily charred foods, and ultraprocessed snacks. Awareness changes behavior. Once you know your baseline, challenge yourself to reduce that number by 25% the following week, then continue improving gradually.

The research suggests that cancer risk reflects long-term dietary patterns, so your greatest advantage comes from the habits you repeat consistently rather than the occasional indulgence.

This article is for informational purposes only and does not constitute medical advice. Consult a qualified healthcare provider before making changes to your health regimen.

FAQs About Oral Cancer and Processed Meats

Q: How much processed meat was associated with increased cancer risk?
A: The International Journal of Cancer study found that every additional 30 grams of processed meat consumed daily, roughly the amount in a sausage link or a few slices of deli meat, was associated with a 9% higher risk of gastric cancer and a 13% higher risk of esophageal adenocarcinoma.3 People who consumed the most processed meat had a 46% higher risk of gastric cancer and more than double the risk of esophageal adenocarcinoma compared to those who consumed the least.

Q: Why does processed meat appear to increase cancer risk?
A: Researchers believe the risk stems from repeated exposure to preservatives, curing agents, and other compounds added during processing, along with carcinogenic substances formed during certain cooking methods. These compounds repeatedly contact tissues throughout the digestive tract over many years, increasing the likelihood of cellular damage and genetic changes that contribute to cancer development.

Q: Does the way meat is cooked matter?
A: Yes. The Nutrients study found that smoked, fried, roasted, and other heavily heat-treated meats were associated with increased oral cancer risk. High-temperature cooking produces compounds called PAHs and HAAs, which are known to damage DNA and are thought to contribute to cancer development. Smoked meat showed the strongest independent association with oral cancer risk.

Q: Are all types of meat associated with the same level of risk?
A: It depends on the cancer. For stomach and esophageal cancer, the large European study found the clearest associations with processed meat, not red meat. For oral cancer, the second study linked both red meat and high-heat preparation to higher risk. The findings suggest that processing methods and preparation techniques play an important role in determining risk rather than meat consumption alone.

Q: What dietary habits were linked to lower oral cancer risk?
A: The oral cancer study identified vegetables as a protective dietary factor. Researchers also found that dried fruit consumption was associated with a lower risk of oral cancer. Building meals around whole, minimally processed foods while reducing processed meats and heavily charred foods may help lower exposure to carcinogenic compounds and supports normal tissue health.

Test Your Knowledge with Today’s Quiz!
Take today’s quiz to see how much you’ve learned from yesterday’s Mercola.com article.

What is the most common cause of bacterial gastroenteritis worldwide?

Campylobacter
Campylobacter commonly lives in the intestines of birds, including farmed chickens, and contaminated poultry is a major source of human infection. Learn more.
Salmonella
Listeria
Shigella

How Industrial Chicken Farming Is Reshaping the Most Common Cause of Food Poisoning

Conventionally raised chicken may be the protein Americans eat most often,1 and according to a recently published Oxford-led study, these birds now numbers roughly 31 billion worldwide and accounts for about 70% of all bird biomass on Earth.2,3 Because of the increasing demand, poultry are raised at very high densities in intensive systems — conditions the researchers link to the spread and mixing of foodborne pathogens.

In addition, rising antimicrobial resistance is making bacterial infections increasingly difficult to treat,4 with some antibiotics previously used against them no longer effective. The bacterium in question is Campylobacter,5 and if you have ever spent a few days being miserable after eating chicken for dinner, you may already have met it.

Separately, poultry has been implicated in urinary tract infections (UTIs) as well. A genomic attribution study across eight Southern California counties estimated that about 18% of E. coli UTIs were traceable to food-animal sources, and retail sampling in that study found E. coli contamination highest in poultry products.6

I have argued for years that factory farmed chicken deserves far more scrutiny than it gets, mainly because of the linoleic acid (LA) these birds accumulate from the grain they are fed. Now, the Oxford analysis adds another concern that consumers have to keep in mind when choosing these conventionally raised meats.

Genomic Analysis Links the Rise of Industrial Poultry to a 100-Fold Jump in Bacterial Host Switching

The featured study, published in the Proceedings of the National Academy of Sciences (PNAS) , was a genomic and modeling analysis rather than the clinical trial or laboratory experiment more typical of this field. Specifically, the researchers set out to test how the explosive growth of chicken farming has changed how Campylobacter jejuni moves between wild birds and farmed poultry, and whether life in that new environment has left marks on the bacterium’s genes.

For context, this species is one of the world’s most common causes of bacterial gastroenteritis — inflammation of the stomach and intestines.7

• The dataset covered four and a half decades and 27 countries — The team analyzed 2,747 C. jejuni genomes, 1,892 collected from chickens and 855 from wild birds, representing 1,081 sequence types sampled across 27 countries between 1979 and 2024. Sequence types are genetic fingerprints used to tell bacterial lineages apart, and having more than a thousand of them gave the researchers enough resolution to trace which strains had jumped hosts and when.

According to the paper, chicken populations have risen sevenfold since the 1960s, and around 550 million people, including 220 million children under 5 years old, experience foodborne diarrhea each year, with Campylobacter the most common bacterial cause. It’s also estimated that 60% to 80% of human infections are attributable to isolates originating in poultry, though the authors caution that this figure is “something of an oversimplification.”

• Host switching accelerated sharply after industrial-scale farming took hold — Reconstructing the bacterium’s family tree, the researchers estimated that the rate at which C. jejuni moves between chickens and wild birds has been more than 100 times higher since roughly 1900 than it was before chickens were domesticated. However, an intermediate step showed up much earlier.

Between about 3500 BC and 1900 CE, the transition rate ran roughly 15 times above pre-domestication levels, so domestication mattered, but intensification mattered more.

The authors tested how sensitive those figures were to uncertainty in the age of the phylogenetic tree and reported increases of 12.1- to 16.5-fold for the pre-intensification period and 86.9- to 119-fold for the intensification period. They also flagged that their tree probably underestimates the root date, and that the relatively small number of wild bird samples may also understate transition rates — both of which would make these fold changes conservative rather than inflated.

• Chicken-adapted lineages grew faster than the chicken population itself — Across seven chicken-associated clonal complexes (CCs), which refer to groups of closely related lineages, the study estimated increases in effective population size — a measure of how much genetic diversity a bacterial population carries — of 50- to 200-fold for many of the chicken-associated lineages. The individual results varied widely and all of the estimates carry wide credible intervals.

For the lineages that expanded, that growth outpaced the sevenfold growth in chicken numbers over the same period, which the researchers interpret as evidence that these bacterial populations are not simply scaling up with host abundance, but experiencing ecological shifts that amplify genetic diversity, including more efficient transmission, reduced population bottlenecks, and greater opportunity for gene exchange. Sam Sheppard, a senior author of the paper, puts it more vividly:

“As the chicken population has exploded, they’ve increasingly picked up strains from different wild birds and become a cauldron of bacterial evolution. Lots of strains come together and hybridise. We do not want that, because that’s where new Frankenstein monster bugs emerge.”8

• Modeling suggested that flock size alone can tip the balance — Using an epidemiological model of linked chicken and wild bird populations, the researchers found that once chicken numbers pass a threshold size, strains originating in wild birds can become self-sustaining in chickens, even when those strains are poorly suited to the new host. In their simulations, a strain at a tenfold transmission disadvantage still proliferated once the chicken population was large enough.

Raising the contact rate between wild birds and flocks had relatively little effect on that tipping point, while host population size did. The paper describes high-density chicken flocks as possible ecological “pathogen sponges” that absorb and amplify diverse strains while sustaining high prevalence and coinfection rates.

However, the authors are explicit that many of the model’s parameters are difficult to estimate reliably, and that the simulations are intended as an informative abstraction of reality rather than a prediction about any specific population.

• Genome-wide analysis pointed to traits that help the bacterium persist — Comparing chicken and wild bird isolates, the study identified genes associated with chicken colonization, including tetO, which encodes a protein that confers tetracycline (a type of antibiotic) resistance, and cj1563c, a regulator that appears to be involved in metal handling, though the paper notes its specific function remains uncharacterized.

The authors suggest that tetO’s enrichment in chicken isolates is explained by widespread antimicrobial use in poultry production, in contrast to the low antibiotic exposure typical of wild birds. Separately, they report that tetO prevalence also tracks with sampling year, with isolates collected since 2015 showing much higher prevalence.

Other associated genes involved zinc acquisition, chemotaxis-linked motility, and oxidative stress tolerance, with more than half of the chicken-associated sites tied to handling oxidative stress. The researchers raise a specific concern here: Traits that increase oxygen tolerance may indirectly select for strains better able to survive along the food chain. They stress that these sites are strong candidates and that experimental work would be needed to confirm what each one contributes.

What Research Suggests About Why Chickens Carry Foodborne Microbes Without Getting Sick

So how can chickens harbor pathogenic bacteria without appearing visibly sick in the first place? A 2025 narrative review published in the journal Microorganisms addresses this question, as part of a broader survey of the major bacterial foodborne pathogens in poultry and the probiotic strategies being studied to control them.9

• The review frames the intensification of poultry as the risk multiplier — Poultry production has grown from about 15.1 million metric tons in 1970 to roughly 103 million metric tons in 2024 to 2025, making it the fastest-growing meat sector worldwide.

The U.S. alone produced 9.33 billion broiler chickens in 2024 with a production value near $70.2 billion. With this in mind, the researchers state that the intensification of poultry farming has increased the risk of zoonotic transmission of bacterial pathogens.

The pathogens also carry great economic cost. Citing U.S. Department of Agriculture (USDA) Economic Research Service figures, the researchers report that 15 major pathogens account for 95% of reported foodborne illnesses at a total economic burden of $15.6 billion.

The review also cites an estimate that foodborne illness costs the U.S. about $75 billion annually, of which Campylobacter accounts for about $11 billion. An estimated 49 million foodborne illness cases occur in the U.S. each year, affecting roughly 15% of the population.

• Poultry products account for most Campylobacter transmission — The review identifies C. jejuni as the most common bacterial cause of human gastroenteritis globally and reports that poultry products contribute to 70% of its transmission. Elsewhere, it puts the share of human infections from undercooked poultry meat at 50% to 80%, with contaminated food and water and direct animal contact making up the remainder.

Transmission through contaminated poultry products is estimated to cause 1.5 million foodborne infections annually in the U.S. Most cases resolve on their own, but the review reports a hospitalization rate of 10% and deaths in 0.2% of cases, and notes that infection in immunocompromised people has been associated with severe complications including reactive arthritis, inflammatory bowel disease, and Guillain-Barré syndrome.

• Broiler flocks can be almost universally colonized while the birds appear healthy — Detection rates for Campylobacter may reach 100% in broiler flocks at slaughterhouses, with cecal colonization levels up to 1 billion colony-forming units (CFU) per gram of cecal contents, and yet these infections generally cause little or no clinical disease in chickens. For those unfamiliar, the cecum is a pouch in the bird’s intestinal tract where these bacteria concentrate.

The threshold for colonizing a bird is remarkably low. The review reports that as few as 35 colony-forming units in contaminated feed or water can successfully colonize a chicken’s gut, with colonization of the avian digestive tract occurring within 24 hours. For humans, ingesting a small dose of 500 to 900 colony-forming units in contaminated poultry products has been associated with severe diarrheal illness.

• The difference between a healthy bird and a sick person comes down to mucus, temperature, and immune recognition — Laboratory work reviewed by the researchers found that chicken mucus reduces the binding and internalization of C. jejuni into human epithelial cells, while human mucus enhances both processes, with purified chicken large-intestine mucins (large proteins that give mucus its protective, slippery character) diminishing bacterial binding to human colonic cells by 60% to 70%.

Body temperature may also matter. The researchers describe a hypothesis that the divergent body temperature of chickens, 107.6 degrees Fahrenheit (42 degrees Celsius), compared with the human 98.6 degrees Fahrenheit (37 degrees Celsius), influences how the bacterium behaves, since human temperature facilitates expression of certain virulence factors.

The review qualifies this, noting that at least one adhesion gene is switched on at both chicken and human body temperatures, and that these gene-expression differences do not fully account for the contrast — the underlying mechanisms are not entirely understood.

Additionally, the structural mimicry between a component of the bacterial surface called lipooligosaccharide and human nerve gangliosides can ultimately trigger Guillain-Barré syndrome, which is a form of immune evasion the review says is not observed in chickens. In birds, the bacterium appears to stay largely in the mucus layer under immunological tolerance, and in people, it invades the intestinal lining.

5 Practical Steps to Protect Yourself from Foodborne Microbes

The featured studies show how the scale and density of modern poultry production shape the evolution and spread of these harmful bacteria. In my view, that also means your protein choices carry consequences beyond what the nutrition label tells you. The steps below can help you make safer shopping choices.

1. Treat raw poultry as a potential contamination source, not just a food — The bacteria in question live in the bird’s gut, and heat handles whatever is on the meat itself. The problem is the invisible transfer that happens first, such as a drip on the counter, a knife that goes from the chicken to the salad, and hands that touch the faucet before the soap.

To lower the risk of cross contamination, use a separate cutting board for raw poultry (or any meat for that matter), and wash your hands and anything the package touched with hot soapy water. Skip rinsing the bird in the sink, since rinsing mainly spreads droplets around your kitchen. Cook the meat thoroughly and keep the vegetable ingredients away while you work.

2. Prioritize ruminant meat, eggs, and low-fat seafood as your primary protein — In the Southern California retail-meat sampling described earlier, E. coli contamination was lowest in beef (47%) and highest in poultry — 82% for turkey and 58% for chicken — and ruminant meats such as beef, lamb, and bison carry a more favorable fat profile.10

Conventionally raised chicken accumulates high levels of linoleic acid from the grain it eats, and that fat accumulates in your tissues as well, where it may compromise cellular energy production over time.

Pastured eggs are another excellent protein source, and warm-water, low-fat finfish rounds out the rotation. Chicken becomes an occasional food rather than the thing you default to when cooking your dinner. If you’re still considering eating chicken, I recommend the pasture-raised variety.

3. Get your protein target right rather than eating more of everything — Aim for roughly 15% of your daily calories from protein, or about 0.6 to 0.8 grams per pound of your ideal body weight, with roughly a third of that coming from collagen sources such as bone broth, slow-cooked cuts, or high-quality collagen powder.

Most people who worry about protein are worried about muscle health and hitting a sensible target with better-quality sources trumps piling on more of whatever is cheapest at the store.

4. Build gut resilience with foods your stomach can handle — A robust gut lining is part of your defense against anything that arrives with your food, and many people are working with a compromised microbiome. Start with whole fruits and white rice rather than loading up on high-fiber foods, which can raise endotoxin levels when the gut is already struggling.

Gas, cramping, diarrhea, or constipation are signals to slow the progression down rather than push through it. Then, move toward more complex carbohydrates and starches as digestion improves.

5. Support healthy vitamin D levels, preferably through sensible sun exposure — Vitamin D functions as a powerful epigenetic regulator and supports immune function throughout the body, and sunlight around solar noon is the most effective way to get it. If you have been eating a diet high in seed oils, ease into stronger sun gradually, since high linoleic acid levels increase susceptibility to sunburn.

A blood test for 25(OH)D tells you where you actually stand, with 60 to 80 ng/mL being the range to aim for, and pairing vitamin D with magnesium and vitamin K2 helps your body use it properly. Talk to your health care provider about whether this testing is appropriate for you.

Frequently Asked Questions (FAQs) About Farmed Poultry and Food Poisoning

Q: What is Campylobacter, and how do most people get it?
A: Campylobacter is the most common bacterial cause of gastroenteritis worldwide, and it lives in the guts of birds, including farmed chickens. A 2025 narrative review published in Microorganisms reports that poultry products account for about 70% of its transmission and puts the share of human infections from undercooked poultry meat at 50% to 80%, with contaminated food and water and direct animal contact making up the rest. Most exposure traces back to raw meat and the surfaces it touches.

Q: Does cooking chicken thoroughly take care of the risk?
A: Heat handles the bacteria on the meat itself. The gap is everything that happens before the pan, such as a drip on the counter, a knife that moves from the chicken to the salad, hands that touch the faucet before the soap. Giving raw poultry its own cutting board, washing hands and surfaces with hot soapy water, and skipping the sink rinse can address the part that cooking cannot.

Q: Why don’t chickens get sick if they carry so much of this bacterium?
A: Detection rates can reach 100% in broiler flocks at slaughterhouses, with very high bacterial loads in the birds’ intestinal tracts, and yet these infections generally cause little or no clinical disease in chickens. The 2025 Microorganisms review points to differences in mucus composition, body temperature, and immune recognition.

The review also notes that these mechanisms are not entirely understood. In birds, the bacterium largely stays in the mucus layer under immunological tolerance, while in people it invades the intestinal lining.

Q: How serious is a Campylobacter infection?
A: Most cases resolve on their own. The review reports a hospitalization rate of 10% and deaths in 0.2% of cases, and notes that infection in immunocompromised people has been associated with severe complications including reactive arthritis, inflammatory bowel disease, and Guillain-Barré syndrome. Researchers also point to rising antibiotic resistance, since some drugs once used against these infections are no longer effective.11

Q: What does chicken farming have to do with antibiotic resistance?
A: The PNAS analysis found that tetO, a gene conferring tetracycline resistance, appeared more often in Campylobacter from chickens than from wild birds, with much higher prevalence in isolates collected since 2015. The researchers relate this to widespread antimicrobial use in poultry production, in contrast to the minimal antibiotic exposure of wild birds. The study identified an association through genome comparisons rather than testing any single farming practice directly.

This article is for informational purposes only and does not constitute medical advice. Consult a qualified health care provider before making changes to your health regimen.

Test Your Knowledge with Today’s Quiz!
Take today’s quiz to see how much you’ve learned from yesterday’s Mercola.com article.

By what age does nearly half the world drink alcohol regularly?

12 years old
14 years old
15 years old
Nearly half of people worldwide age 15 years and older drink alcohol with some regularity. Learn more.
18 years old

Hydrogen-Rich Water Linked to Reduced Muscle Damage from Exercise

Editor’s Note: This article is a reprint. It was originally published August 23, 2025.

Resistance training helps preserve muscle and support metabolic health, but it also produces microscopic damage to muscle fibers. When you’re younger, this damage acts as a signal for adaptation and growth. As you get older, though, your body becomes less efficient at managing the physiological stress that comes with physical activity.

If you’re over 50 and using exercise to maintain health and vitality, recovery becomes just as important as the workout itself. The need for strategies that support healing, reduce inflammation, and build resilience is growing, especially among those who want to avoid pharmaceutical solutions. One approach gaining attention is hydrogen-rich water, a simple tool with growing scientific backing.

Researchers at the University of Novi Sad, Serbia, examined whether drinking hydrogen-rich water could help untrained older adults adapt more effectively to a structured resistance training program. Their results suggest this approach offers a low-risk way to support exercise recovery and strengthen physiological resilience as you age.1

What Is Hydrogen-Rich Water?

Hydrogen-rich water is water infused with molecular hydrogen gas (H2). This form of hydrogen consists of two atoms bonded together and dissolved into water under controlled conditions. Unlike hydrogen bound in food or tissues, molecular hydrogen exists as a free gas with distinct biological effects. Once dissolved, it enters your bloodstream and reaches cells and tissues directly.2,3

• It acts as a selective antioxidant — Instead of suppressing all oxidative activity, hydrogen specifically targets harmful free radicals like hydroxyl radicals and peroxynitrite. These compounds are known to damage muscle tissue during and after exertion. By neutralizing them selectively, hydrogen supports healing without disrupting your body’s natural signaling systems.

• It supports the body’s own antioxidant defenses — Alongside its direct antioxidant action, hydrogen triggers a mild cellular stress response known as molecular hormesis. This adaptive signal strengthens internal defense mechanisms by increasing production of protective enzymes like glutathione, catalase, and superoxide dismutase.

This response is largely driven by NRF2, a master regulator of your antioxidant pathways. By enhancing your body’s internal control systems rather than masking symptoms, hydrogen helps restore redox balance and manage inflammation during times of physical or metabolic stress.

• It reaches the mitochondria, where protection is most needed — Because hydrogen is the smallest molecule in the universe, it passes easily through cell membranes and enters sensitive areas like the mitochondria. This is especially relevant during periods of oxidative stress or aging, when mitochondrial function is most vulnerable to damage and least able to self-repair.

• You can drink hydrogen-rich water, soak in it, or use it in cold plunges — Hydrogen is rapidly absorbed whether you ingest it or apply it to the skin. If you’re dealing with joint pain, hydrogen baths have helped some people experience uninterrupted, pain-free sleep after years of discomfort. Cold plunges with hydrogen tablets increase absorption even further, especially since cooler water holds more gas and penetrates more deeply during recovery.

To learn more about the benefits of hydrogen-rich water, read “How Molecular Hydrogen Helps Reduce Inflammation and Support Cellular Repair.”

Hydrogen Water Supports Muscular Resilience in Adults Over 50

The featured randomized, double-blind, placebo-controlled study, published in Research in Sports Medicine,4 involved 27 healthy participants between the ages of 50 and 65, all of whom were untrained at the outset and consented to take part in a structured exercise intervention. They consumed either hydrogen-rich water (12 milligram molecular hydrogen per serving) or placebo water (less than 0.1 parts per million hydrogen) twice daily for six weeks, alongside supervised resistance training.

• The most notable benefits involved markers of muscle damage — Both the hydrogen and placebo groups demonstrated improvements in muscle strength compared to their own baselines. However, when comparing outcomes between groups, the hydrogen-rich water produced more favorable shifts in several physiological markers, specifically lower levels of creatine kinase and myoglobin, suggesting that the intervention helped protect against acute muscular injury related to training.

• Hormone and lipid profiles also improved — Hormonal analysis showed that participants in the hydrogen group experienced modest but statistically significant increases in hormones such as free testosterone, which signal enhanced endocrine support for physical adaptation. Improvements were also seen in lipid profiles, with reductions in total cholesterol and LDL cholesterol levels following the six-week intervention.

• In addition to physical markers, researchers assessed sleep quality — The hydrogen group reported positive changes in five out of seven measured domains of sleep. These improvements were absent in the placebo group. Although the study was not primarily designed to measure sleep, the observed changes suggest a broader systemic benefit that may extend beyond the musculoskeletal system.

• Researchers call for larger trials to confirm hydrogen’s exercise benefits — With an established safety profile and no reported adverse effects, the authors concluded that hydrogen-rich water offers a low-risk hydration strategy. Sergej Ostojic, one of the study’s authors, told NutraIngredients:5

“While further studies are needed in broader populations, hydrogen-rich water appears to be a promising and accessible option for supporting exercise adaptation in adults over the age of 50 who are just starting a fitness program …

Future studies should focus on large, well-controlled trials involving different populations and types of physical activity. It’s important to standardize how much hydrogen is used and to measure its actual concentration at the time of intake.

Long-term safety, individual responses, and how HRW (hydrogen-rich water) compares to other health strategies need to be studied. Real-world trials will help assess how practical and effective HRW is in daily life.”6

What Are the Broader Benefits of Molecular Hydrogen?

The benefits of molecular hydrogen go beyond muscle recovery. Because it acts directly on cellular defense and repair systems, hydrogen influences biological pathways that support resilience across multiple organs and tissues. Research has shown that molecular hydrogen contributes to:

• Improved metabolic regulation and insulin sensitivity — In models of metabolic syndrome and diet-induced fatty liver, hydrogen helped preserve liver function and improve insulin signaling. Researchers observed stimulation of GLUT4 translocation, a process normally triggered by insulin, suggesting that hydrogen may enhance glucose uptake and metabolic recovery even in insulin-resistant states.7,8

• Enhanced circulation and vascular function — Hydrogen supports microvascular health by promoting better blood flow. This improves tissue oxygenation and nutrient delivery, which are critical for healing and physical recovery. These benefits may be especially important in individuals with impaired circulation or chronic joint stiffness.9

• Neurological support and stress resilience — Hydrogen crosses the blood-brain barrier and supports mitochondrial energy production in neurons. Studies and user reports link hydrogen use with improvements in mental clarity, reduced fatigue, better stress regulation, and more restorative sleep.10,11,12

• Reduced joint pain and inflammation — Hydrogen’s anti-inflammatory action extends to joints and connective tissues. Individuals with chronic pain or stiffness, whether from age, injury, or overuse, have reported meaningful relief after using hydrogen-rich water or hydrogen baths. In some cases, this translated into more comfortable, uninterrupted sleep for the first time in years.13,14

To explore its full range of systemic benefits, read “Molecular Hydrogen — The Powerful Antioxidant You’ve Never Heard Of.”

How to Incorporate Hydrogen-Rich Water Into Your Routine

With all the benefits of hydrogen-rich water, it’s worth making it part of your daily routine. Drinking hydrogen-rich water offers a practical way to activate your body’s cellular repair mechanisms. The key is to follow a method that ensures effective concentration, timing, and consistency. If you’re ready to get started, follow these steps to use it effectively:

1. Use high-concentration molecular hydrogen tablets — Quality tablets generate about 8 to 10 ppm of dissolved hydrogen gas when properly dissolved in water. Some products contain contaminants, so choose high-quality tablets from trusted sources — learn more in “The Science Behind Molecular Hydrogen Tablets.”

2. Consume 1 liter promptly for a strong therapeutic pulse — Dissolve two tablets in 1 liter of room-temperature water and drink the entire amount in one sitting. Keep in mind that once the tablets are fully dissolved and the water has turned white, which takes anywhere from 30 seconds to a couple of minutes, depending on the temperature of the water, you’ll want to drink it as fast as possible.

Room temperature water is best, allowing the tablets to dissolve in about 90 seconds. Between 45 and 90 seconds, the water will have a stable concentration of hydrogen at or above 10 ppm. Between one and six minutes, it will drop from 10 ppm to 1.6 ppm. So, the faster you drink it, the better.

3. Split dosing is possible, but single pulses are more effective — If drinking a full liter feels difficult, you can divide it into two 500 mL servings with one tablet each. One dose in the morning and one in the afternoon still delivers benefits, though the most robust effects tend to come from taking the full pulse at once, particularly on an empty stomach.

4. Cycle your intake to maintain effectiveness — Taking periodic breaks helps preserve your body’s responsiveness to hydrogen. A few days to a few weeks off can reset cellular sensitivity. Many users adjust frequency based on physical stress, illness, or recovery demands, using more during intense periods and less during calm or baseline states.

5. Pair with foundational lifestyle habits — Hydrogen-rich water works best when combined with health-supportive practices like whole-food nutrition, movement, and good sleep. It enhances the body’s response to those inputs.

With no taste or toxicity, hydrogen-rich water fits seamlessly into your daily life. Taken as recommended above, it becomes a powerful tool for supporting your body’s repair systems.

Frequently Asked Questions (FAQs) About Hydrogen-Rich Water

Q: What is hydrogen-rich water, and what are its benefits?
A: Hydrogen-rich water is water infused with molecular hydrogen gas (H2), a biologically active molecule that’s absorbed into the bloodstream. It acts as a selective antioxidant, neutralizing harmful free radicals, and supports the body’s natural defense systems through mechanisms like molecular hormesis and NRF2 activation. Many people use it to support recovery, reduce inflammation, and enhance resilience after physical stress.

Q: How does hydrogen-rich water support my exercise recovery?
A: Hydrogen-rich water helps modulate inflammation and oxidative stress, both of which increase during and after resistance training. It protects muscle tissue by reducing markers of muscle damage like creatine kinase and myoglobin. It also activates endogenous antioxidant pathways that support faster recovery and better adaptation, especially in older adults or those new to exercise.

Q: Why are hydrogen tablets better than other methods?
A: Molecular hydrogen tablets provide higher concentrations of dissolved hydrogen than water ionizers or bottled hydrogen water. They’re portable, easy to use, and reliably deliver bioactive hydrogen when dissolved in water. When consumed immediately after the reaction, they create a strong therapeutic pulse that is more effective than continuous low-level exposure.

Q: Should I cycle the use of hydrogen water or take it continuously?
A: Hydrogen is most effective when used in pulses. Continuous intake throughout the day can blunt the response, whereas strategic cycling (taking periodic breaks) helps preserve sensitivity and maximize long-term effects. Many users adjust intake based on recovery demands, stress levels, or training cycles.

Q: What’s the best time of day for me to drink hydrogen water?
A: Hydrogen water is best consumed in the morning on an empty stomach, or immediately before or after exercise. This timing supports higher absorption, better mitochondrial activity, and a more effective cellular response during recovery.

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