FoundMyFitness - #090 How Exercise Prevents & Reverses Heart Aging | Benjamin Levine, M.D.

Episode Date: May 28, 2024

Download the 13-Page "Omega-3 Supplementation Guide" Discover my premium podcast, The Aliquot Join over 300,000 people and sign up for my newsletter Become a FoundMyFitness premium member to get ac...cess to exclusive episodes, emails, live Q+A's with Rhonda and more Today's guest, Dr. Benjamin Levine, has shown that with the right exercise protocol, people who were sedentary most of their lives could reverse up to 20 years of heart aging. Dr. Levine is one of the world's leading experts in understanding how the heart adapts under a variety of conditions, whether that's exercise, elite athleticism, or hospital bedrest. Or even highly exotic conditions, like prolonged exposure to microgravity. He is the founding director of the Institute for Exercise and Environmental Medicine at UT Southwestern in Dallas. Timestamps (00:00) Introduction (06:21) Bed rest vs. aging (11:40) Does exercise protect against long COVID? (17:14) How 12 weeks of bed rest affects heart size (18:42) Why a brand-new rubber band mimics a lifetime of endurance training (22:14) The exercise dose that preserves youthful cardiovascular structure (24:22) The exercise regimen that reversed 20 years of heart aging (28:05) What it takes to reverse vascular age by 15 years (33:29) Benefits of starting an exercise regimen in your 70s (39:17) Risks of high-intensity exercise (42:42) Balancing high-intensity & moderate-intensity training (47:39) Training for health vs. training for performance (49:58) Make exercise a part of your personal hygiene (51:01) Why does VO2 max correlate with longevity? (58:29) The 2018 JAMA study on cardiorespiratory fitness & mortality (1:04:06) How does change in fitness over time affect mortality? (1:06:19) Why exercise non-responders should consider "increasing the dose" (1:10:08) The 2 limiting factors for improving VO2 max in competitive athletes (1:17:20) Heart adaptations in purely strength-trained vs. endurance athletes (1:23:09) Why pure strength-trainers should incorporate endurance training (1:26:53) How strength training affects blood pressure (1:31:27) How exercise influences cardiac output in mitochondrial myopathy patients (1:33:25) Does CrossFit count as endurance training? (1:35:50) What's the best exercise for improving blood pressure? (1:40:57) Lifestyle strategies for treating hypertension (1:43:26) Why recovery is key to reaping the benefits of a training stimulus (1:47:22) The best indicator of being overtrained (1:54:46) Why HRV is a poor indicator of recovery (2:00:02) Why do men tend to be faster runners than women? (2:03:34) Can women achieve similar aerobic exercise benefits doing 2x less than men? (2:05:06) Are there cardiovascular benefits of HRT in women? (2:08:45) Exercise volume vs. coronary plaque calcification (2:15:35) How exercise duration & intensity affect coronary calcium levels (2:18:48) Why high exercise duration & intensity increases risk of Afib (2:26:00) Why you shouldn't become an endurance athlete to "live longer" Watch this episode on YouTube Show notes are available by clicking here

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Starting point is 00:00:00 Everyone has to get old sometime. But what if, at least for some aspects of aging, we didn't have to. Imagine if the loss of heart size and the stiffness that often comes with aging could be reversed, even well into late middle age. And not by a little, by a lot. Today's guest, Dr. Benjamin Levine, has shown that with the right exercise protocol, people who are sedentary most of their lives could reverse up to 20 years of heart aging. Dr. Levine is one of the world's leading experts in understanding how the heart adapts under a variety of conditions, whether that's exercise, elite athleticism, or hospital bed rest, or even highly exotic conditions like prolonged exposure to microgravity. He is the founding director of the Institute for Exercise and Environmental Medicine at UT Southwestern
Starting point is 00:00:47 in Dallas, a leading facility renowned for his research in cardiovascular physiology. His expertise also extends into space medicine, where he advises NASA, underscoring his broad, deeply fundamental understanding of how the heart changes over time. Additionally, he is a recognized authority in sports cardiology, consulting for organizations such as the NCAA, NFL, NHL, and various professional sports leagues. The implications of being able to reverse any aspect of aging are immense, but the key ingredient truly is committing to the process, doing the routine, sometimes boring stuff day in and day out, and sometimes embracing a little challenge too. Dr. Levine's research highlights the importance of ongoing commitment.
Starting point is 00:01:35 It is one of his landmark trials that he and his team showed that participants who had been sedentary for most of their lives put them on a structured, graduated training regimen. This program culminated in five to six hours of physical activity per week, sustained over two years. Participants engaged in a variety of exercises ranging from high-intensity interval training sessions like the Norwegian 4-by-4 to light aerobic activity on recovery days and strength training. The results were remarkable, demonstrating that it is possible to reverse significant aspects of heart aging with the right commitment and exercise protocol. But let's suppose for a moment our goal isn't just to bail ourselves out at the absolute last minute with some type of
Starting point is 00:02:22 Herculean effort, and instead we ask ourselves what we should have been doing all along. What is the right routine to age best from the start? Dr. Levine's research also looked retrospectively at the hearts of individuals based on their self-reported activity levels over 25 years. It was the committed exercisers alone, those who consistently exercised at least four to five days per week, who saw significant benefits in staving off the gradual increase in cardiac stiffening and heart shrinkage seen later in life. This highlights the importance of exercise as part of your personal hygiene and provides insight into how much we should be exercising throughout our life to maintain heart health.
Starting point is 00:03:05 However, as we push the boundaries of what our bodies can handle, some studies have raised concerns about the potential risk associated with extreme exercise, such as high levels of coronary artery recalcification seen in marathon runners and a greater risk of heart arrhythmia known as atrial fibrillation in veteran endurance athletes. Today, Dr. Levine will help us explore the balance between beneficial and potentially risky physical activities, clarifying how intense exercise regimens might influence heart health differently and what this means for those who regularly engage in high endurance activities. We delve into whether the stabilization of plaque through an exercise and
Starting point is 00:03:46 intense exercise translates to lower risk of cardiovascular events, despite the higher calcification levels often reported. In this episode, Dr. Levine and I also discuss why three weeks of bed rest produces a functional decline that is actually worse for fitness than 30 years of aging, and also how bed rest affects the size of the heart mimicking aging, how to make exercise a part of your personal hygiene and some of Dr. Levine's key insights on how to do that best. His ultimate prescription for life, blending resistance, aerobic endurance training, and more conventional programming like CrossFit into one package to maintain a youthful heart even into older age. Whether CrossFit counts as endurance training, resistance training, or both. Why pure strength trainers should incorporate endurance training and vice versa.
Starting point is 00:04:37 The number one sign you're overtrained. Dr. Levine's activity recommendations for recovery days. practical lifestyle protocols for lowering blood pressure, why you shouldn't become an endurance athlete just to live longer and so much more. As a companion to this episode, we've prepared a thorough guide on omega-3 supplementation that I think will be invaluable for anyone looking to understand this complex topic more deeply. It addresses the substantial benefits of omega-3s for cardiovascular health confirmed by numerous randomized controlled trials, and it also tackles the nuances and potential risks, specifically the recent discussions around omega-3s and atrial fibrillation.
Starting point is 00:05:17 In the guide, you'll find a rigorous examination of what makes a quality omega-3 supplement, factors like purity, freshness, the bioavailability of different forms, and dosing strategies that can elevate your omega-3 index to a level linked through observational trials with the significant increase in life expectancy. We also provide a critical analysis of some of the top omega-3 supplement brands evaluating them based on their performance, in third-party testing to ensure you're choosing the most effective and safest options available. I highly recommend downloading this guide. It's available for free at fmf omega3 guide.com.
Starting point is 00:05:56 Once again, that's fmf omega3 guide.com. Now let's get on to the core of today's discussion, how exercise prevents and reverses aspects of heart aging with Dr. Ben Levine. I'm so excited to have you here, Dr. Levine, and there's many, many things that I really can't wait to talk about with you today, but maybe we can start with bed rest and the effects of bed rest on cardiovascular health. So you were part of one of a very, I would say, famous and informative studies, the Dallas bed rest study. Yeah, so actually, I was only 10 years old when that study was first done. So my part arrived much later. for that very generous introduction. But, you know, the cardiovascular community used to put people
Starting point is 00:06:45 to bed after heart attacks or things like that. That was the standard of care. And in the mid-1960s, my mentors in Dallas, Jerry Mitchell, Gunnar Blunkwist, and Bank Saltine, some of the most famous cardiovascular physiologists ever, took five young men and put them to bed for three weeks, and then trained them for two months. And frankly, almost everything we've learned about the cardiovascular adaptation to changes in physical activity began with that study. Only five guys. And so, like I said, I was only 10 years old, so I didn't participate in that study. But 30 years later, we found those same five guys and brought them back to Dallas to study them and to compare the effects of 30 years of aging with what happened to them during bed rest.
Starting point is 00:07:35 and quite remarkably, not a single person, not one, was in worse shape after 30 years of aging than they were after three weeks of bed rest when they were in their 20s. So three weeks of bed rest was worse for the body's ability to do physical work than 30 years of aging. And that observation really started us on a whole series of studies, trying to understand what's the difference between a sedentary behavior. or lying in bed or being physically inactive and aging. So when you say that the 30 years of aging was no worse than three weeks of bed rest in terms of, so what sort of physiological parameters you're talking about?
Starting point is 00:08:22 I mean, these were the five most studied humans in the history of the world in terms of all the studies that were done to them. But the sort of simplest is the maximal oxygen uptake. That's the maxile amount of oxygen. oxygen that can be taken in from the environment, brought into the body by the lungs, transported by the heart to the skeletal muscle, and used to do physical work. It's the exercise physiologist's marker of fitness. And so when we hear the term cardiorespiratory fitness, that's what we really mean. And there are ways to estimate it. There are ways to measure it directly. Many of your
Starting point is 00:09:03 audience will have seen or even participated, had a mouthpiece in their mouth and run on a treadmill till they can't go anymore. And that's how you measure the maximum oxygen uptake. Back in the 1960s, they did a lot of other things. You should see the pictures of these guys. There are catheters in the arms, catheters in the bladder, catheters everywhere. They measured heart size. There wasn't echocardiography then. So they measured heart size by x-ray. Now that takes into account both the mass, the muscle mass of the heart and its volume. And the heart just shrunk in bed rest. So the heart shrinks, the muscles atrophy. And that's probably the single most important thing that happens, at least to the heart. The blood vessels adapt to meet the demands that's placed on them. So the
Starting point is 00:09:54 blood vessels kind of get a little smaller. Also, everything kind of contracts. And that's probably if I had to pick one thing that would be the archetype of the bed rest is the shrinking and atrophy of the circulation, including the heart. And you said that they were trained after bed rest. So was this reversible? Well, that's really interesting, right? Because out of those five guys, three of them were just average joes. You know, they weren't athletic, they weren't sick. They were just healthy college students. Two of them were competitive athletes. One was a, a semi-pro football player and the other was a distance runner. They all decreased by about the same amount. They lost fitness. But what was really interesting is that the three guys who were relatively
Starting point is 00:10:43 unfit quickly returned to baseline and even got fitter than they were beforehand. For the fitter people, it took them the full two months to get back. And even then, they weren't quite back at where they were. So people whose bodies are adapted and trained, they lose the same amount, but it may take them longer to get back. And part of that may have to do with the load that's placed on them. So you have to kind of build back up slowly after you've been in bed for a while. And it just takes, people forget how much load they placed on themselves to get them back trained. And you can't just pop into that all of a sudden. You've got to build up slowly when you've been in bed.
Starting point is 00:11:31 And we've learned a lot about this in the COVID pandemic, where people went to bed and were placed in quarantine and lost a lot of fitness. I will tell you, to me, one of the most compelling observations in sticking with the COVID pandemic for a minute because it really is the same concept. So you've heard about long COVID, for example, and people who have symptoms that last,
Starting point is 00:11:55 more than three months, 12 weeks after their COVID infection. Well, you know, we were very worried when the COVID pandemic had about what was going to happen to the athletes, because we were worried that they were going to get infected. We know that COVID could infect the heart. We were worried it was going to cause sudden death. And so we were very intensely monitoring all the collegiate athletes. And out of hundreds, if not thousands of collegiate athletes, who had COVID and went through a brief quarantine,
Starting point is 00:12:29 how many do you think had symptoms that lasted more than 12 weeks? 1600 in Brad Pedig study. What percentage do you think? Make a guess. 8%. 0.06 percent, 2 people, 2 out of 1,600. Why is that? It's not that athletes are resistant to long COVID.
Starting point is 00:12:51 No, it's because as soon as they, got over their quarantine period, because they were in a competitive environment, they quickly returned to a trainer monitored and implemented return to play program. So it's really important as soon, for almost any condition, as soon as that forces you to bed, that you have to get up and start moving and progress your training to return to. to your baseline state, and in some cases you can do even better. So is the hypothesis that after being, let's say, in COVID's case, like exercise may help protect against having this long COVID whatever it is.
Starting point is 00:13:42 Now, you know, let me caveat that by saying some people have been, get really sick with COVID, right? And COVID can affect the heart and the lungs and the mitochondria and the muscles and the brain. There are all sorts of things, legions of things that can be injured by the body with COVID. So we're not talking about those people, right? Because that's a whole different story. We're talking about people who didn't get that sick and had to be placed in quarantine, which often resulted, if not in frank bed rest, at least dramatic reductions in their fiscal activity.
Starting point is 00:14:16 Well, the other thing that is that there was a lot of public health messages that were urging people not to exercise. I know, I know. Because it was somehow, I don't even know exactly where that was coming from, but it was potentially dangerous. Well, that's what we were worried about with the athletes, right? That because we would check them for troponin, which is a marker of cardiovascular injury. We do echocardiograms. We check electrocardiograms. That was called the triad. You know, I was part of the sports cardiology council that laid out those guidelines of the COVID triad testing. What we learned since is that that really wasn't that effective unless the individual or the athletes had cardiopulmonary symptoms. If they had palpitations or
Starting point is 00:15:07 exertional shortness of breath or chest pain, those are the people who really needed more intensive evaluation to make sure that their bodies, their hearts and their lungs had not been injured by COVID. We then went on to do cardiac MRIs in a lot of people, a lot of athletes who had abnormalities in this triad, and if they didn't have cardiopulmonary symptoms, they didn't have anything wrong with their heart. So we were deathly afraid of this because, you know, for example, in the military, the most common cause of certain cardiac death during basic training is myocarditis. That's an inflammatory infection of the heart muscle by a virus. And that remains and persists as a diagnosis as a cause of sudden cardiac arrest in young athletes.
Starting point is 00:15:55 So once this COVID pandemic started, and we realized that it affected the heart, we said, oh, my God, you know, the streets and the playing fields are going to be littered with the dead bodies of young athletes. Fortunately, that was not the case. But we were worried about it. And I think it generated tons of publications and guidelines and things like that, and we learned a lot from it. It gets us back to this bed rest model that you had started talking about. In the original Dallas bed rest and training studies, we put people to bed for three weeks.
Starting point is 00:16:28 And a lot of our high-resolution physiology experiments have used that kind of two-to-three-week model. And because at least in the early 90s, that was what we were doing in spaceflight. Bed rest is a model for spaceflight because you remove the head-to-foot gravitational gradient. So from head to feet, there is no gravity. So that's very expensive to do work in space.
Starting point is 00:16:51 So we use bed rest as that model. But we put people to bed for a longer time than that. We've put people to bed for two weeks, six weeks, even 12 weeks of bed rest. And this is like literally bed rest, like not getting up. You can't even get up to use the toilet. We're talking strict bed rest. And that, you know, that takes a little practice for people, by the way. So how much of, I mean, is this bed rest a almost accelerated aging model?
Starting point is 00:17:21 And how much of cardiac aging, what is cardiac aging? How much of it is due to being sedentary? So that's a million dollar question, isn't it? We found that the heart loses about 1% of its muscle mass a week in bed. So it just, when we monitored people for 12 weeks, the heart just got smaller and smaller and smaller. Now, obviously, it can't get continued atrophy forever. And we've sort of used spinal cord injury as a model for what that plateau is. You know, how low can you go?
Starting point is 00:17:55 And it's about 25%. So patients with spinal cord injuries have about a 25% reduction in the mass of the heart. We see the same things in young women with a disease called POTS or the postural orthostatic tachocortia syndrome. We can talk more about that later if you want. I know that's not your prime focus. If we take people and look either cross-sectionally, if we train them, we can see at least a 15 to 20 percent increase in the size of the heart. And if we look cross-sectionally,
Starting point is 00:18:28 comparing elite runners to spinal cord injury, it's a 75 percent change in cardiac muscle mass is adaptable, plastic, responsive to changes in physical activity. So, you know, we asked just the question that you asked, Rhonda, how much of what we see with normal healthy aging is due to becoming sedentary? One of the first studies we then did to follow up on the Dallas Bed Rest and training follow-up study was we went out and recruited a group of extremely healthy but sedentary older people. It's not so easy to do, by the way. These are people who had no chronic medical problems. We're taking no medications except for perhaps cholesterol lowering medication, but just didn't do any regular physical activity. And we compared them to a group of elite
Starting point is 00:19:22 master's athletes. These were individuals who trained virtually every day for much of their adult lives and were competitive at the regional and national level. And we used a technique that we developed in my laboratory to estimate and to quantify the, let's call it the flexibility or stretchiness of the heart's muscle. The medical term is compliance, but it's really how much will the heart stretch. And we all think about aging. You know, you think about aging of the skin, for example, right, that it becomes less stretchy, you know, it can stiffer. And the analogy I like to give people this with a nice, brand new rubber ball. band, right? Take it out of the box, stretch it. It stretches great.
Starting point is 00:20:12 Stick it in your junk drawer, right, and come back 20 years later and take it out of the drawer and try to stretch it again. It doesn't really stretch. It loses that stretchiness. And there are a number of specific biological reasons where that might be, and we can talk about that. But that becomes a really good marker for the cardiovascular system, the compliance or the ability of the heart to stretch and accommodate blood, not just the heart, but the blood vessels also, is a marker of youthful cardiovascular structure. So we stick a catheter in the heart.
Starting point is 00:20:50 We put it in through a vein in the arm. We then unload the heart. We reduce its volume by using a procedure called lower body negative pressure. Basically, you put someone in a box sealed at the level of the hips, hook it up to a vacuum cleaner and suck. And we can literally pull all the blood out of the heart. So we can make the heart smaller and measure the pressure and its volume using echocardiography. Then we give them a volume load.
Starting point is 00:21:18 We put an IV in and we blast salt water into the heart. And we make it bigger, as big as we can get it. And then we look at the slope, the stretchiness of the heart. And what we found is that when we compared the seniors to, the healthy young individuals. We noticed that not only did the heart shrink, but it's stiffened. Right. And then when we said we looked at the elite athletes, their hearts were indistinguishable from healthy 30-year-olds. So a lifetime of endurance training at a level commensurate with being a competitive athlete was sufficient to prevent that aspect of cardiovascular aging. Now that's really
Starting point is 00:22:04 interesting from a physiological perspective, but it's not a very good public health measure. We can't really expect everybody to be a competitive master's athlete. So the next question we asked was, okay, where or how much exercise does someone need to do over a lifetime to preserve their youthful cardiovascular structure? So we turn to our colleagues at the Cooper Clinic, and we partner with them. Cooper Clinic is a center in Dallas developed by Ken Cooper, where they have tracked physical activity and physical fitness for 40 years. I mean, Ken was very prescient in starting that database, and we've learned a lot from that and looking at people and tracking their fitness and their physical activity over a very long time.
Starting point is 00:22:56 And we said, okay, we want you to help us find people who over 25 years and multiple visits to the Cooper Clinic have said on their questionnaire, yeah, I do no regular exercise. And we call those people sedentary. And we would allow, so two, less than two days a week of regular physical activity sedentary. Then we took people, okay, who did two to three days a week consistently over their lifetime. We call that casual exercise training. Then we looked at people who did four to five days a week. We called that committed training. And then a whole other group of master's athletes who are called competitive training. And when we did the same techniques, we measured their heart compliance and their vascular compliance.
Starting point is 00:23:47 And lo and behold, two to three days of exercise over a lifetime had no effect at all. It did not protect against that aging effect. four to five days a week got us most of the way there, close to the competitive athletes, not exactly the same, not all the way there, but pretty close. So that gave us the sense that the optimal dose, if you will, physical activity is four to five days a week over a lifetime, making it's got to be part of your personal hygiene.
Starting point is 00:24:19 We can talk about that a little bit later. Because then the next question we had to ask was, all right, we studied our master's athletes and our healthy, sedentary people at age 70, and our youthful people were at age 30. So when in the aging process does this begin? Right. So we partnered with a Dallas heart study, a large community-based, very highly intensive epidemiologic study. And we looked at people who were in their 30s, in their 40s, in their 50s, in their 60s, and their 70s. And we did same studies on them. And what we found is that the heart starts to shrink in that late middle age period. You know, if you think about aging at, so late middle age is kind of that
Starting point is 00:25:12 50 to 65 period, early middle age is at 35 to 50 range. So the heart will get a little bit stiffer, but it's in that late middle range that starts to atrophy and get really, you see the most dramatic effects of aging. So we said, okay, well, is this all reversible? That was sort of the question you asked me earlier. And so we took our healthy seniors and we trained them for a year. We used the same training program that we used in a group of young people trying to make them endurance athletes. I know you want to chat about that a little bit also. But we put them, we trained them hard and they got fitter for sure, but we didn't change their heart structure at all, not even a little bit. So once you got to be age 70, it was virtually impossible to change the heart
Starting point is 00:26:13 structure. I was very disappointing because we really thought we were going to be able to reverse it. And when we trained our young people, we saw very marked and very impressive increases to cardiac size and compliance and things like that. But we said, okay, what if we made a mistake? What if we started too late? And what if we didn't train them long enough? And what if we didn't train them hard enough? So we then said, okay, let's take a group of those late middle ages and the sweet spot. Let's train them hard. We train them increasingly fit over a year and then sustain that at our perfect dose, that four to five days a week.
Starting point is 00:27:00 And we'll do that for two years. And lo and behold, we were able to reverse the effects of sedentary aging by sustained training at the right dose at the right time period in the aging process. So that paper, which is published in circulation, got a lot of press, it still is that among the top 10 papers for something called Out Metrics, which is the interest within the media and the public and the professional community, the top 10 in the history of circulation, which is the American Horse Association Journal. Incredible. How much would you say the heart aging was reversed in these mid, late, late middle age, 50 year olds? Yeah, I'm 50 year olds. So the answer to that is from the standpoint of the youthfulness, the compliance of the heart, most of it. So we didn't get quite back to being a healthy theory old, but we got pretty close. So, you know, there are a lot of
Starting point is 00:28:07 other things that happen with aging that are not just related to the, to the sedentaryness of the circulation, of course. You know, one of the things that happens is you get accumulation of advanced glycation end products. You know what those are? Those are. Yeah, so those are the things that not you, Rhonda, but other people stiffen your skin and cause wrinkles. We measure it in diabetics with hemoglobin A1C. It's a natural biologic chemical reaction called the Mallard reaction. Your audience is probably more familiar with it from basing a turkey. What do you think causes the crinkling and stiffening of a skin when you base a turkey?
Starting point is 00:28:51 It's this reaction, this complexing of glucose, sugars with carbohydrate, with collagen. And it happens in the skin. It happens in the blood vessels. it happens in the heart. So we actually gave a drug, which doesn't exist anymore. I have the last of it in my laboratory that breaks advanced glycation end products. And we gave it to another group of healthy sedentary seniors. And one group just got the advanced glycation end product inhibitor.
Starting point is 00:29:23 One group got a placebo. Another group did a year of training, just training, and another group did, the advanced glycation end product and training. So four groups. Just taking the advanced glycation end product inhibitor didn't do anything. It worked in animals. We saw a marked improvement in rats. Nobody really cares that much about that because we're not rats, but it didn't help the sedentary humans. And once again, we saw that a year of training didn't do anything. But when we added the training and the advanced glycation end product inhibitor, we have the equivalent of about a 15-year
Starting point is 00:30:06 reduction in the apparent vascular age of the circulation. In 70-year-olds, yeah. In 70-year-olds, that's right. So the advanced glycation end products, it's interesting because it's very, as you mentioned, tied to blood glucose regulation, and of course people with type 2 diabetes are the extreme case where, or type 1 as well, like they're not able to regulate their blood glucose, and have probably the most risk of having higher levels of BANCE clication end products and, you know, vascular damage. But so you mentioned the heart aging and you talked about, I don't know if you started with when this starts,
Starting point is 00:30:44 but the stiffening you said is stiffening until about middle age and then it starts to shrink. Is that correct? That's right. So the question is, it's interesting that you were able to reverse this, you know, cardiac aging, in these, you know, late, late middle-aged folk, right? Late-middle-aged, yeah. Like, you know, so. 50 to 65, that's our late-middle-age target.
Starting point is 00:31:08 So you're already stiffening the blood vessels at that point. Yeah, you're probably having some stiffening. That's exactly right. It's not fully ensconced. You know, it's still reversible by then. So, okay. So the question is, it'd be interesting to see if there were, like, a subset of people, too, that, let's say, had.
Starting point is 00:31:29 low, very low HP1C or something that did respond. You know, it's a good question, Rhonda. And, you know, if you think about it, hemoglobin, which is what we're talking about when we measure hemoglobin A1C, that, you know, lasts for 120 days, right? It doesn't, those red cells don't last forever, right? So that's why hemoglobin A1C is such a good marker of diabetic control. Blood glucose is measuring your glucose instantaneously. hemoglobin A1C is measuring the average over the last few months because that's how long
Starting point is 00:32:06 hemoglobin lasts. But collagen lasts forever. So once you've glycated, it's done. And that's why, you know, measuring glycated hemoglob products in the skin or in the vasculature is a marker of something over an even longer time scale. You know, we hoped to be able to break. all those. To be honest with you, I'm not sure that we did. The animal data is very compelling. We did not actually take cardiac biopsies to prove that we had broken the advanced
Starting point is 00:32:41 glycation end products. We just used the physiological consequence. And so one could argue that we didn't even do what we thought we did. But I think I was impressed enough by the combination of exercise training and breaking the AGEs. I'll use the acronym for simplicity's that I do think it plays some role. It's obviously not the entire issue, right? Because just breaking them by themselves didn't do anything. But the combination of the stretching of the blood vessels and the heart during exercise is perhaps enhanced, or was perhaps enhanced by by breaking the advanced glycation in products. So what would you say to someone who's in their 70s that's been sedentary
Starting point is 00:33:33 and wants to train four to five days a week? And so you're talking about this two-year study. I mean, I've read the method section too, and it's quite impressive. I mean, these people are, you know, they're doing a lot of physical activity and including vigorous intensity exercise, you know, where they're doing, you know, very intense exercise at least once or maybe twice a week. So what would you say to someone who's in their 70s? I mean, how can they improve their cardiovascular health?
Starting point is 00:34:05 So I'm not saying that we should throw our hands up and saying, oh, it's too late, because that's clearly not true, right? I will say if you hope to overcome 70 years of bad behavior of bad diet and sedentariness and smoking, you can't make that up with a couple of years of exercise training, when you turn 70. That being said, there are a lot of other benefits to exercise training that are not related to cardiac structure, right? You improve endothelial function. What I mean by that is the arteries have a lining inside them. That is, it's not like a lead pipe. It's actually alive. It's biological. And it allows for that smooth flow of blood to, and then as you need more blood,
Starting point is 00:34:55 during exercise, those blood vessels start to expand. So the endothelium relaxes and opens up the blood vessels. And it's damaged the endothelium with cholesterol and hypertension and smoking over years that causes atherosclerotic disease. So it's a very important biologic phenomenon that is clearly improved by exercise training at any point in life. So I think that's really helpful. I think we know that exercise training alters the autonomic control of the circulation. The autonomic nervous system is that part of the brain and the nervous system that regulates those things that we don't have to think about. Like you're not sitting here saying, what's my heart rate? Is it 60? Is it 50?
Starting point is 00:35:45 How do I make it 62? That just happens in the background, right? And the autonomic nervous system has a break, which is the parasympathetic nerve. system. You've heard the term vagal responses and an accelerator. That's the sympathetic nervous system. And you're constantly balancing break and accelerator throughout your life. During exercise, you take your foot off the break. You withdraw the vagus nerve and you increase the sympathetic nerves. That's what speeds the heart rate during exercise. And that comes from signals in skeletal muscle. That's how your brain knows what to do during exercise. So we know. We know,
Starting point is 00:36:25 that if you, this is going to be a little bit, I'm going to take a step back for one second. We know that if you have an acute heart attack, and if I, in a dog, if I tie off a coronary artery with a little snare while they're running on the treadmill, some dogs will develop ventricular fibrillation and have a cardiac arrest. And they'll do it every single time. And if we resuscitate them, and then we put them on the treadmill and stimulate the vagus nerve to the heart and tie off the coronary, none of them have ventricular fibrillation. They don't die. And if you train them before you talk of the coronary artery, without even stimulating the vagus nerve, you have the same effect. So the ability to increasing in vagus tone or neural activity in that parasympathetic nerve
Starting point is 00:37:17 may be very protective against sudden cardiac death. And those things will happen even if you start training in your 70s. And lastly, of course, is people get fitter. We know I can make them fitter, right? I told you that. And that's good. That's important because, unfortunately, with aging, you get less fit. Even if you're a master's athlete, you get less fit. I would be a fool if I sat here in front of you and told you that exercise training can completely prevent the aging process. I wish that it could, but it doesn't. But one of the most important things is that it preserves your aerobic power, this VO2 max. And so think about a cliff, right?
Starting point is 00:38:04 And you're heading towards that cliff with aging. And that cliff is where the maximal effort that you have in your body that you can do is what you need to do, activities of daily living. that's in that three to four metabolic equivalents. That is the amount of oxygen you need to just sit here quietly, three and a half mls of oxygen per minute per kilogram of body mass. And once you get to that, you're really kind of in trouble, right?
Starting point is 00:38:33 Because then everything you do in life is a maximal effort. Well, if that point is here, and you're a master's athlete and you're up here when you're young, right? And you train all your life, you stay above that really well. If now you're unfit and you don't exercise your life and you're heading towards that cliff, what you want to do is change that trajectory and either push it up or flatten the curve a bit so that you prolong that period before you become disabled. And that comes down to both endurance training and strength training because you need both of those to be able
Starting point is 00:39:14 to maintain functional capacity. This is great. I do want to get it a little bit more into both of those, the cardiorespiratory fitness and what it means for longevity. But just before, a couple more questions on your intervention study, exercise dose, intensity. So what about people that, let's say they're exercising, they're doing the committed exerciser, right? They're four to five days a week.
Starting point is 00:39:37 Yeah. But they think, well, I don't, you know, I'm exercising frequently. I don't need to get my heart rate up to a high intensity, you know, vigorous, whether you're like 80, 85% max heart rate. What do you think about that is important? Because in your study, at least in the two-year intervention, people were definitely doing vigorous intensity exercise in addition. Right. So that's, I think, one of the more challenging questions to sort out, right?
Starting point is 00:40:05 Because if you were, I know you were listening carefully and reading carefully. I'm very quite impressed by how prepared. you've been to come to this interview, but we only stratify people by frequency. That's two to three, four to five, or six to seven. We didn't stratify them based on how many interval sessions they did or how long was their long run. You know, those are factors. The other components of dose includes not just frequency, but intensity and duration.
Starting point is 00:40:39 And you can imagine trying to quantify that over 25 years. is kind of tough. People can tell you, yeah, I trained Tuesdays and Thursday. I went out for a walk. You know, I did my Zumba class. But if you ask them, well, how hard did you work and what was your heart rate and how long, you know, that's a little harder to manage. So I think that there clearly are advantages to higher intensity exercise. There are also greater risks. So we know that that exercise by itself does transently increase risk. for anybody at any time. And that's greater risk with higher intensity. Now, that risk is relatively small, and it depends on how fit you were to begin with. What do I mean by that? Well, you know,
Starting point is 00:41:25 the classic scenario is, you know, Detroit, Michigan, big snowstorm, you know, the dad goes out, hasn't done any exercise, and needs to shovel the walk, and he has his cardiac arrest. Barry Franklin and published those data many years ago. And what we know from a number of studies is that that risk of exercise is dramatically higher if you're unfit. So it may go up a hundredfold above background, a burst of exercise if you don't do anything.
Starting point is 00:41:58 If you're very fit, it may only go up 10%, or 20%, still goes up, but it doesn't go up by that much. So maintaining fitness reduces the consequences of intense activity. But I think that we all have bursts of exercise during our lives, whether that be running up a stairs, trying to catch a bus or a train, you know, running after a kid, whatever. And I think that we also know that high intensity training relatively has relative advantages
Starting point is 00:42:35 over lower intensity training for improving maximal aerobic power. If you're going to ask me, what does high intensity training mean? That's a whole other discussion. I know you met with my friend Marty Gabala and had a discussion with him a few months ago. So when I think about aerobic power, I like to think about Jan Hoff's four by four, which is the old Norwegian ski team workout, four minutes. at 95% of max, followed by three minutes of recovery, repeated four times. Even if you don't have a heart rate monitor on, it's basically as hard as you can go for four
Starting point is 00:43:16 minutes. And at the end of that four minutes, you need to be ready to stop. And then, at the end of the three minutes of recovery, you need to be ready to go again. And that's how you judge that intensity completely independent of heart rate. And I think that if I compare a 30-minute moderate intensity, session versus a 30-minute four-by-four, clearly the four-by-four will have a greater benefit on improving aerobic power session per session. That being said, over time, I think there are great benefits to doing more moderate intensity exercise. Also, it's lower risk, it's easier to do, it's emotionally easier for many people. Others love doing short-duration burst activity. They say, oh my God, I can get the same benefit by only exercising for four minutes as opposed to 40 minutes,
Starting point is 00:44:10 I'll do it. So it's very individual. And at the end of the day, certainly when you look at a competitive athlete, no athlete does just one thing. That's why a lot of the studies in this field are a little bit artificial, because I say, I'm going to do only modern intensity training. There's a whole new burst of enthusiasm for Zone 2 training. I mean, gosh, I've had about 10 interviews about what is Zone 2 training. For your audience, typically, that means exercising hard enough that you get a little sweat on your brow. You can still talk, but you're a little shorter breath. And I like to tell people you can talk, but you can't sing. That's a good indicator of that higher level of Zone 2 training. So the ideal strategy then is to incorporate all kinds of training.
Starting point is 00:45:04 That's what the human body is best at adapting to. It doesn't really adapt very well to doing the same thing over and over and over again. You will not get fitter if you do that. And in fact, in our two-year training study, if you read below the lines a little bit, we markedly upscale people. were completely sedentary, and we worked them very hard for a year, right, including multiple high-intensity sessions, prolonged sessions. But then we said, all right, I want you to sustain that for a year. So we dropped into only one interval session a week and one long session a week.
Starting point is 00:45:44 And we didn't increase the dose, right? We didn't increase the frequency or duration or intensity over that last year. And you know what? You didn't get any fitter. And their hearts didn't get any bigger. The only thing that got bigger was the atria, and we can chat about that when we get to talking about toxicity of exercise training. So to come back to our point, the human body doesn't adapt very well to doing the same thing over and over again. And so my prescription for life, if you will, is one that mixes things up. So I suggest to people that you spend do at least one day of a long session that lasts at least an hour. And it should be fun. I don't care what it is. It could be going square dancing. It could be a long walk with your spouse or a long bike ride. It could be some other
Starting point is 00:46:37 class that you take, but it needs to last over an hour and at least it be fun. Second thing you need to do is do one high-intensity session a week. I like the four-by-four. I think it's very effective. there's great data about it from the Norwegians. But I don't care if you did two by six, or if you're a Marty Gabala fan, if you did 30 seconds times eight. It doesn't really matter. Just do one thing at high intensity and then do two or three sessions of that moderate intensity, at least 30 minutes, getting the talk test, and then supplement that with one or two days of strength training. And what I mean by strength training, it doesn't mean you have to go to the gym and pump iron. It could be Pilates. It could be strength yoga, anything that requires training of strength
Starting point is 00:47:28 and skeletal muscle. And if you do that over your whole life, I think that's the best strategy for preserving cardiovascular health. Now, if you tell me you want to run an Iron Man, you got to train different than that, okay? And that's a really important thing for your audience to understand. Training for health versus training for performance, right? Every coach knows how to train for performance. And so if that's your objective, if your goal is to have a competitive performance objective, then you have to train differently. If you tell me your goal is, I just want to preserve my health and stay fit and have a good life, then you don't need to train 30 hours a week. But if you want to compete in Kona, you need to train 20 to 30 hours a week, or you're not
Starting point is 00:48:23 going to be successful. So I think you've got to just clearly identify what your goal of your fitness is and your goal of your overall health. And that's what will guide your training program over your life. Let me just add one more thing. I can see the question. circling around in your head. I can't remember. I'll pop. We'll come back to it later. So definitely a lot of questions,
Starting point is 00:48:49 and I'm trying to figure out where to go first. So I think the cardiorespiratory fitness and the VO2 Max and lots of questions with that, starting with you're talking about what your goal is, right? So do you want to be a master's athlete? Do you want to train for health and longevity? I loved the way you explained the cardiorespiratory fitness. and function, how it keeps going down with age and how you kind of want to stay above this level. And if you start way up here, you know, it's easier to kind of go down. It's going back
Starting point is 00:49:23 to that same analogy, like contributing to your retirement fund. Dr. Brad Schoenfeld talked about this in the podcast with muscle mass. And I just, it applies to so many different areas. And I think cardiorespiratory fitness is another one, right? If you're starting way up here, then the decrease with age, you know, it's not going to be as big of a deal functionally. So why do you think cardiorespiratory fitness does correlate with longevity? So the higher the B.O.2 max, which is a marker of cardiorespiratory fitness, the lower the mortality risk. Right. So I'm going to remember your question. I remember what I wanted to say. So let me go back to that. Okay. So the one thing I want to say is that exercise needs to be part of your personal hygiene.
Starting point is 00:50:04 It can't be something that you just add on at the end of the day when you're tired and, you know, you don't, really want to do it. It has to be part of your life. Like brushing your teeth, taking a shower, changing your underwear, having breakfast. These are things you do to stay healthy. And exercise is one of those. And the mindset of people who sustain exercise over a lifetime and who are able to do this over and over again, and who are able to stay fit and healthy, is that it's part of their lives. It's not something they just add on. Right. So, So you brush your teeth twice a day because you don't want cavities. Well, you exercise because you don't want cardiovascular disease, right?
Starting point is 00:50:46 I mean, there's other reasons you exercise to, dementia. But, yeah, I love that. Part of your hygiene where it's not just, oh, it's this thing I have time for. Yeah. I have to go. No, it's, no, it's, you do it. It's like, just like you brush your teeth. So the VO2 max and longevity correlation, why do you think VO2 max correlates with longevity?
Starting point is 00:51:09 So first of all, I think it's important to realize that that correlation is relatively weak. I mean, when we're talking about the effect of aerobic power on longevity, there's a number of reasons why I think that relationship exists. First of all, if you're not sick, it's easier to exercise heart and preserve aerobic power. So there is a bias associated with looking at those factors, regardless of how well you try to control for them statistically, that bias exists. There's nothing you can do about that. It certainly helps to be well enough to continue to train and be fit. So if you get cardiovascular disease or cancer or neurologic disease, it's harder to sustain your fitness. And so just be a little bit careful about that. V-O-2 max is a function of two things. There's a very famous equation called
Starting point is 00:52:12 the FIC equation, which relates V-O-2, that's the volume or the ventilatory oxygen uptake. I started this podcast by talking about what that means, but it's a function of two things. the cardiac output, that's how much blood the heart can pump, and the AVO2 difference, the arterial venous oxygen difference, which is how much oxygen is extracted in the skeletal muscle. The cardiac output is also a function of two things, heart rate and stroke volume. Stroke volume is the amount of blood that the heart can pump per beat, so the heart relaxes, and when it's done relaxing, that's the end diastolic volume, the time when the heart is completely relaxed at its biggest, and then it contracts and pushes that blood out. That's the end systolic volume,
Starting point is 00:53:06 right? And the difference between those two is the stroke volume. And so the stroke volume times the heart rate is the cardiac output. Now let's look at an elite athlete versus a sedentary person. An elite athlete can extract more oxygen than a sedentary person, but not so much more. It's not a lot more than a sedentary person. And the heart rate, the max heart rate of an elite athlete, if anything, is lower than that of a sedentary person. So the biggest difference between being sedentary and have high levels of aerobic power is having a big stroke volume. So having a heart that is nice and stretchable and compliant, it can relax to a large amount, that let your muscles pump blood back to it and can contract strongly and vigorously and pump that
Starting point is 00:54:02 blood out into the blood vessels. That is the biggest adaptation that allows you to be an elite athlete. Well, that goes back to how exercise improves cardiac structure and function because the heart's not atrophying, it's getting bigger, and it's not stiffening, it's being more stretchable. Exactly. Exactly. So I think that there are clear advantages into heart structure and vascular function by sending all this blood out and pumping large amounts of blood. In a healthy vascular system, the aorta and the large blood vessels accommodate that blood. It's called the wind-kessel effect. It's when the heart pumps the blood into the aorta, it expands. That's why it needs to be nice and compliant.
Starting point is 00:54:56 And then in between heartbeats, it releases that blood into the rest of the circulation. So that sustained dilation is what requires a flexible arterial system as well as a flexible heart. And the heart and the blood vessels are coupled together very tightly. That's called ventricular arterial coupling in the physiology world. But they need to be coupled. And I think having a nice, regular, flexible, able. order becomes really essential. Of course, if you've got aortic diseases, Marfan syndrome, for example, genetic diseases of the blood vessels, then exercise can be quite dangerous for some of those
Starting point is 00:55:37 people. And the aorta can tear, that's called an aortic dissection. So we know that exercise clearly does drive more blood out into the aorta. So I think that the advantages and the reasons why high aerobic power improves mortality is it preserves vascular structure, improves endothelial function, optimizes autonomic tone, preserves the mitochondrial function. The mitochondrial are those little energy-producing organelles, subcellular things within your skeletal muscle, within your cardiac muscle, even within your brain, which utilize all that oxygen. So it preserves the, energy-producing architecture of many of your organs. And all those things are advantageous and leading to mortality. Now, you have to ask yourself, what kills people? Well, one thing
Starting point is 00:56:39 that kills people is cardiovascular disease. And again, I wish I could tell you that exercise completely protects you from cardiovascular disease. It does not. Athletes get hypertension. They have high cholesterol. There are genetic effects that influence the development of cardiovascular disease. So exercise will not provide immortality, right? But it will help you manage those diseases of human life. There is some evidence that exercise can be protective against certain kinds of cancers. that evidence has been challenged recently, but I do think the overwhelming weight of the evidence is that it reduces the risk of breast cancer and colon cancer. And how it does that, I'm not 100% sure, but I think increasing blood flow on a regular
Starting point is 00:57:36 basis is beneficial. And it, of course, by utilizing energy, it helps to prevent diabetes, and if you have diabetes, it helps to manage diabetes. It increases blood flow to the brain and has some modest effect about preventing dementia. It will not prevent you from getting Alzheimer's disease. If you're genetically inclined, I wish we completely understood why people get it. We don't. But it certainly will reduce that risk. So I think it is a combination of the physiologic adaptations to exercise at every step of that oxygen cascade, the heart muscle, the blood vessels, the mitochondria, the sustained high rates of energy expenditure of multiple organs that help to protect and improve mortality with higher
Starting point is 00:58:29 levels of fitness. You've, I'm sure, seen this drama study in 2018 that was published and looking at cardiorespiratory fitness and mortality. And the interesting thing to me about that study wasn't so much that, okay, well, if you're low cardiorespiratory fitness, you have a five-fold increased mortality rate over people that are more elite. So they're in the top 2.3% of cardiorespirate fitness. But what was so interesting to me, and again, you mentioned reverse causation. So that's obviously people that are more fit are able to exercise more with that in mind. The fact that when all these other diseases or negative habits were looked at, for example, smoking, it was, at least by the data and the hazard ratio, it was clearly worse to be in
Starting point is 00:59:19 a low fitness group, so the bottom 25% of the population that was, you know, looked at. It was, they had a higher risk of mortality being in that low fitness group than smoking. Right. So be a little bit careful about that. For your audience, what's been being, what often is reported in literature is relative risk, not absolute risk. So there is a protection of one compared to the other. But for example, if being low fit were to be a low absolute risk, then a little bit of protection doesn't change. If let's say your risk of dying in the next 10 years is 1%. And I reduced that risk by 50%.
Starting point is 01:00:08 1.5 hazard ratio. I've only reduced your risk by 0.5%. So the absolute benefit is relatively small. So you sent me that paper, and of course I was aware of it. It's by my good friend Dermit-Fieland when he was at the Cleveland Clinic and his team there. So I know the data well. We knew about that when we put together the scientific statement for the American Heart Association, suggesting that cardiorespiratory fitness be included as a vital sign. You know, the same thing as your blood pressure and your body weight when you go to see your doctor. You're supposed to get and have them ask you, what's your fitness level? There are ways to do that within the electronic medical record now.
Starting point is 01:00:51 Simple Liz Joy and Bob Salas, when they were both presidents of the American College of Sports Medicine, have pushed the exercise vital sign, which is very simple. How many days a week do you exercise? exercise, enough to get a little bit of sweat on your brow and make you a little shorter breath. And how long do you do it? Multiply frequency times duration. Get your physical activity vital sign. So your doctor should be asking you that, or if he isn't, he or she isn't, you should tell them. But so when you come back down to that Cleveland Clinic study, remember there are two things. First of all, these were people who were referred for exercise testing.
Starting point is 01:01:33 is we're not healthy people, okay? These are people all who had some complaint. Some of them had valvular disease, some of them had heart disease. None of them were a fitness test on a competitive athlete. And if you look at the elite fitness level, they are nowhere near elite. The peak V-O2 was in the young people was 50 MLs per KG per minute. I mean, that's 50% less than a competitive athlete at that level. So calling them elite was a little bit disingenuous in my mind.
Starting point is 01:02:08 They were the top percentage of people referred for exercise testing, but they're nowhere near elite. These are not people doing 10, 12, 15 hours of exercise a week. This is 50 MLs per minute per kilogram. That's an average fit, you know, good, good fit, but good fit young person. So, by looking at percentages of predicted of healthy people, you can get a little bit of a different perspective. So I don't think you should take the message home that, you know, there's no upper limit and you can
Starting point is 01:02:48 just keep on training and you'll keep getting better. I do think the message that fitness is as important as other cardiovascular risk factors is critical. And I think that's a very important take-home message. I don't put too much stock in comparing relative risk scores. I don't think that's helpful without knowing the absolute risk data. But my friend Steve Blair used to say I'd rather be fit and fat than lean and sedentary. Yeah, so it sounds like measuring your cardiorespiratory fitness is at the very least a good biomarker.
Starting point is 01:03:23 Absolutely. Of, you know, your health. And, you know, like you said, relative risk. So you're talking about a 30-year-old, yeah, their risk of death is quite low. But when you start to get to 70, you got a 75-year-old male, their VO2 max. That absolute risk matters more, right? Because they do have a higher risk of dying from heart disease or whatever, right, age-related diseases. We're not going to get rid of that.
Starting point is 01:03:49 We're not going to extend the human lifespan forever. But you're right. I think that, and we made a strong case for that in our scientific state. I do think that the risk is as important as smoking and as hypertension, and they have different treatments, right? So I think the other thing to be careful about is there is some data from the Cooper Clinic mostly, but also from others, Jonathan Myers at the VA in California, has shown that if you measure fitness at one particular point in time, people who gain fitness,
Starting point is 01:04:26 gain advantage, equivalent to people who have sustained fitness. And people who lose fitness lose that advantage. There are much fewer studies of changes in fitness over time as there are about a single point measure. So the data are not as robust as what happens if you stop smoking or what happens if you treat high blood pressure or what happens if you treat high cholesterol. Those data are hundreds of thousands of people, really high-quality clinical trials treating these diseases. So we know what the outcome is. I know less about what happens. If I take a 50-year-old and I train them and I increase their VO2 max by 10 or 20 percent, what does that do to their subsequent mortality? I don't know that as well. There are data there. I think they're
Starting point is 01:05:26 encouraging, but they're not as certain, for example. So I know for sure that I need to lower your blood pressure if it's too high. And I think our targets are getting progressively lower. Same thing with cholesterol. I know for sure that treating it will lower your risk of having a heart attack, for example, or having cardiovascular outcomes. So I do think that measuring your fitness gives you a leverage to say, okay, let's improve that fitness. And there are many reasons to do it beyond mortality. You know, I view lifespan as only one objective of health care. Health span is at least, if not more important. Certainly, that's true for me. Right. I also think that, you said you mentioned the changes in VO2 Max.
Starting point is 01:06:26 And so, like, if you're not, you know, improving, you know, at a certain point, like, you mentioned earlier about, like, people that are doing the same thing, for example, they're not really improving their cardiorespiratory fitness. And I'm wondering if that also goes back to this non-response. Like, what is this non-response where people will, they'll meet the requirements for, you know, physical activity guidelines. They're doing two and a half hours of exercise a week. and yet they can't improve their cardiorespiratory fitness.
Starting point is 01:06:55 So I think there are a couple of things to think about there. Number one is if those people were doing nothing, they would be a lot less fit. Okay, that's for sure. And I can make almost anybody fitter. And there's a little bit of disingenuousness about the non-responders also. It's non-responders to the dose that they've been given. It's the same thing like saying, you telling me, look, when I take one Tylenol, it doesn't get rid of my headache. But if I take two, it gets rid of my headache.
Starting point is 01:07:28 My husband, he does fine with just one Tylenol, right? So I think there is a dose response of exercise just like there is for any other medication. That's one of the rationales behind Bob Salas's exercise is medicine. And so Carson Lundy and his group in Copenhagen, has shown very clearly that if you take someone who's a non-responder, non-responder, in quotes, and increase their training dose, they all improve. So I don't think, I'm sure there must be some people who are non-responsive. But in our study, in Aaron Howden's study, Aaron now is a player and cardiovascular expert
Starting point is 01:08:13 at the Baker Heart Institute in Melbourne, Australia. in her study about the two-year-training in the 50-year-olds, we had zero non-responders, zero. Right. But you were also adding in, I think, some of those non-response, like you said, the dose changes or the intensity, they add in some high intensity, all of a sudden they're responding. So again, going back to your point where, you know, mixing it up and, you do want to continually to challenge yourself, right? I mean, you don't want to just do the same thing every single day.
Starting point is 01:08:41 Right. And I think that there's a number of benefits to that. we're talking now as a, you know, how do you adjust your hygiene, right? I'm not necessarily saying that you want to do things to steadily improve your fitness progressively over a lifetime. I think that's almost impossible to do. You want to achieve a level of fitness and sustain that over life. That's a difference.
Starting point is 01:09:04 And we're coming back then to the performance versus the health benefits of exercise. us. So I think doing the same thing over and over again, for some people, they love it. They find that very satisfying. And doing that and preserving their fitness, I think, is important. For some people, it gets boring and they want to mix it up, you know, and they want to change what they're doing. And that gives them more joy, and it also helps them stay compliant with physical activity over a lifespan. So I think those, and my own bias is that the different kinds of exercise have different roles in improving and preserving fitness over a lifetime. I mean, if you want to run your 5K faster, you got to train harder. You know what I mean?
Starting point is 01:09:51 But if your goal is, look, I'm happy with my 30-minute 5K and I don't care about running that faster, I just want to stay well, then increasing the dose has less benefit for you. So you mentioned the stroke volume being really important for cardiorespiratory fitness. I mean, is that the limiting factor? Like, is that how, what is the limiting factor for improving your VO-2 max? Right. So I think that for an elite competitive athlete, the stroke volume and the cardiac output are the limiting factor. And I know this because, I mean, if I blood dope them and I give them more blood, their muscles can accept that just fine.
Starting point is 01:10:38 and they get faster, right? So it's just the ability to get that blood to the muscle that's important. The muscle has a lot of reserve. And, you know, obviously there comes a point where you can't make the heart any bigger. But I do think that that is the primary difference between the elite of the elite and the sub-elite. Now, that's different. If you told me, I've got a 50-year-old guy who wants to start training or a patient, you know,
Starting point is 01:11:05 with hypertrophic cardiomyopathy, a genetic disease of the heart muscle. James McNamara at our institution has been studying how you make those people fitter. They've been told their whole lives don't train. Because earlier data suggested that patients with that kind of genetic disease were at risk for dying during exercise. Turns out that now the evidence in the last couple of years has become much more obvious that those types of individuals can safely train. And in fact, regular physical activity and fitness is critical to their survival. Some animal data suggesting that if they train when they're young, it may even prevent the full expression of the disease. We're working on that right now.
Starting point is 01:11:50 But those kind of individuals, particularly some who may be limited by cardiac limitations, will improve their ability of the muscle to extract oxygen. And I think when you get to the elite level, everything ends up being optimized. maximal lung function, maximal cardiac function, maximal muscle function, and they are all linked together in the entire oxygen cascade. For people who are sub-elite, who have not raised each particular part of that physiological process to their limits, can improve VO-2-Max by increasing oxygen extraction. They can increase the enzymes producing oxygen in their muscle. They can increase the number and size of mitochondria, they will increase their AVO2 difference. They can't increase it
Starting point is 01:12:44 forever. And so you increase that, and particularly if you've got a cardiac limitation, if you're sedentary and don't have one, you may increase both in parallel. But it's the cardiac limitation that differentiates the highest levels of aerobic power of fitness from the less lower. And let me to give you an example, you know, we tried, we took a group of young people because I wondered how much of this extraordinary aerobic power is genetic and how much is, you know, trainable. So we took a group of sedentary young people in the 30s, and I trained them to be marathon runners. I trained them to be successfully complete, either a marathon or a hundred mile bike ride. And we made them a lot. Fat Fitter, some of the largest gains in heart size and fitness than anyone's ever seen,
Starting point is 01:13:41 including long duration, two hour, up to two hour runs on the weekend, multiple workouts, high intensity sessions over the week. I threw everything I could at them. And frankly, I couldn't make their hearts as big as our competitive athletes. You know, I just couldn't. Your life-long competitive athletes? No, no, these are young people. These are 30. so, well, lifelong up until then, right?
Starting point is 01:14:07 So high-level competitive athletes. I just couldn't get the heart size the same. They got a lot bigger, but not the same. And I've wondered why that is. One thing to remember is that the heart is constrained by a stiff fibrous sac called the paracordium. And the paracardium is really important. It allows the right and the left ventricles
Starting point is 01:14:32 to function together. remember the right ventricle pumps blood to the lungs, the left ventricle pumps it to the body, and they work in concert. So the paracardium preserves that ventricular interaction in a positive way. And it may be that training for one year or maybe even two years isn't enough to stretch that paracardium. The myocardium, the skeletal muscle, is very adaptive, the paracardium less so. it's also possible that you have to train when you're growing to get the biggest bang for your buck that you know obviously the paracardium constrains the heart of a baby as much as it does the heart of a elite athlete and as the heart grows and adds myofibers the muscle fibers within the heart
Starting point is 01:15:24 the paracardium adapts and remodels to accommodate that it may be that those things have to rise together in order to get the truly biggest hearts of the most elite athletes. I don't know that. There are some studies ongoing, you know, in Europe and in the U.S. to try to address that. Gito Klassen and Andre Laguerch have a pro at heart study that are looking at young athletes. I don't know that anyone's looking at kids that are starting when they're 12, though. Justin Lolley and Innsbruck is trying to do that. A group in Norway is trying to do that. So I think that we are as a community trying to get that. It's hard to study kids, you know.
Starting point is 01:16:06 But I guess I suspect that you've got to train when you're growing to get the maximal ability. You know, Antonio Polizia from the Italian Olympic Committee, really one could argue the father of the whole concept of sports cardiology in the world, has studied athletes who have participated in multiple Olympics, up to four, even five Olympics. That's a lot of Olympics. And what he shows is that if he looks at their heart size over 12 or 16 years of sustained high-intensity Olympic competition, it doesn't get a lot bigger. And so these are people who have acquired that fitness to get to the Olympic level and then to sustain. sustain that over time, it's not that they're progressively getting bigger. They're sustaining and
Starting point is 01:17:02 preserving their fitness and their heart size. But there may well be a limit to how big that can be. Of course, I mean, you're limited by the size of your body, right? The heart can't just go continue to get big forever. So obviously there's an upper limit to that at some point. Can you sort of differentiate between, so I've heard you talk about, I mean, this, you're talking the adaptations to endurance type of aerobic exercise versus, I mean, Olympic athletes that are more strength training,
Starting point is 01:17:33 right? So in terms of this adaptation of the heart getting bigger, how are the adaptations different? Well, so I'm going to give you the traditional thought and then I'm going to tell you that that's not probably 100% right.
Starting point is 01:17:49 So the traditional thought, what has been called the Morgan Roth hypothesis, is that strength training, which does not increase venous return. That is, the blood returning to the heart. It doesn't increase stroke volume very much because it imparts a huge afterload, a rise in pressure during a static strength contraction.
Starting point is 01:18:17 Any idea how much the blood pressure goes up during exercise? Do you know this? Which kind of exercise? Strength exercise. If I were to have you... Definitely hypertension, I mean 180, systolic. So if you're going to do, if I take a competitive athlete and I do a 90% one repetition max, squat,
Starting point is 01:18:35 what do you think the systolic blood pressure gets to? Oh, like a multi-joint squat, like 200? Higher. Keep going. 250, 300. Keep going. 400 millimeters of mercury. And John Sutton and his colleagues put arterial lines
Starting point is 01:18:51 and showed that many years ago. So you generate that kind of pressure by intense muscle contraction, which contracts the blood vessels. So now you're driving stroke volume into a very small, much smaller space than you did before. There's massive sympathetic activation from something called the exercise presser reflex, which is a function of both the relative intensity and the total maximum muscle contraction. and so that raises arterial pressure very high during the contraction, right? And so to adapt to that in order to reduce the load on the heart, the heart has to thicken because the wall stress, the stress on the heart muscle, is increased by the bigger the heart
Starting point is 01:19:40 is, but is decreased the thicker the heart is. So traditionally, purely strength-trained athletes tend to have thicker hearts, what we call concentric hypertrophy, as opposed to dilated hearts, which we call eccentric hypertrophy. An athletes who do almost exclusively endurance training, runners, swimmers, cross-country skiers in the days before skating technique, they have massive increases in blood flow. So the adaptation of the heart is to get bigger to accommodate and then sustain those big stroke volumes. So that's the sort of traditional view. The endurance athlete has a bigger heart, which is eccentrically remodeled. I mean, if I just
Starting point is 01:20:33 stretched it without making the heart thicker, the walls would get smaller. That's not what happens, right? The heart adapts gets bigger and more muscular, but the walls don't get thicker. A strength trained athlete, the heart doesn't dilate, the walls just get bigger. And it's the eccentric hypertrophy that's important for stroke volume and thus cardiorespiratory fitness. Exactly. That's correct. Now, it turns out that it's not probably not so simple. And it's not so simple for a number of reasons. Because even during dynamic exercise, when you contract your muscles and run, you're actually occluding blood flow during those two. And many sports like rowing, for example, are an intense combination of both static and dynamic or strength and endurance type
Starting point is 01:21:27 activity. So rowers, every time they pull on the oars, they use a massive amount of skeletal muscle that's contracting. But they're also doing that in a rhythmic basis, like a runner or a swimmer. So they're doing both strength and endurance, and they have the biggest hearts of any athletes. the biggest hearts that you ever see are in the rowers. And now in some skiers. So the skating technique in skiing is a huge strength as well as an endurance component. And in the for, I guess, gosh, since 1984, for 40 years, we've been classifying sports into their static versus dynamic exercise. And we create a little matrix, you know, low, medium and high,
Starting point is 01:22:23 endurance, low, medium, and high static. So a nine box factor. And in the Bethesda guidelines from managing of athletes with heart disease, we put sports in these different bins. We're revising those guidelines, right, those scientific statements right now, and we're going to change how we display that. We've eliminated the individual boxes. And we say, There are increasing amounts of endurance requirements in a sport and increasing amount of strength requirements in the sport, but it's not so simple. I can't just put them into little bins because, I mean, even golfers, strength train, right? And even some strength trained athletes will do aerobic exercise. So, you know, most American football players don't do anything
Starting point is 01:23:14 more than 10 seconds. Never. You know, I tend to recommend to the trainers that even the strength trained those athletes will be better off if we incorporate some higher intensity. They're the perfect people to do not just a 10 second effort, which is all they ever do, but do a one minute or a two minute. I mean, how long do multiple play series take last in a football game, for American football game? I think they need to do four by fours or two by twos, and that's what's going to allow them to sustain their fitness and not get tired when, you know, they're playing fast on the sport. So I think we realize that sport is not so simple. I mean, even within a
Starting point is 01:24:07 sport, you know, the goalies are different than the, than the fullbacks. The, you know, in American football, the defensive backs are different than the linemen. You know, it's just really different. And so we can't just bin sports. And all the sports, people will train with strength and even runners are training with weight training and doing strength training. Even runners are doing strength training these days. You know, to not, I'm trying not to bin them, but I'm going to bin them.
Starting point is 01:24:40 So let's say purely strength trainers. There is, there does seem to be an argument then that they should definitely incorporate some endurance training, if not for the stroke volume increase and eccentric hypertrophy and the effects on cardiorespiratory fitness. So I think that for, I think from strength trained athletes, it's a mistake not to do any endurance. we can argue about what endurance means, whether that two minutes or four minutes or 40 minutes is endurance. And I think that there are different ways to skin the cat, so to speak. Certainly for long-term health, that becomes critically important. And Jonathan Kim and Atlanta has worked very closely with the National Football League to help retired NFL players, you know, figure out how to change their
Starting point is 01:25:32 training and their eating and their habits to preserve their health over their lifetime. So the football careers just aren't that long. So I think you're right that for performance, maybe not for Olympic weightlifting, you know, but for other strength sports, I think there's no question that endurance is important. And for sports that require repetitive bursts of strength activities, I think some type of endurance training of some degree, whether that be high intensity, four by fours or something, is critical for performance and will enhance performance. When we talk about cardiovascular health, that's a little bit of a different story. And I think that it is important for overall cardiovascular health, in fact, essential to include that over time. And again, I'll come back to the point that
Starting point is 01:26:30 No good athlete does just one thing. You know, I think that's where our studies kind of are a little bit too isolated, because in order to do the research, you've got to focus and ask one simple question, but training is not that simple in real life. Right. There are people that are much more focused on resistance training and strength training that are not athletes. They're just, you know, interested in health.
Starting point is 01:27:01 And, you know, some people wonder, well, I'm getting my heart rate up, you know, to some almost maximum heart rate when I'm doing my compound lifts, my dead lifts or my squats. And, you know, how much of that counts towards, you know, am I getting this, you know, improvement in this eccentric hypertrophy in stroke volume? Or, you know, do I need to then, you know, incorporate some other types of training as well, right? So I think you're articulating the CrossFit concept, basically, right? And so I think that I'll tell you that it kind of depends. So I think that if you ask what happens to the heart rate and cardiac output during a purely strength activity, there are things that drive the heart rate that are controlled differently in a strength activity and an endurance activity. Let me, let me dig into that if that's okay. There's a little bit of science here.
Starting point is 01:28:03 Please do. All right. So let's first talk about something called the exercise presser reflex. So simply, the easiest to study by doing just a hand grip exercise. Okay. But it would be true for any, if I squeeze my hand, okay, that's the same as, you know, doing a short static exercise. Do a hand grip. and I do it at, let's say, 30% of a maximal contraction and I hold it. Heart rate will steadily rise, blood pressure will steadily rise. If I put a little needle in an efferent sympathetic nerve as it passes by the fibular head, that's called micro-neurography, I can actually record signals from the brain to the blood vessels, which cause vasoconstriction throughout the body.
Starting point is 01:28:52 okay it's a it's a brain driven process which comes from feedback from skeletal muscle how do i know that let's say i do that and until i can't do it anymore and i take a blood pressure cuff and i blow it up on the arm and i trap all the muscle all the metabolites you know the the things that are happening in the muscle that are causing fatigue that are utilizing that energy um and i trap them there and then I stop exercise. I let go. Heart rate comes all the way back to baseline immediately, but blood pressure stays up and the sympathetic nervous system stays up. And that is the essence of the exercise pressure reflex. The heart rate is, now you can ask me, is the heart rate controlled by the brain then? Because I've stopped exercising, right? So the brain's no longer trying to make
Starting point is 01:29:51 something happen. That's called Central Command. Or is it happening because muscle tension, nothing to do with metabolites because I stopped exercising? Well, to address that, one of my mentor is Jerry Mitchell, went to Copenhagen and put some, Neil Secker, injected some curare into the nerves, which paralyzes them. And they had them look at a screen. And they said, I want you to try to squeeze as hard as you did before. but because the hand was paralyzed, they couldn't contract the muscle, but they could try really hard, and heart rate wouldn't have even higher, even though the muscle was not contracting.
Starting point is 01:30:32 So we know that this vagal withdrawal and sympathetic activation comes to some, the heart rate in particular comes from the central command. The sympathetic activity also is stimulated by what's called group three and group four, large and small or unmyelinated fibers, fibers that are not insulated, that carry signals from the muscle to the brain and say, something's wrong, let's alert, let's get that blood pressure up, increased nerve activity constricting the blood vessels. So that's called the exercise pressure reflex. The harder you squeeze, the longer you do it for, okay, and the more amount of muscle mass, the bigger the blood pressure response. So that's one component. How is the heart rate regulated
Starting point is 01:31:28 during dynamic exercise, during running, for example? Well, it turns out that it is almost certainly coming from an energetic signal in your skeletal muscle. How do I know that? Well, some patients have diseases of the mitochondria. They're called metabolic or mitochondrial myatitis. diopathies. And one of my colleagues at the Institute for Exercise in Environmental Medicine, Ron Haller, studied that he was a neurologist that studied those patients. He's since retired. He's not dead. He's just retired. And what he found is when those patients started to exercise, their cardiac output went through the roof. Their venous blood looked red because they couldn't extract the oxygen. They had a problem in the muscle. But they would, you and I might increase.
Starting point is 01:32:22 the cardiac output by about five liters for every liter of oxygen uptake, these people were increasing up by 10 or 20 liters. So even just walking down the hall is maximum exercise to them. And what that tells us, it is a signal that we need energy, we need oxygen delivered and fuel that drives the heart rate response and the cardiac out response during endurance exercise. So those are two fundamentally different things. One increases the heart rate during a muscle contraction from central command. The other drives muscle cardiac output to match Venus return. The more the compliant the heart, the more blood could come back, the more it can pump out.
Starting point is 01:33:11 And those two things are happening to a greater or lesser degree with any combination of movements. that's why I mean it's no longer so simple to talk about just strength or just endurance. And then that gets me back to the question we started with, why are you training? What's the purpose? Some people tell me they want to look good. They want their muscles to be big. They want to have relatively little muscle fat. They want to be strong. I say, well, then you kind of do a lot of strength exercise. You know, if what you want is to perform, during a CrossFit competition, you've got to do CrossFit work. I think CrossFit is very interesting to me
Starting point is 01:33:55 because it's a combination of repetitive strength-type maneuvers, but they also include repetitive muscle contraction. So I think that kind of exercise does have both an endurance and a strength component. Mike Emery from Cleveland Clinic now is a huge, huge fan of the CrossFit-type training and believes that it will get you a combination of eccentric and concentric type hypertrophy. And again, it's where, you know, this Morgan Roth hypothesis kind of falls apart because it's not one thing or the other. It's kind of a combination of both.
Starting point is 01:34:40 I don't think you can lift free weights and expect, you know, that, yeah, I slam down the weight. on the floor, walk around in between my sets, that you're going to get an endurance type trained heart. That requires a more sustained, repetitive contraction and more dynamic type exercise to engage. I know that's a little complicated, but does that help? Wonderful. Wonderful. I mean, I also love that you did bring up the CrossFit. You know, that they, I've been doing CrossFit for the last few months. And also there is an incorporation of a lot of high intensity. There's rowing.
Starting point is 01:35:20 There's jumping rope. There's getting on the bike. So it is, you know, like you said, it's not, you know, you can't just put strength training and resistance training in one band and endurance and another. Particularly with a lot of these programs now that are available like CrossFit, Orange Theory is another one. They do, you know, they have something very similar. But you're right. Just like if you're just raising the dumbbells and doing, you know, there's not as much of the endurance kind of training there. So it's good to talk about that science.
Starting point is 01:35:48 there on that. I kind of want to go back to the the blood pressure thing as well because there was an interesting study that was recently published that made a lot of headlines on these isometric types of exercises, right? The static hold and being better at improving blood pressure. What is the best exercise to improve blood pressure, right? I mean, that's... So, you know, when we take care of patients with hypertension, the first thing the community tells us to do is lifestyle modification, reduce intake of salt, reduce intake of alcohol, make sure you're getting plenty of sleep and increase exercise. And I will say that traditionally my approach has been that dynamic exercise is best because that causes relaxation of blood vessels. That's how you get the
Starting point is 01:36:42 blood to the exercising muscle. And we'll do one more little science thing. okay, because the body has both a general alerting response as a function of the exercise presser reflex and a local response. So when I'm exercising hard, the muscles that are contracting are relaxed. Blood vessels everywhere else are contracted. It's really interesting. So if I'm running, the blood vessels in my arms are contracting as they are in my kidney and my gut. And that's why you sometimes will get catastrophic gut ischemia during extraordinary endurance exercise. Because you just don't have enough blood in your circulation to maintain your blood pressure if you've got a lot of skeletal muscle that's requiring blood.
Starting point is 01:37:36 It's one thing that we'll call this call it the saltine hypothesis about the cardiovascular limitation to exercise. because if you add arm exercise, while you're doing intense leg exercise, you start to constrict the blood vessels even in the legs because you simply cannot sustain your blood pressure with all the blood vessels relaxed even with a maximal cardiac output. So the blood vessels have to constrict, but they constrict from this general alerting increased sympathetic activity, but in the muscles, you get something called functional sympatholysis. What that means is the muscles are releasing metabolites, not just from the muscle, but from the blood vessels and from the red blood cells themselves, ATP and ADP are dramatically
Starting point is 01:38:31 potent basodilators. So you get constriction in one place and dilation in another place. and it is the regular contraction, the need, the release of those metabolized, the driving of the cardiac output response that causes relaxation of the blood vessels. And that's what I want in hypertension. I want the blood vessels to be relaxed. Remember, we started this by saying blood pressure, maybe I didn't. We talked about the thick equation. Blood pressure is also a function of two things, two things only. Cardiac output and vascular resistance. We talked that cardiac output is heart rate and stroke volume. So blood pressure is the triple product of heart rate, stroke volume, and vascular resistance, with probably resistance being a very major component.
Starting point is 01:39:19 So what I typically think is that people need to do sustained endurance activity to dilate those blood vessels, cause that relaxation, and let those blood vessels start to relax as the best way to reduce blood pressure. I don't know what to make about the static training study. It's just one study. It really contradicts a lot of other data in the literature. I don't think that people say, oh, let me quickly switch to doing planks and leg sits against the wall just because this one study showed a low blood pressure. For the most part, unfortunately, if you have hypertension and I've already done your
Starting point is 01:40:07 lifestyle modification, you're probably going to need medication to drop your blood pressure. Hypertension is a cardiovascular disorder, and we've learned that, you know, a lot of people are going to develop it. And so I think the lifestyle stuff is the foundation. I don't think it's going to make a huge difference whether it changes my prescription for life. that remains the same. And I think having a strong component of endurance exercise, but incorporating strength because that's important for life and function as you get older. I think all of that is really important. And it's not going to change my prescription. You know, I do have specific approaches to hypertension and physically active people. But I will remind your audience that
Starting point is 01:41:07 Many people are salt sensitive and reducing salt intake and the diet is important if you have hypertension. Maintaining a high potassium intake is also important. And then watch your alcohol. Because I think sometimes doctors don't tell you that, but that too much alcohol intake is a very strong contributor to hypertension. And making sure you've got good sleep and don't have sleep apnea. So sleep apnea is another thing. your spouse or partner snores, that may be one, and as hypertension, talk to a sleep doctor, that may be something that's a little easier to manage and will, can cause dramatic reductions in blood pressure. So along with those, you think it's possible to, with lifestyle intervention,
Starting point is 01:42:00 reverse hypertension? I think in some cases, in mild hypertension, I think that that's true. If you've got hypertension in a young person under the age of 40, I think you need to look for other causes. I don't think we look hard enough often enough. Probably the single most important is to measure a reen and an aldosterone, to look for hyperalostronism production of one of the hormones that raises the blood pressure by the adrenal gland and the kidneys. That ends up being really much easier and more directed to treat, and it's grossly underdiagnosed in our country. So you should have a reen and an aldosterone level measured. There are other rare causes of hypertension, severe hypertension, and young people should get
Starting point is 01:42:53 plasma metinephrine's to look for unusual tumors of the adrenal gland. But I think that garden variety essential hypertension, at least at its earlier stages can well be modified by behavioral modification that we've been great including someone maybe in their late 60s if they perhaps do the training the sleep looking at the sleep the alcohol salt intake yes all of the things that can have a huge effect okay what about i've heard you talk about recovery and recovery days being as as important as how much load you're putting on your heart. And so how much training, essentially.
Starting point is 01:43:38 I'm curious what you mean by that. Right. So recovery is a essential part of training. And I think most athletes and coaches understand that. But it's a way that many athletes get into trouble because if they're not performing as well as they want, they think, oh, I just need to train harder. and that ends up just getting them into a vicious cycle of increasing overtraining.
Starting point is 01:44:09 You know, the athletic community has thought a lot about this overtraining syndrome for years. There's a guy from the Netherlands in Arm Kuypers who did a really interesting study with horses. You know, horses are some of the great endurance athletes of our time, of our world, right, biologic world. And he tried to overtrain them. and the first thing he did was he increased their base training load, and they all got faster. And then he said, okay, well, let me increase the intensity of their training, and they all got faster. And they said, let me increase the number of intensity training sessions, and they all got
Starting point is 01:44:51 faster. And finally he said, well, I don't know what else to do. Maybe I'll just change their recovery. And what I mean by recovery is, you know, they do a high-intensity session in the morning, and then the next session after a high-intensity session is something easy. So it's simply a simple canter, just a walk around to get the blood moving. And as soon that within a week of increasing the intensity of the recovery sessions, they were all overtrained. With marked reduction and performance, increasing resting heart rate, fatigue, you know, every sign of overtraining. So in order to reap the benefits of a training stimulus, the body has to do something, right? The muscles have to produce protein.
Starting point is 01:45:41 The blood vessels, there's a release of a variety of downstream metabolites from the oxygen sensing cascade from hypoxia inducible factor through VEGF, the vascular endothelial growth factor, thing that make the blood vessels that improve the lining, the endothelium, that add muscle fibers that make them bigger. All these things have to happen. That's what, beneath, you know, the skin, those are the things that are happening after you do a training stimulus, right? and if you don't allow those their full expression, then you won't get the benefit of the workout that
Starting point is 01:46:28 you do. And so most good coaches and trainers will always incorporate an easy session after a high-intensity session, and I think should always have a day off, whether that day off is some, you know, strength training or technical training or things like that, that's okay by me, watching film, doing some basic technical things, shooting free throws if you're a basketball player, whatever, but it has to be something easy that's unstressed. And that's what allows you to get the most benefit. And I think that people who are not coached, you know, or who have a coach that's perhaps
Starting point is 01:47:11 a bit more inexperienced, they get driven to do more and more. and more and more, and they find that they're not getting better, and that's probably because they're not having adequate recovery. One of the things we did in all our altitude training studies, we spent more than a decade studying the best way to do altitude training for the USA track and field in the U.S. Olympic Committee is to monitor early morning heart rate. That was our best indicator. So we'd have the athletes put their heart rate monitor on, you know, set an alarm, put their heart rate monitor on if you've got a watch. at rest, it's pretty accurate. During exercise, the watches that just use the PPG, the plethysmogram
Starting point is 01:47:51 are not accurate. That's a whole other discussion that we should talk about. But put it on at rest and track it for, you can go back to sleep and see what it was for those five minutes before you woke up again. And as you start to get overtrained, that resting heart rate starts to climb. And that's a signal that, okay, I need to reduce the frequency of my intensity sessions. I need to make them a little shorter or I need to make sure that I'm adding adequate recovery and take a day off. An adequate recovery, if I'm just, I want to make sure I understand this, it includes on a day your training doing something a little more light in terms of aerobic exercise.
Starting point is 01:48:32 It might, if you're used to doing stuff in zone three in zone four or zone five, you might do in a zone one. Okay. So do you know what I mean by those five zones? Go ahead and it would be great because it seems like definitions vary. depending on what journal you're reading. And I think that that's true. And there are different coaches who use different zones.
Starting point is 01:48:52 For us, you know, and I learned, you know, my basic practical exercise science from Jim Stray Gunderson, my partner in crime for a little bit. Yes. Sorry. Sorry. Yeah. So from Jim Stray Gundersen, who passed last year, my good friend and partner, I'll get there. Just give me a second.
Starting point is 01:49:26 So I learned most of my exercise science from my good friend and partner Jim Stray Gunderson, who unfortunately passed from pancreatic cancer last year. And we, in all our studies, we used a five training zone model. And typically what that means is we would pick the, generally the second ventilatory threshold, where ventilation starts to really increase out of proportion to oxygen uptake, where VE, VCO2 has gone down to its nadir, where lactate is between that 2 to 4 millimolar range. They all reflect what we call the maximal steady state. That's the highest level that you can sustain for a prolonged period of time.
Starting point is 01:50:25 Most good marathon runners are running at the maximal steady state. And let's just say, for argument's sake, that was at a heart rate of 155. Because there's no magic to heart rate and it changes on a day-to-day basis. We're not machines. We would bracket that and call, let's say, the maximum steady state or threshold or zone three training would be 150 to 160. Okay. Then zone two training is about 20 beats below that.
Starting point is 01:50:59 So 1.30 to 150. Okay. And then zone 1 or recovery is less than 130. So a recovery effort would be below the lower limits of zone two. Now, zone four is probably the, am I still pressing this too hard? I'm sorry. No, you're doing better. Okay.
Starting point is 01:51:21 So zone four is probably the hardest to quantify because in the physiology world, you need to bring people back and do multiple repeat testing to do that. Zone 4 is what we call critical power. That's the highest intensity you can sustain without failure, without a drift towards V-O-2 max. So when Kipchogi was trying to run the under two-minute, a two-hour marathon, when Kipchogi was trying to run the under two-hour marathon, he worked with Andy Jones and Mike Joyner and trying to say what exactly is my critical power.
Starting point is 01:51:59 And it's amazing. If you look at Andy Jones from the UK's work, I mean, he does exercise in an MR magnet and looks at truly, you know, phosphrocretin ratios and hydrogen ions. One or two watt differences is a difference between sustainability and failure. It's extraordinary and it's delicate and it's hard to pick. And it's my belief, I think Andy's also, is that the reason that some of these great runners from East Africa or some of the great swimmers
Starting point is 01:52:36 spend so much time doing what they're doing is they want to feel, they've got to figure out what the paces zone for is. They have to know what that is. And it's hard to prove that in a lab. Everybody, the good athletes, know that. When can you push that pace and when do you have to back off?
Starting point is 01:52:54 And so we know zone five because we're measuring maximum heart rate. And in the model that I give, you, let's say the max heart rate was 180. Okay, so the top of the zone three was 160. So I, often what I typically will do in the lab is I'll split the difference. And we'll call zone 4, 160 to 170 and 170 and 1.80. And so that gives you a nice broad heart rate 5, five zone, which reflects different kinds of events. So zone three typically is a marathon and I'll calculate running economy. And so I know the speed at any given oxygen uptake for a runner,
Starting point is 01:53:41 for example. And also, if I take zone three heart rate and running economy, I can tell you what your marathon time is going to be. And if I figure out what zone four is, that's about a 10K pace or so. So you can't run that pace at an entire marathon, right? But you can run it for, you know, 45 minutes or an hour, right? And then 5K and shorter, 5K is run at VO2 max. So 5K is run at in zone 5. And anything shorter than that, right?
Starting point is 01:54:17 We know for sure that you can't run 10 meters of second. for a marathon. You can't even run it for 5,000 meters, right? But that's still going to be zone 5. Right. So anything that's, you know, pretty much, you know, 5K and shorter will be run at those higher heart rates and those higher training zones for endurance activity. So you mentioned the importance of looking at your resting heart rate early morning for recovery. Yes. As a good way. As a guy. As a guy. Right. Um, what about, you hear a lot about heart rate variability? Yeah. So, so, you know, we spent decades and I published probably a hundred papers about cardiovascular variability. So first, let's ask what is heart rate variability. So
Starting point is 01:55:12 heart rate variability looks at, um, the change in heart rate over time. And there are two, this is grossly simplifying it, but there are two main stimuli to heart rate variability. Number one is respiration and breathing. When you breathe, there are two things that happen. Your brain is sending signals to your diaphragm to breathe. The nerve that carries those signals also goes to the heart. That's the vagus nerve. There are also changes in blood pressure and stroke volume that occur as you breathe because when you breathe in, you're decreasing intratheracic pressure blood flows into the heart. When you breathe out, the blood comes out of the heart. So you're changing stroke volume. You're stimulating the arterial baricepters, which are in the carotid arteries and in the arch of
Starting point is 01:56:07 your aorta. So there are a number of things that happen when you breathe that move blood in and out of the heart and also send neural activity from the brain to the pacemaker of the heart. that's the respiratory variability that happens at the respiratory rate you know then there are other intrinsic rhythms within the circulation they happen a little bit slower um if you think in terms of cycles per second or hertz you know point one hertz or 10 cycles a second is the low frequency Meyer wave frequency. And if I were to measure sympathetic nerves, the Meyer frequency is mostly sympathetically driven, not entirely. It's sympathetic and vaguely driven. So the problem is, is that all measures of heart rate variability when you use a heart rate monitor,
Starting point is 01:57:09 do not take those into account. So if I told you to breathe at 6,000, breaths a minute, I would slam the high frequency on top of the low frequency rhythm, and I would markedly increase your heart rate variability. If I had you breathe a little bit faster, I would separate those out. And most of the heart rate variability that's being measured by your heart rate devices, most of the heart rate variability that's being measured by your heart rate devices is mostly looking at the high frequency variability. But that is absolutely, dependent on respiratory rate. And nobody controls that, right? You're not given a tone that tells you, you breathe at this frequency, and will measure your heart availability. No, it's not doing that.
Starting point is 01:57:59 And then I'm going to add one more, that as you move around, very low frequency rhythms will alter heart rate. So when you stand up, heart rate goes up. When you lie down, heart rate goes down. when you pee, you have vagal withdrawal. It's the only way to pee. So your heart rate goes up when you pee. You know, when you talk to somebody, your heart rate goes up. These are uncontrolled factors. In my laboratory, if I control every single factor, so same time of day, same food in the body, same, I control how deep and how fast you breathe, I can't get better than a plus or minus 25% day-to-day variability. So I'm just telling you that even under the best of circumstances, these measurements are very technique-dependent and very variable. So I don't think people should use them as an indicator of anything because I think it's too
Starting point is 01:59:02 the science is not there. You can read lots of articles about heart rate variability. I was the thesis advisor and opponent for one of my good friend, Hakey Rusco, from Finland, from Evasculous students who tried a lot to look at heart rate variability as an indicator of training and overtraining. And it's just too hard to standardize and get right. So I think if you tried to use that except under extraordinarily controlled conditions. I think you'd find, yeah, I think that you'll find you'll make more mistakes than benefit. Well, that's, that goes with what my gut was telling me, because I can, with my training, I can see improvements in resting heart rate. I can see it in my, my heart rate, my maximum heart rate going even lower, like getting lower. But my heart rate
Starting point is 01:59:54 variability, according to my Apple Watch, nothing. So, um, we, you, you, you, you, you, you, you, you, You talked a little bit about, you know, this, the performance, cardiorespiratory performance and limitations. And that got me to thinking of, you know, men versus women and these sex differences. And what, so my husband and I go for a run together. And he smokes me every time. Like, he's faster. Yeah. And, you know, now we're not doing a six-hour run. Maybe that would change. Maybe I would outperform him. Who knows? But I'm curious, like, what are the cardiovascular performance difference? differences between men and women. So you're asking a really interesting question, and there are some fundamental differences between men and women, particularly younger men and women, which is virtually
Starting point is 02:00:44 all due to the androgenic effects of testosterone. Testosterone builds muscle, reduces fat, builds blood volume, makes the heart bigger, makes the body bigger, changes the power outputs of skeletal muscle. So that's a lot of. why we have women's sports, right? It's because men and women give an equivalent access to training and coaching, men are still faster. And if you're interested in reading more about this, we just published a definitive scientific statement about the biologic differences of sex from the American College of Sports Medicine. Sandra Hunter from Marquette is the first author on it. It's been published. It's in the public domain. It just came out of a number of months ago. So that has a lot of
Starting point is 02:01:32 information about this. If you looked at, I'm not sure I'm going to get the exact numbers correct, but if you looked at some of the great middle distance runners, female middle distance runners, Allison Felix, Sandra Richards-Ross, you know, those are the great names that we hear about and know about in women's, women's middle-distance sports. And if you looked at their world records that they set during the peak of their career, at the same time, 20,000 or 10,000 boys ran faster. Boys, these are high school kids.
Starting point is 02:02:13 If they had to compete against the boys, we would not know their names. This is not benign. And if our society wants and views having women sports and women to be able to be successful, which I think is a tremendously important goal, it's important that women compete against women and men compete against men. And let me say that differently. It's important that males compete against males and females compete against males. Because there's a difference between sex and gender. I don't want to get into that. I don't think that's what we're here for. But biological sex makes a difference, particularly the sex that you
Starting point is 02:02:53 are, your biological sex as you go through puberty. That's where the differences between boys and girls start to become most dramatic. Before puberty, there's not much of a difference, but it's at puberty when the massive increases in testosterone come about and, and, you know, your husband's going to beat you. Now, I wouldn't beat you, you know, because I'm an older man and I'm probably not as fit as you. So it's not that every man is going to beat every woman. That's moronic, right? But given the same training and the same level, the males are going to run faster. Yeah, the same age.
Starting point is 02:03:34 What about this? There was a study this year that was published in the Journal of American College of Cardiology, claiming that women can reap the benefits of aerobic exercise with doing less exercise as men. So it was like twice as less exercise, and they had the same cardiovascular. So I'm underwhelmed. I think that there's not a huge amount of benefit. The bottom line is that premenopausal women, they just don't have a lot of cardiovascular disease.
Starting point is 02:04:09 There's extraordinary protection against cardiovascular disease by estrogen and progesterone. And what I tell many of my patients is there's one thing that will turn a woman into a man, and that's cigarette smoking. So cigarette smoking abolishes most of that difference. and we see that clinically all the time. But I think that women should not necessarily consider that their dose response relationship to exercise is fundamentally different.
Starting point is 02:04:41 And that's why, you know, after menopause, you know, all those differences basically change. And so what happens is you simply shift now once you've got a woman who's well-passed now from an endocrinologic perspective, she's much more similar to a man. and now the risks start to accelerate, you know, at the same level, at the same rate, they're just pushed off by a decade. What if she undergoes hormone replacement therapy? Yeah, you know, that's an interesting question, and there are risks and benefits of that, right? I think that there are clearly benefits, cardiovascular benefits, particularly if the hormone
Starting point is 02:05:20 replacement therapy is started early in the menopause transition. When it starts later, you lose the protective effect and you increase the risk of breast cancer and other bad things that counteract the male-female mortality difference. So the timing of... The timing, I think, is, you know, this has obviously been studied by, you know, dozens of people and hundreds of thousands of women, so that's a whole other complex task. But I think the simple answer is I wouldn't count on it. I would say that the dose response relationships are the same. And we've seen that. We have always
Starting point is 02:05:57 tried to incorporate women in our studies. We have the only studies that included women in all our altitude training studies, because women are competitive athletes and we need to know how they respond to altitude. We did the same thing in our year-long training program. So to our community, everybody knows this, but we have to include women in all our studies. It is essential. But I don't think women should think they are special in terms of their adaptation to exercise. We've mostly found them the same, except that in our year-long training study, women increase the size of their heart in the first three months, similar to men, and then they stopped, they plateaued, and the men continued to increase.
Starting point is 02:06:45 And I think that's a testosterone phenomenon. It's another example of why testosterone enhances the building. of cardiac as well as scale of a muscle. So that's one of the fundamental differences. Well, I really want to get into some of these risks with outcomes with extreme exercise. These are really also an expert in that area. And there's been a lot of interest and worry in, you know, in extreme exercise. Like, I guess we should define what that is.
Starting point is 02:07:14 But in some instances, you can find studies saying seven and a half hours of exercise a week can, in some cases, what they call double the risk of cardiovascular disease. And I think you'll clarify maybe that depends on they're actually looking at other biomarkers, not necessarily someone dying of cardiovascular disease. But what is extreme exercise? How does it affect coronary plaque calcium? What is coronary plaque calcium? Why is that significant?
Starting point is 02:07:43 Okay. All right. So first, I think extraordinary exercise in, can be defined by multiple different things. From an epidemiological cardiovascular health perspective, I think what we're talking is about people who do more than three to 10,000 met minutes a week, and I'll tell you why I chose that.
Starting point is 02:08:08 In our studies in the Cooper Clinic, we used more than 3,000 minutes a week, which is about eight hours, and about six hours, but on average are high volume, exercises did about eight hours a week. So the nadir, where you reach the maximal cardiovascular benefit, is about five hours a week, five maybe up to 10 hours a week for heart failure outcomes. Once you get more than about 10 hours a week, you're starting to get to, well, I think most would
Starting point is 02:08:42 agree on extreme exercise. The carniac calcium story is interesting, right? The original concern about coronary canceum came from the German study by Mullencamp where they looked at a group of runners who had done lots of lots of marathons and found that they had more initially when they compared them to a population-based study, the Heinzniks-Dorfreckel study, they didn't have more coronary calcium. But the authors of that study kind of said, well, that's not fitting our hypothesis. Part of it is the athletes had better risk factors than the controls. So they said, said let's only select athletes who have the same risk factors as the controls. And then the athletes had a little bit higher coronary calcium and a little more non-zero
Starting point is 02:09:30 calceums. But 50% of those runners were smokers, and they all started training later in life. And that's a consistent theme in much of this world. So a lot of the master's athletes tend to start later in life. They're not the young elite Olympic athletes, and many of them are doing it to try to combat bad behavior when they were younger. So just keep that in mind. When we look at, then the next big study was the one out of the UK, which did CT angiography, which looked at more than just coronary calcium. And now is a good point to step into that, right? Calcium is the footprint of atherosclerosis. So as the atherosclerosis, the hardening of the arteries that we think about is cholesterol mediated. As that progresses from accumulation of cholesterol, there,
Starting point is 02:10:32 import into macrophages, the cells that suck up the cholesterol into the lining of the blood vessels and injure it and start to accumulate and obstruct the blood vessels, as that heals or progresses, there's always a little bit of, there's a little plaque rupture, a little bit of injury here, and the blood vessel calcifies. It's not the calcified blood vessel that I worry about. It's the company it keeps, because calcified blood vessels don't crack, don't rupture, and don't cause heart attacks. It's the non-calcified, what's often called soft, it's not really soft, it's just non-calsified plaque that ruptures and causes a heart attack, occludes the blood vessel. That's what a heart attack is. So the more calcium you have, it's really just a sign that there's more non-calcified
Starting point is 02:11:22 plaque. Does that make sense? So the atherosclerotic burden is higher. And that what the British study showed was that, first of all, their female participants had almost no coronary calcium and no atherosclerosis. So let's toss out the women for a moment. But the males, the higher intensity, more volume athletes had more plaques and more calcium. What was interesting, though, is all the plaques were almost all calcified. And in the non-athletes, it was a mix of calcified and non-calsified plaque. And they're the ones who first raised this issue is maybe exercise training stabilizes plaque and makes it more calcified. And that's why it's the athletes tend to have a lower mortality and a lower risk of a heart attack. So, but none of those studies looked at events, right?
Starting point is 02:12:23 They just looked at the anatomy of the arteries. And so that's where our Cooper Clinic study came in, Laura DeFina's paper in JAMA from 2019. We looked at 25,000 people, you know, with multidis, different ranges of physical activity from the middle group, which is sort of that guideline directed three to five hours a week, a low group who did less than three hours a week, and then a high volume exercises who did about eight hours a week. And it turned out that about 75% of both group, all three groups, about 75% of them, had relatively little coronary calcium. And the number we worry about a score of a hundred because that's where the higher the calcium level above a hundred, the greater the risk. So that's sort of our clinical cut point where it becomes really
Starting point is 02:13:18 clinically meaningful. And among those individuals who have the majority, so 75% of our group had coronary calcium scores less than 100, there was no difference in coronary calcium among the three different activity groups and a 50% reduction in events. Quite dramatic. Now, there was a small, about 11% increase in the risk of having a calcium score over 100. I'm parsing my words carefully. There was a little bit of a greater risk of having a higher score. But if I look in all the individuals who had scores over 100, there was no difference in the absolute score between those who did no activity and those who did eight hours a week. And there was a 25% reduction in events. Didn't quite reach statistical significance, but it
Starting point is 02:14:12 wasn't a greater increase, for sure, no greater increase. It was a lowering. And the bottom line, if you look at now absolute versus relative risk, which we're coming back to, we talked about at the beginning, you're better off having no calcium than having a lot of calcium. You're better off having a calcium? Absolutely, right? Because calcium is a sign of atherosclerosis. If you've got calcium, you're better off being fit than unfit. And in Anina Radford's paper, also from the Cooper Clinic, we showed that there's an interaction between calcium and fitness. So the higher your fitness, the closer the high calcium group comes to those with no calcium. So if you're unfit with a high calcium score, that's a disaster. If you're very fit with a high calcium score, you're worse than if
Starting point is 02:15:05 you had no calcium, but not that much worse because the fitness ends up being protective. What causes calciffication in atherosclerosis? I mean, if I knew that, I'd have the Nobel Prize, right? We have lots, I mean, billions of studies about the nature of arthrosclerosis and what causes it, but it's due to many of the risk factors we know, high cholesterol, how that cholesterol interacts with the vascular wall, hypertension, smoking, diabetes, and your parents. Genetics. So the question, if you're measuring, let's say, by CT angiogram, looking at the quote-unquote soft plaque, which isn't so soft, but it's not calcified.
Starting point is 02:15:45 Not-calcified plaque. Then it does physical activity reduce plaque formation? So I have to say that just a few months ago or last year, the pro at heart study that I mentioned before kind of threw a big wrench into this because they looked at elite young and older athletes. And they did show more plaque related to high intensity endurance activity. I don't know exactly what that's called. to mean. I don't think that exercise removes plaque. I don't think you can count on that. It may, it certainly provides protection and it may against cardiovascular bad outcomes.
Starting point is 02:16:37 And it may cause the non-calcified plaque to be more calcified and more rupture resistant. But I don't think it makes it go away. You know, there are idiosyncratic studies, you know, looking at, you know, this training and this reduction. But there's also idiosyncratic studies showing, you know, and Bagas showed and run across the America that when they did that, they had an increase in plaque. You know, I will tell you, because I just got it, I got notification yesterday that we have a new paper
Starting point is 02:17:11 from the Cooper Clinic showing that if you look at, try to parse out the exercise dose into intensity versus duration, as you increase the intensity, calcium goes less. And as you increase duration, calcium goes up. So I think the higher intensity efforts are probably more protective. And the very longer duration that ones are probably more calcium inducing. Why that is, I don't know. You can look at some Wendy Quartz data from Colorado. She's the one who's shown that when you start to exercise calcium and the blood goes down, that causes an increase in parathyroid hormone. And parathyroid hormone causes leaching of calcium out of the bones. And where that calcium is going when it goes out
Starting point is 02:18:06 of the bloodstream, I don't know. You know, maybe some of it gets deposited in the blood vessels. We don't know exactly what the path of that calcium is. I think there's an area of active investigation. but it's one of the reasons why endurance athletes always thought, oh, this is going to protect my bones, but it doesn't. It doesn't protect your bones. It actually may worsen it. Some of that is nutritional,
Starting point is 02:18:32 but also it's because of sustained increases in parathyroid hormone and sustained leaching of calcium from the bones to preserve blood calcium levels, which are essential to everything that is necessary for life. The other, I would say the other outcome, well, not necessarily outcome, but risk factor for a negative outcome that people are worried about with extreme, particularly extreme endurance activity is atrial fibrillation, AFB. So what's interesting, though, is that you look at numerous studies, there's a decreased risk in AFB with increasing physical activity, but it seems as though there might be a certain point when that changes.
Starting point is 02:19:16 It's absolutely true. And it's the one thing I tell all my master's athletes. This is one of the consequences of the duration and the intensity of activity that you do is you'll increase your risk of atrial fibrillation. We know why. It's a very elegant study by, again, Gito Klaassen and Andre Lagerche, which talks about the damning effect of the valves. Remember that the heart has upper chambers called the atria that collect the blood and pumping chambers called the ventricles, which eject the blood out of the heart. In between them are valves, A, V, atrial ventricular valves. On the left side, it's the mitral valve. And let's talk about that one for a moment,
Starting point is 02:19:58 because most of the atrial fibrillation is probably generated within the left atrium. So when the heart contracts, that mitral valve snaps closed, right? And the blood gets ejected out. But the blood continues to flow into the atrium because the cardiac output is increased, right? So it's got to keep flowing in. The blood doesn't just stop. It accumulates in the atrium. That's called the reservoir effect of the atria. And then when that valve opens, the pressure that has built up in the atria drives
Starting point is 02:20:34 the blood into the ventricles to help fill it. And then so there's blood to pump in during the next cardiac cycle. Does that make sense? Okay. So now let's take exercise, which increases the cardiac output. So increases the speed and volume of blood that's being pumped. And now the other thing it does is increases the heart rate. And when you increase the heart rate, now you have more systolase.
Starting point is 02:20:56 So instead of having the valve open, now it's, and you spend more time with those vowels closed. And so it creates a dam in between the atria and the ventricles. And the atria just dilate. And as you dilate the atria, you increase the risk of atrial fibriolibular. At what point? Is there like a amount of exercise? Yeah, yeah. So that's a good question because the tromso heart study is probably the one also from Norway, which shows the point that you made, and we all know, that being unfit is also a risk for atrial fibrillation. And probably that targeted middle dose, if you will, three to five hours, moderate intensity, physical activity gets you to the nadir. in their population-based study, as you got past that, you started to increase the risk.
Starting point is 02:21:54 There was a lot of noise around the point estimate. And nowhere near, you know, increase it by, I can't remember exactly, by one and a half times, something like that, nowhere near the five-fold increase that you see in the competitive athletes. So I don't think anyone who is doing recreational, or even occupational exercise needs to worry about a fib. I think, you know, particularly as we've talked about the optimal dose for health and joy and wellness, you know, is up three hours is what's recommended, up to three to five hours probably gets you most of the bank for your buck. And as you start to get beyond that for performance, then you have to accept the risk of atrial fibrillation.
Starting point is 02:22:44 Now the risk of AFib, the reason people worry about it is increases stroke. Do athletes have an increased risk of stroke? Athletes in general don't have an increased risk of stroke. Anybody with atrial fibrillation has an increased risk of stroke. Do athletes have less of an increased risk? Maybe. But we don't really know that for sure. So I think that, you know, it's easy to protect yourself from stroke by taking anticoagulation.
Starting point is 02:23:14 Of course, we base that. There's obviously risk to taking blood thinners because, you know, you may bleed. And for some athletes like cyclists who get into crashes, that's a bad thing, right? So depending on the nature of the athletic event, someone who's a runner or a swimmer, I don't think you have to worry about it, right? But cyclists, when you are a risk for a crash or, you know, other kind of athletic events that involve collision, then that becomes an increased risk if you're on a blood thinner. So we don't know the best way to manage that. Some of it depends on how often you're in aphib.
Starting point is 02:23:56 A fib can be paroxysmal, meaning it only occurs intermittently, or it can be persistent or permanent. If it ends up being persistent or frequent, then ablation is the way to go. Just keep it from happening. there's a new study out called React. It's actually recruiting right now, and we're asking the question,
Starting point is 02:24:22 if someone develops AFIB, can I just take anticoagulation for a couple of weeks right then and then take a medicine to get rid of it? And then when I'm back in science rhythm, stop taking the medication. So only take it when you're in AFib that requires you to be able to detect it, either symptomatically or with your watch. And we just don't know.
Starting point is 02:24:46 Most right now are saying, you know, if you have other risk factors, older age, hypertension, diabetes, heart failure, other heart diseases that increase your risk of a stroke, it's probably better off taking the intercolleculation depending on what your risk of bleeding is, and that depends on your sport. And do most endurance athletes have lower risk factors probably? I mean, generally speaking. Most of them do. And there's a scoring system that we use called Chad's Vask.
Starting point is 02:25:19 Don't worry about the details of that that help you define that risk. Unfortunately, there weren't a lot of elite athletes in the populations that developed that scoring system. So I don't know how perfect it is for a competitive athlete, but for a middle-aged athlete under the age of 65 with no other risk factors, no hypertension, no diabetes, no other heart diseases, the risk of anticoagulation is probably greater than the risk of stroke. You know, you have to say, well, you know, look, I'd rather take anticoagulation than have a stroke. You know, I'm willing to accept a little bit of a risk. That's a discussion to have with your doctor.
Starting point is 02:25:59 Right. I want to be mindful of your time. I know you have to leave one quick question, life expectancy of what we would call this extreme type of endurance training. What data is there to support or refuse? Yeah, you know, I think that as you get out to the extremes of age, most things start to fall apart. So I think that what enables somebody to sustain extraordinary exercise at the edges of lifespan, so after, let's say, 85, for example, the extreme old. is really joints and muscles. It's nothing to do with the cardiovascular system.
Starting point is 02:26:39 So you need to be able to run, you know, those durations or without injury requires some unique genetic predisposition. So I don't think that anyone should be an extreme athlete because they hope that it will make them live longer. I think that would be presumptuous. Regardless of whether there's, you know, a small study here or a small study there. I don't think it increases the risk. You know,
Starting point is 02:27:08 there was this, the Danish Copenhagen heart study, which frankly should never have been published, is ridiculous, which looked at runners who did a lot of running, this one that generated a lot of press, but people who did a lot of running had an increased risk of death. How do they know that? There were two deaths. What did they die of? I have no. I have. No. idea. Maybe they could hit by a car while they were running. And the confidence limits on that point estimate were so big as to be useless. I think that was a terrible study. And in fact, we presented at the American Heart Association a few years ago. We looked at the, again, the Cooper Clinic database. We looked at more than 10,000 minutes a week. This was stimulated by Ambie Burford, by the way,
Starting point is 02:27:55 who asked us this question. What about, you know, you say only eight hours a week. That's nothing for many of my runners. I said, okay, these guys averaged 30 hours a week. And there was no increase in mortality. There was no increase in events. The number of cars, it wasn't a lot of people, but twice the number in the Copenhagen heart study, by the way. You know how many cardiovascular deaths? Zero. So, so I, I would not, I would not say I'm worried that my extreme athletes are going to take my life, I don't think that there's, the evidence is strong in that regard. I don't think there's evidence that it will prolong your life. And you have to, as you start to get to older and older, really it's health span, not lifespan that matters the most.
Starting point is 02:28:45 Thank you so much, Dr. Levine. I mean, this has been incredibly informative. I have so many more questions that I would like to ask you. Maybe we can do a round two sometime. And, And thank you again for all your research, all your contributions. I mean, just moving the field forward, our understanding of how physical activity affects, you know, cardiovascular adaptations and how that does improve our health span and to some degree our lifespan. Well, it's absolutely my pleasure. Thank you, Rhonda, for your wonderful, your homework that you do prior to these interviews. It's really quite impressive. and, you know, your podcast is high quality and reaches a lot of people. So thank you for inviting me.
Starting point is 02:29:28 Thank you. A huge thank you to Dr. Benjamin Levine for coming on the podcast to share some of the most valuable information on how exercise prevents and reverses aspects of heart aging. And a big thank you for listening. Only a few quick reminders and mentions. First, make sure to check out the recent guide on all things, Omega-3 supplementation. This valuable distillation of Omega-3 science will put you. you on the right path to understanding how to pick a good omega-3 supplement, some of the benefits, how proper dosing can significantly enhance your omega-3 index and many common concerns. You can find that omega-3 guide at no cost at FMF omega-3 guide.com. Once again, that is FMF omega-3 guide.com.
Starting point is 02:30:18 The other thing I'd like to mention is that some aspects of fitness and athletic performance, are genetic. If you have used a consumer genetic test, you can reveal some interesting information about those traits. For those of you with raw genetic data from services like 23 and Me or Ancestry DNA, you can get a free report on my website. This includes genes that affect endurance levels, those that affect VO2 max through training, your muscles ability to transport lactate, and even your susceptibility to muscle fatigue and injuries in tissues such as the ACL and others. To get your free genetic fitness report, visit foundmyfitness.com forward slash genetics and scroll down to access our free reports. It's a really great way to use scientific insights to enhance your
Starting point is 02:31:10 fitness journey. Once again, that's foundmyfitness.com forward slash genetics. And lastly, if you're not already following along, you can find me on social media under the handle Found My Fitness, all one word, on Twitter, Facebook, Instagram, and TikTok. While there's some overlap with the content from the Found My Fitness podcast, I also share unique insights and information exclusive to each platform. Again, you can find me on all social media platforms as Found My Fitness, all one word. I hope to see you there.

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