Huberman Lab - Best Tools for Gut Health & Weight Loss | Dr. Chris Thompson
Episode Date: September 21, 2026Dr. Chris Thompson, MD, Professor of Medicine at Harvard Medical School, Chief of Interventional Gastroenterology at Mass General Brigham in Boston, and Co-Director of the Center for Weight Management... and Wellness, is a world-renowned expert on gastroenterology, metabolism, nutrition, and obesity medicine. He explains how your GI tract regulates hunger, fullness, and blood sugar, as well as the gut microbiome, metabolic health, and weight loss. We also discuss common GI tract issues and which particular tests or interventions are actually useful. We discuss both GLP-1 medications and non-GLP-1 approaches to weight loss. Given that gut health is vital to all the organs of the body, overall health, and longevity, our discussion ought to be of interest and practical value to everyone, including, of course, those struggling with gut health or weight loss challenges. Thank you to our sponsors AG1: https://drinkag1.com/huberman Function: https://functionhealth.com/huberman Lingo: https://hellolingo.com/huberman LMNT: https://drinklmnt.com/huberman Our Place: https://fromourplace.com/huberman Timestamps (00:00:00) Dr. Chris Thompson (00:02:16) Digestive Tract, Gut Hormones & Nutrient Absorption (00:08:06) Colon Microbiome & Colon Cancer Screening (00:11:13) Sponsors: LMNT & Lingo (00:13:40) Swallowing Problems & Zenker's Diverticula (00:16:08) Bowel Movements & Constipation (00:18:28) Fiber, Resistant Starch & the Gut Barrier (00:21:50) Intermittent Fasting & the Gut Microbiome (00:23:38) Fermented Foods, Microbial Diversity & Butyrate (00:27:12) H. pylori, Stress & Stomach Ulcers (00:30:20) GLP-1 Medications: Benefits & Limitations (00:33:42) Lower GLP-1 Doses, Weight Regain & Muscle Loss (00:37:35) GLP-1 Side Effects, Food Noise & Apathy (00:39:49) Bariatric Surgery & Medical Innovation (00:46:07) Sponsor: AG1 (00:47:44) Hunger & Satiety: Ghrelin, CCK, GIP & GLP-1 (00:50:01) Retatrutide & Combining Hormonal Targets (00:52:55) Ultra-Processed Foods, Overeating & Leptin (00:55:32) Incretin Discovery, Exendin-4 & the Gila Monster (00:59:35) Endoscopic Ultrasound & Pancreatic Biopsy (01:07:40) Early Metabolic Markers, CGMs & Fasting Insulin (01:13:06) Insulin Resistance & Metabolic Flexibility (01:15:53) Sponsor: Function (01:17:35) Patient Data, Screening & Treatment Adoption (01:26:31) AI, Robotics & Improving Procedures (01:29:27) Choosing a Surgeon & Measuring Procedure Quality (01:35:29) Image Guidance & Hyperspectral Imaging (01:37:19) Sponsor: Our Place (01:38:56) Diagnostics & Targeted Metabolic Treatments (01:42:45) Gastric Bypass, Foregut Exclusion & Diabetes (01:47:59) Duodenal Liners & Mucosal Resurfacing Research (01:52:58) Gut Permeability, Inflammation & Fatty Liver (01:59:39) Artificial Sweeteners, Fructose, Fats & Omega-3s (02:05:00) Resistance Training, Zone 2 Cardio & Intervals (02:06:31) Weight Set Point & Metabolic Adaptation (02:08:13) Endoscopic Sleeve Gastroplasty & Fundus Ablation (02:10:30) Magnetic Intestinal Connections & Combined Treatments (02:16:52) GLP-1 Gene Therapy Research (02:22:13) Innovation, Problem Solving & Teamwork (02:25:58) Zero-Cost Support, Sponsors & Neural Network Newsletter Disclaimer & Disclosures Learn more about your ad choices. Visit megaphone.fm/adchoices
Transcript
Discussion (0)
There's all sorts of evidence that if you don't have a lot of fiber, your microbiome's not healthy.
feed your microbes, you know, they need to be fed.
And what they eat is fiber.
Okay, that's what you want to eat.
You want them in fiber.
And if you're not feeding them fiber, they'll eat your mucous layer.
Okay, and we already talked about how thin that barrier is,
and all of this, when they start eating your mucous layer,
they're not producing the buterate you need,
and the buterates needed to maintain the tight junctions, right?
So there's layers to this.
It's like a snowball effect that if you're not feeding the microbiome,
keeping it healthy, you're going to run into all sorts of trouble.
Welcome to the Huberman Lab podcast, where we discuss science and science-based tools for everyday life.
I'm Andrew Huberman, and I'm a professor of neurobiology and ophthalmology at Stanford School of Medicine.
My guest today is Dr. Chris Thompson.
Dr. Chris Thompson is a professor of medicine at Harvard Medical School.
He is also the chief of interventional gastroenterology at Mass General Brigham in Boston.
He is a renowned expert on the intersection of gastroenterology metabolism,
nutrition, and obesity medicine.
And in today's episode, Dr. Thompson explains how to improve your gut health, including the
roles of your diet, gut microbiome, and gastrointestinal motility, as well as how your gut
communicates with the rest of your body, which of course includes the gut microbiome,
but as you'll learn today, much more.
Dr. Chris Thompson is a guest on this podcast because he's not just a GI tract and obesity
medicine expert.
He's also credited with having created an entire new field of treatments and perspectives
on GI and metabolic health.
So the knowledge she shares today
is truly at the cutting edge and applicable.
Which is why by the end of today's episode,
you will have a clear understanding
of how your gastrointestinal system works,
and you will have a set of new, modern,
evidence-based tools for improving
and maintaining your gut health.
Before we begin, I'd like to emphasize
that this podcast is separate from my teaching
and research roles at Stanford.
It is, however, part of my desire and effort
to bring zero-cost to consumer information
about science and science-related tools
to the general public.
In keeping with that theme, today's episode does include sponsors.
And now for my discussion with Dr. Chris Thompson.
Dr. Chris Thompson, welcome.
Thanks so much. Good to be here.
A lot of us hear these days about the gut microbiome, the gut brain axis.
We hear about GLP drugs that help people lose immense amounts of weight
and stop feeling this food noise thing and on and on.
But can we start by just having a conversation about this tube that is the digestive
attract and get real basic and just educate people a bit on what happens that stimulates them
to want to eat, why perhaps for certain periods of day or night, they don't want to eat,
and then what the passage of food through us looks like is a series of steps. This is such a
critical part of our biology and our lives. It's becoming more and more complex all the time,
right, the gut and it does a lot of things. So it's obviously involved in digestion, but it's
also an enderkin organ. You can hear it called the second brain. There's a lot of different ways we
think about the gut. And it is compartmentalized. And each area has a different job. So first you have
the esophagus. And his job is to just kind of move the food into the stomach safely. And it's thick,
right? It has different lining so it can handle things that might be a little rougher. And it pushes
sequentially, you know, down to the stomach. So it's taking that food bowl and driving it into the
stomach. And you can have all sorts of problems in your esophagus, right? So each one of these
organs has, you know, things it's supposed to do and then things that it doesn't do well.
Sometimes people don't swallow well. It gets too tight at the bottom. There's a condition called
acalasia where it's just the bottom of the asophagus doesn't relax, right? And so we have procedures
we can do in my line of work where you can tunnel down in between the layers of that esophagus.
It's very thin, you know, a few millimeters. You can tunnel down into there and cut that muscle
to relieve the obstruction. So what are the symptoms of that? So inability to swallow. So what do
they do? They choke? Yeah, they'd feel like they're choking. So they'll swallow food. It'll
get down and stop. And then they'll feel pressure. They'll feel really uncomfortable. If they
drank some fluid with it, it might start coming back up. It'll just stay there. And then sometimes
they'll have to induce vomiting to remove it. It's very uncomfortable for them. And it's not a
terribly common condition, but it's coming more and more frequent. I see it every week. So that
inability to swallow. And you can get that inability to swallow for other reasons, actually,
they're far more common chronic heartburn. If someone has reflux, you know, that burning sensation,
that can damage the lining of the esophagus,
and it can lead to pre-cancerous conditions
called Barrett's esophagus,
which is something that needs to be treated,
looked at, and kind of followed.
But with time, you can actually cause scarring,
so you get a stricture,
so it's kind of very fibroic tissue there.
That's another reason why people might have difficulty swallowing.
There's other reasons as well that are more obscure.
So that's the job of that esophagus,
just to move the food down safely,
and a lot of times it doesn't work.
then you have the stomach next right first what the stomach does is it stretches to accommodate
and accept a meal right so it stretches normally it's like a tube in your you know in your abdomen but then
when you start to smell food it starts stretching and becoming more like a bag really just the
the odor of food yeah it can it can stretch relax to accept that meal and if it doesn't do that
properly it's it causes symptoms like nausea right so so then it accepts the meal and uh it has to do its
job, which is to break it down and pass it on so that the stomach now isn't just transporting,
it's breaking it down. And it does that mechanically. So the fundus, the top of the stomach is
holding that meal. That's what kind of stretched up to hold it. And then the rest of the stomach's
working on it. So the body of the stomach next segment is breaking it down, is grinding the food
into smaller bits. Acid is part of this as well. The stomach secretes acid. And then the bottom
of the stomach called the antion will push the food out slowly into the udenum, right? That's the first part
of the small bowel satiety, satiation all becomes part of this because the stomach is what
secretes ghrelin. We'll talk about that probably more later, but the stomach secretes
ghrelin. And so this is part of your satiety signaling. All sorts of problems with the stomach,
right? So similar to the esophagus, food might not leave, you know, as it should in the right in the right
timing. So it can happen due to ulceration in the stomach, scarring, or something called gastroporesis,
where for a variety of reasons, it might be post-viral, it might be due to diabetes.
neurohomonal kind of origins of this, the stomach just doesn't empty as it should.
People have nausea and vomiting with that and other problems.
So then you get into the small bowel.
And the small bowel job now, typically you do a little digestion still early on because you have pancreatic
and biliris secretions going in there.
But its main job is going to be to absorb calories, right?
So that's absorbing calories and moving it down.
It's very thin.
It's one cell thick.
Has about the surface area of like a pickleball court.
One cell thick.
Yeah, so one cell thick.
lining is one cell thing. That's the barrier. What's the cell type just to? Antero,
enterocytes. Yeah. Those are some really sturdy cells. Columnar epithelium, yeah. So,
well, they're pretty sturdy. They rely on more than just the cell itself to maintain that barrier.
There's certain cells called goblet cells that produce musin, and that creates a nice thick layer there
that help as another part of the barrier. They have something called tight junctions, right,
between the cells, which are complex little structures that are part of that
barrier as well. And there's immune cells in there. There's other elements to that barrier,
but it is one cell there thick. So that's why the stomachs, the esophagus and stomach have got a good
job of processing that food so that it's safe to go down through the small bowel and be absorbed.
All sorts of issues with the small bowel. Similarly, you can have different diseases that
affect that, you know, cellic disease, Crohn's disease, et cetera, different inflammatory
conditions. And what we're learning now, we'll hopefully get into is it's,
plays a central role we think in metabolic disease.
And that's kind of what's very exciting is its role in obesity, diabetes, and other similar conditions.
And then eventually you have the colon.
And that's where your microbiome is the star, right?
The colon, its job is you usually just absorb water.
Most of the nutrients are gone by then.
But it does play an important role as well.
And it is working hand in hand with your microbiome to make sure that you are producing.
really it's mostly butyrate, I think that's mostly involved there where the microbiome is producing
short chain fatty acids and one of them the most important probably is butyrate that has
a lot to say about your metabolism as well. That's involved in satiety signaling and you have a lot
of GLP1 producing the colon again. So you're getting these kind of endocrine function of your colon
that's very involved and then it passes. So and again, diseases in the colon, colon cancer is a big one, right?
So colon cancer screening is important. People typically now I think they move the age back to 45. Everyone
should start getting screened and make sure, you know, they don't have cancer. You can do it different
ways. There are genetic tests you can do like Colagard. And if you do that, you have to do it
every few years, but you can do that. You can do screening colonoscopy every 10 years if it's
normal. And there's other things you can do as well. CT colonography is not as common in other
tests, but those are the two most common. It's important to do that. How common is colon cancer?
In our line of work, it's the most frequent cause of cancer, unfortunately.
Are more people being diagnosed because of more diagnostic procedures and are more people surviving colon cancer?
The survival rates are definitely improving due to screening programs, right? So that's important. So it is definitely important to get screened. Also, screening earlier helps. So, for instance, starting at 45 is better than many people who started at 50 and they wouldn't get until 55 or 60, right? But also, if you have a family member that has had cancer, you want to start at 40 or if they were younger, you want to start 10 years younger than when they were diagnosed, right? So you want to start.
start that screening process, really. It's very effective, you know, and it's important to do it.
And I think that things like Colagard and other genetic tests are going to keep getting better
and help because you don't have to have that kind of very uncomfortable screening procedure.
Colonoscopy is not, it's not a great way to do screening, right? You shouldn't have to have a relatively
invasive procedure to be screened for something. You know, it should be something you do is
a blood test or a stool study or something like that. And I think we're getting there with technology,
and that will definitely show dividends because you can have the colonoscopy to remove the lesion,
which is something that we can do.
It's a newer technique where we can actually go in
and remove these very early cancers endoscopically.
So we call it organ sparing surgery.
So you don't have to actually remove a piece of the colon anymore.
You can just kind of take the lining
where that pre-cancer is residing.
It's a complicated procedure, but it's easy for the patient.
You know, they keep their colon, they go home the same day.
And these tests, you know, are easy ways to diagnose those patients
and get them in for proper care.
So very important.
So that's pretty much the quick,
overview of the gut. And it plays one thing we haven't touched on too much yet is its role in
in really satiety and kind of how it's involved in processing of food in detail and the kind
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A couple questions that no doubt will resonate with people because they're fairly common,
and you'll tell me if they're of concern or not, depending on the frequency. We'll start
at the top of the GI tract.
will say sometimes that they eat and some of the food seems to go up their nose.
They know this because if they blow their nose, they might get some food particulate.
It sounds like something that's not entirely uncommon based on the number of questions I get about it.
What's going on there?
I get asked a lot of questions.
Some of them truly weird and rare and some of them weird and less rare.
And I would put it in the second category.
That could be a variety of different things.
This is the area that I do work in.
So it can be an oral pharyngeal transfer problem where the hypoferrinx is transferring
food into the esophagus. That can be an E&T thing. It can actually be functional medicine as well
where you can work with a speech pathologist that teaches people how to swallow better. They might
have to change the quality of the food they're eating, the thicker food. They might have to
turn a certain way to swallow. And there's ways they can actually train people with kind of biofeedback
to learn how to swallow better because that part's still under your control a little bit.
They're not swallowing well. Yeah. And with age, that can happen. Now, the next thing that
can contribute to that is if they have high tension in the first.
sphincture up above, which is the upper asoptoe sphincter. That's the sphincter that separates the top of your
asophagus from your mouth, basically. And that can have high tension. And what I see a lot is
something called zenker's diverticula, which we haven't talked much about. There's a few different
little pockets that can form high up in your esophagus near that sphincter. There's different names
for how they, you know, kind of where they exactly occur. And with time and with age,
this, this is like a herniation of mucosa through the muscle and it creates a pocket. And that can
actually trap food. When people are eating, the food goes into the pocket and then comes back up
on, can go out their nose or sit in there, which is very uncomfortable for them, right? That's
another way you can have problems swallowing. And that can be fixed very easily. We go on through the
mouth, actually make a tiny incision and just kind of take down the septum that's part of that
pocket opening up the pocket so that the food can leave. So it's important to do it early too
because people can actually this, it looks like an inconvenience initially, right? It's, you know,
you're not swallowing well. Food is, you know, is not where it's supposed to.
be necessarily. The problem is when people then aspirate and that food goes in the lung.
And then it can lead to scarring in the lungs and eventually it can really cause problems.
So it is something that should probably be taken seriously and looked at, even though it sounds
funny, you know, it is something that can be a real problem.
There's a weird thing about GI tract and bowel movements in particular, which is the following.
With babies, with puppies, and to some extent with ourselves, but especially with babies and
with puppies.
Because they can't speak, we have a couple of key readouts that we intuitively understand
reflect their health.
One is the pallor of their skin.
The eyes, like if eyes are looking glassy or tired, you know, and the quality or lack
thereof of their bowel movements, quality, frequency, et cetera.
But then something happens where speech comes online and we get, you know, toilet trained.
And then everyone's responsible for like understanding like their own bowel movements, right?
And then we're never really told like what's healthy bowel movements.
But we all kind of know what's normal for us or not normal.
I'd be lying if I didn't say like these are important metrics of health.
Yeah.
Well, there's so much you can tell from bowel movements.
Okay.
So the rule of thumb is, you know, you don't want to have more than three a day and you
don't want to go longer than three days without having a bowel movement.
So that's kind of the general rule.
And you want it to be one formed bowel movement, you know, or a couple.
You don't want little tiny pebbles.
That's called scubular stool, and that's a sign something's going on.
But there's a lot you can tell.
How much are they taking enough fiber, right?
World Health Organization published something in the Lancet years ago on fiber, a fiber synthesis, I think they called it.
And they found that, you know, the vast majority of population really doesn't, especially Western countries, just are not getting enough fiber, which is obviously concerning because that that causes a lot of issues long term, right, which we'll get into.
but if you're having these scrupulous stools,
if you are constipated,
meaning you're having a bowel movement
more than once every three days
in their hard stools,
that's a sign you're not getting enough fiber.
So that's one thing you really have to think about, right?
Additionally, there's other things you can tell
after procedures, you know,
if a bowel movement's very dark, tarry, and shiny,
that's a sign you have blood in your GI tract, right?
So there's different things you can tell
from the stool that are important to keep an eye on,
but in general, that's kind of the rule of thumb,
you know, with with, with, with, with, with, having more than three a day,
that's probably leaning towards being too loose, right?
And if you're not having one every three days, you're probably bound up.
And, and then you can really have to think about fiber.
As I recall, the recommendations were for adult men, 35 grams of fiber per day,
and for women, 25.
And obviously, that's not accounting for variations in body weight and height and all the rest.
So does that sound about right?
Yeah, that's, that's about right.
And it kind of depends on the quality, too.
There's a couple other really interesting studies that came out recently, just within the last few years, looking at the importance of fiber related to certain conditions.
Like one was fatty liver, right?
And fatty liver was an interesting, interesting study.
They were using resistant starch, like level two.
So basically raw powdered potatoes, something like that, right?
And they were supplementing, I think it was at 40 grams.
And they found that when they did that, they actually saw a significant improvement in fatty liver.
which is phenomenal, right?
And it was, you know, relatively weight-stable.
So it has important treatment effects.
Another group actually studied it and looked at insulin sensitivity.
So they did clamp studies, you know, where they would kind of really be able to detect
insulin resistance and kind of try to look at kind of glucose utilization and clearance.
And they found that with this R.S2 type, you know, resistant starch too, they were able to improve
insulin resistance and insulin sensitivity as well. So fiber is very important. It's not just about
the bowel movements, right? It's also about, you know, really just having, you know, health. It probably
helps the microbiome. There's all sorts of evidence that if you don't have a lot of fiber,
your microbiome's not healthy, right? You get less diversity in your microbiome. The different
studies that have looked at that, it is important to have that fiber. And that constipation is an
early window into it, right? It's an early sign. Maybe you're not getting enough, enough fiber.
Yeah, I make it a point to eat fruits and vegetables because I like them.
But recently I started supplementing with a powdered celium husk and some of them actually
taste pretty good.
And my expectation is I was going to feel really bloated.
It was quite the opposite.
Not that I had gut issues before.
If it was normally kind of like hyper normalized things actually made post meal subjectively,
the sensation just like feel good, feel great.
And I didn't expect that.
I thought, okay, more fiber.
I think a perception people have is like more fiber.
more regularity and more bloat.
And I think that might be true for some people,
but it certainly wasn't my experience.
And I feel like the messaging on fiber
to the general public is pretty lousy,
meaning people are told to take it.
That's great.
They're told all the time.
But I think people think,
oh, if a lot of fiber, I'm going to be really gassy.
I'm going to be really bloated.
But as you point out,
it's not just about regularity and speed of digestion.
It's about creating a healthy milieu for the gut.
I think if more people knew that,
they'd probably make a move to consume more fiber.
Totally.
It's like feed your microbes, you know, or they can eat you, right?
And it's kind of true, right?
Because they need to be fed.
And what they eat is fiber.
Okay, that's what you want to eat.
You want to meet fiber.
And if you're not feeding them fiber, they'll eat your mucus layer.
Okay, and we already talked about how thin that barrier is,
and all of us, when they start eating your mucus layer,
they're not producing the butyrate you need,
and the buterates needed to maintain the tight junctions, right?
So there's layers to this.
It's like a snowball effect.
that if you're not feeding those microbe microbiome,
keeping it healthy, you're gonna run out
all sorts of trouble.
Raises some interesting questions about intermittent fasting.
I think very few people are doing long-term fasts
of more than a day or so.
I mean, it does happen, but most people,
a lot of people do sort of time restricted feeding
or they'll skip breakfast.
You know, I'm one of those people most days
just by default.
I had a colleague friend at Yale who studied microbiome,
and I said, oh, so just fasting improved the gut microbiome?
He said, no, actually, during the fasting period, your microbiome starts eating up your digestive tract, which is what you're saying.
But then he said, but then the rebound often is puts you at a slightly better place afterward.
So it's tricky.
Should people avoid intermittent fasting if they're having gut issues?
I know we don't want to make any broad recommendations as highly contextual, but based on what you said, it seems that it stands the reason that you might want to avoid having your stomach empty for very long periods of time outside of sleep.
I don't see it as being a major issue.
I think there are benefits of intermittent or time-restricted eating,
intermittent fasting probably would outweigh that risk.
You know, you need to give your pancreas time to relax.
You know, you need to have insulin come down.
If you're eating frequently, your insulin levels are already up, always up,
and that causes problems.
So I do think the benefit of the time-restricted eating
definitely outweighs that potential risk.
Great to hear, especially as somebody who just by default,
doesn't eat breakfast or and just don't get hungry to 11.
I skip breakfast as well, but there's studies because initially they actually used to say,
well, you have a cordal sauce spike in the morning and, you know, you're more likely to store the
food you take in if you eat in the morning.
Turns out maybe that's not so true.
It might be better to actually have, you know, eat earlier and then have your fasting
windows start in the afternoon.
Right.
I think doing is better than not doing it.
I still skip the breakfast.
The topic of fermented foods, low sugar fermented foods, is a possible benefit for gut health.
has come up since Justin Sondonberg and colleagues have published the study it.
There's a small number of people in that study, admittedly, but that taking in some low-sugar
fermented foods really help lower the inflammatory.
They didn't look specifically at, as I recall, symptoms of gut irritability, irritation or
things of that sort.
But what are your thoughts on low-sugar fermented foods?
So we're not talking beer.
We're talking to kimchi, sourcrow, brine.
I think they're important.
and they're missing in the Western diet, which is an issue.
And I think there's the study you referred to, actually,
I think they compared it to fiber, right?
It was fermented foods to fiber.
And with the fermented foods, you had reclaim some diversity in the microbiome,
which was great as well as the reduced inflammatory markers,
where the fiber didn't seem to do that.
And you saw all these benefits in these other fiber trials
that were talking about with the resistant starches, right?
So it stands to reason that we'd probably see that as well
as we do more research in the fermented foods.
They're a beneficial for variety of reasons.
You know, one, they're prebiotic, right?
So you're feeding your microbiome things they want, which is phenomenal.
It's already kind of started, it's a little partially digested, which is really helpful.
And they're also a little bit of a probiotic as well because you do have some live cultures in there, right?
And you usually have bifidobacterias for lactobacils or something like that in them and a variety of other things as well.
So it gets the ball rolling, right?
So it's sort of like when you're trying to grow something,
you want to plant the seeds,
but also have the fertilizer and whatnot.
And this is what fermented foods do for you.
So I think, you know, that's very helpful.
And it's all about maintaining this kind of healthy microbiome
that can produce things like buterate,
which have a lot of benefits we can talk about.
You can't just take buterate,
and then it's not going to make it to the colon, right?
It needs to be in the colon to have its effect.
And so what these bacteria do is,
they kind of, they will cross-feed in a sense, right?
So you have those first layer of bacteria that will take the fiber and break it down,
and then they create acetate and lactate and whatnot.
And then that can then be used by other bacteria.
So you're feeding the other bacteria that can then turn that into buterate,
you know, and things like that.
And the butyrate is magical, right?
So that will feed your colon cells.
Your colon cells live on that with butyrate's needed for those tight junctions.
Buterate, you know, does all sorts of things via GLP1.
pathways and satiety pathways. So it has a lot of different, a lot of different roles that it's
playing. Additionally, it keeps your bowel acidic, right? So like these short chain fatty acids and,
you know, acetate and whatnot. And that's great to make sure you are protected from certain
pathologic organisms might want to take root, right? So the aerobic organisms and the other
organisms that you don't want don't survive as well in an acidic environment. So really,
important to take these fermented foods in addition to fiber. Do you make it a point to consume them?
I do, yeah. I like kefir or kefir and everyone else say that. I like, I like that. I think it's
tasty. Yeah, it's great. Kempshi's good, you know, sourcrow. There's all different types,
yogurt, you know, there's different types, I think, that everyone should be able to find kombucha,
you know, and it's certainly missing in our diets. So I think it's important to, to recommend
that the folks do.
Canker sores and ulcers.
My understanding for a long time is they were caused by stress or wounds to the mouth.
And then a couple folks won a Nobel Prize for identifying a soil-based bacterium that causes ulcers.
And I loved that Nobel Prize year, you know, as a scientist.
Like some people watched the Super Bowl, like, you know, we're like, who won the Nobel Prize?
And it's never surprising who wins.
It's at least for the sciences, right?
It's often surprising who doesn't.
But let's leave aside that component.
But that was a very surprising set of findings, right?
Like a gut bacterium is causing ulcers.
And I love the findings, but at the same time, I think many, many millions of people,
hundreds of millions, billions across history would say stress gives people ulcers.
So there's something going on there that's more than soil-based bacterium, right?
Yeah, definitely.
And that's the problem with these, you know, the way the media covers these findings,
is like, it's not all that you ingested the wrong soil.
Stress can give you ulcers, right?
Or am I missing something?
Stress can play a role.
You know, it is certainly complicated.
So Barry Marshall was phenomenal in Australia,
and he found H. Pylori could cause gastric ulcers, right?
And he had to consume, no one believed him.
He had to consume it, and then he had gastric ulcers.
I love it when scientists do self-expermentation.
That's crazy, right?
Yeah.
But that was phenomenal, right?
And he proved H. Pylori, and we need to treat that, right?
And actually, H. Pylori was actually found even an Azi, the Iceman.
I don't know if you remember, Atsi, the Iceman.
He was this, like, 5,000-year-old, you know, Homo sapien and the Italian Alps.
He was found frozen, right?
So you could actually get into his stomach and see what was in there.
He dies stressed.
No, I'm telling you.
He died stressed.
He had H. Pylori and his stomach.
Poor guy.
He spent around a long time.
It's kind of interesting.
There's other lessons.
They're like a loss of diversity of the microbiome, right?
With industrialization, we have far fewer species.
and less genetic diversity in our microbiome.
But regarding ulcers,
so I actually did study this in gastric bypass patients a good bit, right?
And it was not a bacterium that was causing it, right?
Sometimes it was a relative ischemia.
Type 2 diabetes causes kind of microvascular ischemia.
Smoking can cause microvascular ischemia.
In gastric bypass patients, the small bowel doesn't,
it's a distal part of the small bowel from lower down that's connected to the stomach
and it doesn't have bicarbonate that's being secreted from the pancreas in the area.
So there's no way of neutralizing acids.
So if the pouch, which, you know, we can get into the anatomy here,
but if the pouch of the gastric bypass is too large and makes acid,
the duodenum now has no, or the dejunum actually,
has no natural defense against that.
So acid clearly plays a role, and if you're stressed, it can produce more acid, right?
So generally there's probably multiple hits.
We don't fully understand things, but clearly it's not just an infectious organism,
and it kind of depends on individual circumstances and susceptibilities,
but ulcers are certainly something that can occur short of a bacteria.
So important for people to hear that, you know,
because one thing can cause something,
it doesn't mean it's always the case that.
So let's talk about metabolic health, hunger, obesity, weight loss.
These are areas that, you know, square in your wheelhouse.
Can't have this conversation without talking about the GLPs.
Most everyone has heard of these things nowadays.
is millions and millions of people.
I've heard, I don't know if this is true
as many as 20% of people 18 and older
have taken or are currently taking a JLP
or either, you know, Zemik Manjaro,
soon Reda Trutide will be out to market.
What's your thought on these compounds?
Are they the perfect solution to weight loss?
Well, I'm grateful we have them, right?
Obesity is a serious problem
and all the metabolic issues
that are kind of there with obesity need to be addressed.
And we weren't doing much with it, unfortunately,
until the GLP ones came around.
So, GLP ones are fantastic from that standpoint.
They're not perfect, you know, there's limitations,
but it's much better to have them than not have GLP ones for sure.
There's issues with certainly adherence, unfortunately, right?
So there's a number, over a million people a month
are coming off GLP ones, right?
And it's for a variety of reasons.
about 30% come off GLP1s in the first month,
and then 50% or so by the end of the year, right?
And it's not specific to GLP1s.
You see that with any medicine.
You see that with blood pressure medicines.
You see that with cholesterol medicines.
Can we say what the primary driving force is in the case of GLP1s?
Is it the side effects?
Is it they don't like having to pin themselves?
I think because the number is so curiously similar to all the other medicines,
maybe there's some underlying thing where people just don't like taking medicines frequently.
That tracks.
might be part of it. I think that, you know, sticking yourself is probably for some people.
They don't want to jab themselves once a week. That might be something they get needle fatigue.
That's probably there. I think when you take a medicine orally every day, it gets hard to remember
to take it. And then I think there are issues with how you ramp them up to the effective dose and
side effects. I think there's ways you can do that, you know, safely going step by step.
But nausea is an issue with some of these. You know, muscle loss is an issue. There's different
features there. And then additionally, you know, long term, this is, you know, you're taking a super
physiologic dose of something, and we don't know what the long term ramifications could be.
So even though I believe the benefits outweigh the costs, right, you're treating obesity.
We know obesity is a problem. We don't know. GFP wants to be a problem long term. That does
weigh heavy on some people's minds, and that might be why they stop as well. So in my practice,
where we do endoscopic therapies, over 85% of people have already been on a GLP1,
and either they're struggling on or they've come off.
80.
85%.
Wow.
Yeah.
Again, we don't want to get too far into the sociology and psychology of medication adherence.
But it is interesting that so many people come off meds.
But then there are meds like SSRIs and things like that, which I think can benefit certain people,
like people with full-blown clinical OCD, the extreme.
They've saved lives, right?
But then they're over prescribed.
I feel like, especially in the United States,
people like their prescription drugs.
So if they're stopping, I feel like there's got to be a reason.
I mean, aren't we the biggest consumer
of prescription drugs in the whole world?
Like, people love their drugs.
Like, you know, I've heard about the nausea.
I don't, there are a number of people now
who are quote unquote, microdosing the GLPs
and finding that they're getting some benefits
without taking the prescribed amount.
I'm not recommending people do that.
you know, I guess talk to or don't talk to your doctor, they probably won't approve.
But I know people are doing that.
I think initially it was because of cost and actually pen sharing, but also people feeling like,
oh, I get the same effect.
So is your sense that when, because the way clinical trials are done, there aren't, often
there aren't like really nice dose responses that you're just kind of comparing, they're so
expensive to do these trials that they're going, you know, two doses, you know, moderate, high
versus placebo.
And then that's what the doctors have to work from.
Do you have any knowledge of whether or not the lower dosing brings, it takes people away from side effects and then you're seeing fewer of them?
I think it's actually very useful. So that's, you know, the approved dosages are kind of just an effect of a regulatory system, as you've alluded to right, and it's too expensive to do different doses.
Plus, it takes away personalization. You know, we're all trying to get to precision medicine and personalized medicine.
And that's what microdosing allows you to do. And the first time I heard about microdosing, it was one of my people.
patients. And he was a physician, and he came in, and he said, you know, I, A, it's too expensive,
you know, B, I don't feel great on it, and C, I'm doing this thing where I take the pen and I inject
it into a sterile vial vial, and I use an insulin syringe, and I'll take a small amount out,
and I'll give it to myself. And he said, I'm doing great, you know, I don't feel nauseous,
my weight is staying off. And, you know, he was a physician, so he was familiar with, you know,
the equipment, if you will. And that was the first time.
I came across it, I was like, wow, that's actually, that's a great idea. So a lot of my patients
actually do microdose these things. And, you know, generally you get up to the point where you
want to lose weight, you get to that dose, you're losing weight, you're losing weight,
and then for maintenance, rather than just stopping it, because if you stop the GLP ones, there's problems,
right? This is not meant to be stopped. These are kind of lifelong medicines. Instead of stopping it,
just go to microdosing. And you'll find a spot, hopefully, you know, not everyone does,
but you'll find a spot where you keep the weight off,
you feel good, and you're not taking as much of the med.
Now, the problem with coming off of them is,
especially with the original drugs, you know,
like some aglitides an example, right,
where when you lose weight, about a third of the weight you lose
would be lean mass, right?
So most muscle, right, maybe some bone, et cetera.
And the problem is when you cycle on and off, right?
So say you come off of it and you put your weight back on,
you're not putting the lean mass back on, okay,
you're putting the fat back on.
So now you've shifted your body composition to be less favorable than before you run the GLP1.
And then you go on it again and you lose weight again and you lose a little more muscle.
And then you go off and you put more fat on, not more muscle.
So now basically you're taking your body composition and shifting it worse every cycle.
So there has to be a game plan.
If you're coming off the GLP1, you need either to microdose it or have a bridging plan to a procedure or something else,
which will keep the weight off for you.
Are there any good studies showing that resistance training can offset the muscle loss from a standard or microdose of one of these GLP drugs?
Yeah, resistance training definitely.
I'm not familiar with one that was the primary outcome of the focus, right?
But you can actually see that that does play a major role in maintaining muscle.
And that's with anything.
It's not just GLP 1 medications.
It's with the first generation medications.
It's with any surgical procedure or inoscopic weight loss procedure.
you know, if you're doing resistance training,
you tend to maintain your muscle
because the body realizes,
I need this muscle,
I'm not going to get rid of it
as the person's losing weight, right?
So when there's a caloric deficit,
the body is looking for what it can do to, you know,
to maintain, you know, energy levels, if you will,
and you don't want it chewing up the muscle to do that.
The side effects that I see getting the most coverage
are increased feelings of apathy.
general, you know, food noise is down, alcohol appetite is down,
appetite for life is down.
You hear this, but I don't know how accurate that is, right?
Social media is a weird place because certain things get amplified out of proportion
to the real data often.
The other one is that a GOPs can cause blindness, these gelp drugs, but it turns out that's
in a very, very rare set of individuals that have this optic nerve head kind of ischemic
opportunity. So yes, the GLPs can make certain people blind, but yes, also, it's a very small
number of people. So you want to get screened for this structural thing in the eye. But it's not
true that like GLPs are making people go blind all over the place. So what I'd like to ask is
when patients come to you and they say, like, I didn't like the GLP or it wasn't working for
me. Are they telling you why? Are they saying, look, it made me feel nauseous? Certainly,
you know if they lost their vision because of it, but is there some resounding themes there?
There are, I think that muscle loss honestly is one of the bigger ones, right?
And it might just be subtle, like OZepic face, ozempic butt, right?
You're losing some muscle in places where it's noticeable.
Other people actually truly develop sarcopenia, I think, right?
Where you have significant loss of muscle.
It's rare, but those are people that they're not really exercising a whole lot when they take it,
and they might have had a predisposition to it in the beginning, right, to start with.
So in people that I'm concerned about that, it's good to get a Dexas scan beforehand, right?
make sure you have adequate muscle mass.
And if you don't, you really have to think twice about if you want to do the GLP1, right,
or if you want another avenue to try to lose the weight.
And you definitely have to start hitting the gym.
I think that's the most common thing is muscle loss in obvious places or sarcopenia developing.
The other one's nausea.
A lot of folks do get nausea on the higher doses.
And they will not lose weight in the low dose, right?
And if they go on the high dose, they feel nauseous.
So that's another issue.
Some people say it stops working.
I mean, that might be because, you know, of that similar issue,
they don't tolerate the higher doses.
Those are the primary reasons that I hear.
Maybe we can move a bit towards some of the surgical procedures.
And I always remind people there's basically two ways you can affect your brain and body.
You've got chemical methods and mechanical methods.
So, you know, and when I think of, quote, unquote, stomach stapling,
I think of that purely as a mechanical thing.
You're making the stomach smaller.
Make people feel full.
earlier in the meal, is my naive view of this, right?
But of course, it stands the reason that you're also removing tissue,
and so you're going to change the chemical milieu of the environment.
I'm sure you'll tell us that both things are involved and what.
We had this thing called stomach stapling for a long time.
Why did we need the GLPs?
Now, somebody would say, well, that's a surgery,
but I think in today's conversation,
hopefully we'll convince people that surgeries can be done less and less invasively now
and can be done with tools that make it seem a lot more,
more like a dental cleaning, maybe a bit more, than the idea that you know, you're cutting
open the body and taking things out, laying them out on a table, putting back in this kind
of thing, because people's minds go all sorts of crazy places, trust me, including mine
when we hear surgery. Why did we ever need the GLPs? We had stomach stableing.
So surgery, it really started back in the 50s. University of Minnesota, I think was the first
place they did it. And the first procedures were focusing on malabsorption, right? So the idea was
they're going to bypass a portion of a small bowel
so that you don't absorb your calories.
Okay?
And it was called a juino-ilial bypass.
But this procedure was awful, right?
So the people did lose weight,
but the problem was they created a long, blind limb.
So there was no actual food going through the limb, okay?
So you connected the dejunum,
which is the kind of early small bowel
to the very bottom small bowel.
And the rest of the small bowel was still in there,
but it wasn't, no food was going into it.
So you had bacterial overgrowth in there.
You had all sorts of problems.
You had the fat that was being malabsorbed was binding calcium.
And so calcium, you didn't have calcium in the bowel,
so what happens is the oxalate, which normally binds calcium,
gets absorbed, and then it binds calcium in the body and the kidneys.
So you're having all sorts of renal failure issues,
and it was a disaster.
It went on for years, right, because, you know, people were desperate,
but it was a very bad procedure,
and it was replaced by something called gastric bypass,
and I think that came about probably in the mid-dele six.
60s. And Mason, I think, was the surgeon that came up with this. So his goal was to avoid the problems with the GI bypass and, you know, still get a treatment effect. And he did, right? So he thought of this as restriction. So when you'd eat stomach stapling, the stomach is smaller. So you'd have some element of restriction. And then also an element of bypass where you're not absorbing all your calories. Turns out that's not really how this thing works, really. But that's what he thought was going on. And then from there, you keep moving forward to have all these other procedures lap.
bands, adjustable gastric bands, that was just purely restrictive.
It worked.
True stomach state playing, which was, I think, the VBG, and now the sleeve gastrectomy.
So these are their real surgeries.
And, you know, they were created at the time just conceptually thinking about either restriction
or thinking about malabsorption, but they work entirely different than what they thought.
I have a question about your profession generally.
I'm guessing there are not large-scale clinical trials of each of these surgeries, like they're
doing, you know.
5,000 of these surgeries comparing to the existing surgery.
So how much license do surgeons have say, you know what, I'm very familiar with this
tissue.
Maybe I just like graft these two, cut out the middle.
That's the part that absorbs stuff.
Oops.
Okay, actually big problems and modify.
And then because, I mean, there's, there are other things, but there are few things
greater in terms of trophies for a physician, knowing some physicians.
Aside from the great feelings they get from healing patients and saving lives, let's
let's be fair, having a procedure named after you that saves lives.
Like that seems to me like that's like the ultimate thing.
So there's got to be a huge incentive for physicians to do it on that basis, which might
sound all like ego.
But there's another facet to this, which is no, and we know this from science too, like you
can read about the brain.
But if you get your hands on brains, record from them, slice them up, look at them under
a microscope, you just like a familiarity with the tissue of interest, especially in the context
of the whole person who's coming back and saying, I don't know, I'm still hungry, less hungry,
but I got this pain on my left side. You know what that pain could be. Are there any procedures
that you would love to be able to do because you have the sense that it could really help people,
but the red tape is just too thick that it doesn't even make sense to try and develop that
procedure? I don't think so. Okay, that's good. I think the proper channels are workable. I do think
that there are compassionate use cases where you need to make exceptions, and then they have
expedited protocols for that. I remember,
one time I had a person that was bleeding and it was bleeding that was chronically going on and couldn't
be stopped and we needed something that was not yet approved in the United States. It was approved
in Canada. And the person, they had no other option, right? And so we were actually able to get within,
you know, 12 hours approval to use it as compassionate use and it worked for the patient. So there's even
pathways for that, right? So I think there's always, you know, there's always a way to use that. It slows
it down. Yeah, you're excited to do something, right? And it does slow things down.
But I think it's always workable.
Now, there are other examples of where you have a device that's approved for one thing
that the company doesn't want to get it to prove for everything because they have no money to do that.
So you use it off label.
That happens every day in every hospital.
Just like drugs are used off label.
Yeah, right?
Same thing, right?
So, like, we use wires when we're accessing a bile duct to remove a stone, right?
That wire has not been approved for that.
It was approved for some vascular indication, right?
And we've been using it that way forever because no company ever went through.
and did it. So the whole field's based on this, but it was never approved for that. So
there are examples where you use your clinical knowledge and use a device that's approved.
It's approved, but just not approved for that indication necessarily. And so there's that,
and that does require a medical judgment. It happens on a daily basis. But if you're developing
something truly new, generally the proper channels are very workable. And actually, a lot of times
they give you even better ideas. Like, oh, why don't you think about checking these studies?
Like if you're doing this, check this gut hormone, right? So they have, you know, a lot of times
they give good feedback that helps the study, you know, improves the study.
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When it comes to the chemicals associated with hunger and satiety,
Maybe you just kind of like list out the big players.
We're talking about the GLP, which obviously play a role in satiety and other things, hence the side effects.
So what are some of the big ones that we don't hear about so much anymore because of the GLP's?
Yeah.
Well, Starzarin's a big one.
That's the hunger hormone, right?
So that goes up and it is produced in the fondness of your stomach.
And when that...
The funness is the very top of the stomach, the top thin part of the stomach, right?
Kind of where the esophagus comes in.
And a lot of the grounds produced there.
And when that's how you're feeling hungry.
So it leaves the gut, travels to the brain, and stimulates hunger.
Yeah, it's a hormone.
What a beautiful mechanism.
The top of the gut.
You're like, I haven't seen food in a while.
I'm still, you know, I have to say I'm perseverating in the background about this thing
that the gut expands in anticipation of food and that that's odor-based.
So does that mean that the olfactory neurons are communicating with the gut directly?
Are they talking to insulin goes up and then the gut expands?
Insulin actually does go up too.
So insulin is before you eat, you'll have a little spike in insulin too, right?
So I don't know if they ever figured out exactly that mechanism by which smell, you know, tasting food early on,
triggers or seeing food potentially, right, triggers this whole process to start.
But before you swallow any food, right, you already have insulin coming up a little.
Your stomach's already starting to stretch to accommodate the meal.
So maybe some of it's learned as well.
I don't know, but I'm not sure of those mechanisms.
but it's very interesting how it's a critical role, right?
It certainly was involved.
When was it Grelin discovered?
I should know this.
Oh, man.
Was this like over 30 years ago?
Yeah, it was a while ago.
Okay.
So after Grellin, that's your hunger hormone, right?
When you eat, it drops.
And then, you know, it comes back again sometime after the meal.
So Grellons wanted to watch because we actually use Grellin.
We work with Grellin.
It's one of the mechanisms we used to get our treatment effects with endoscopic procedures
and with surgical procedures too.
So that's Grellin.
So then after it kind of, the food leaves the stomach, right?
Then you have your CCK, which goes up, right?
Which CCK will cause the gallbladder to dump bile,
but it actually also will be a satiety signal as well.
And that's secreted from the first part of the duodenum there.
And you also have peptide Y Y and GLP1, of course.
They're big ones.
Before you get there, I guess, GIP from the K cells approximately too.
GIP is like GLP1.
It's kind of similar.
It's not quite as potent.
people think of as Batman and Robin with GLP1 and GIP, right?
People might be curious to know that this drug, Reda Trutide,
that the more cavalier peptide curious folks are already getting off from compounding pharmacies
in the gray market, black market.
Red at Trutide, as I understand, promotes GLP, GIP, and Glucagon.
I think the clinical trial, Lily Rand, showed a 30% reduction in body weight,
which is really striking.
So it's kind of curious that this GIP never really took off.
as a drugable thing.
But, you know,
GLP seems to be like the heavy gun.
But now by combining with other things,
maybe you actually get some synergistic effects.
It does help.
I think it helps with nausea.
So it allows you to have higher doses,
potentially have GLP1 with less nausea.
Interesting.
So GIP, I think, plays that role.
It has a role in insulin sensitivity as well.
And it does some of the same stuff
JLP1 does, and it's synergistic, I think.
But what's interesting about the glucagon is potential muscle sparing there, right?
So glucagon, among other things, you know, glucagon is usually up when your insulin is down and vice versa, right?
And its job is to say burn fat, right?
That's his main job.
It also causes you to dump your glycogen out of your liver a little bit.
But the main job with glucagon being up, it says burn fat, right?
So it's kind of nice that they're adding that as a muscle preservation as well as a way of helping to burn some of the fat potentially.
Yeah, these pharmaceutical companies, however, a bunch of people might hate coalizing.
unquote big pharma. I mean, they're putting hundreds of millions of dollars into the research.
Kind of an amazing case of like 20 years ago. There was nothing for a drugable for obesity,
as I understand. And what was there was mainly stimulant based, like the fenfluramine and like this kind of thing.
Well, yeah, the valve issues. But you had, well, you had fentramine, right, which was a sympathymimetic, really.
And speed. Yeah, basically. Mother's a little helper kind of thing, right?
I'm right.
I mean, and nicotine.
You know, there's a whole set of his conversations there.
Some people think that when we, you know, basically abolish smoking, people started eating more.
And then America got fat and then snack foods and highly palatable.
There are a lot of things, right, moving more, eating more highly palatable foods and less fiber.
But now nicotine's back in oral forms.
It's back big time, mostly with men but also with women.
And a lot of people like it because it's an appetite suppressant.
I'm not a fan for a bunch of reasons.
Raised blood pressure, highly addictive and so on.
But it's interesting, right?
Like, people have struggled for forever to, like, how can I eat, enjoy food but not eat too much?
Whether it's a compound that we normally, you know, a drug that increases the compound we already make, like, GIP,
where we're taking something to make us move around more.
And like you said, sympathymometics, it's like stimulants.
It's like a human obsession.
Why can't we just eat enough?
but not too much.
I think it's obviously metabolic dysregulation
and there are layers of it.
The processed foods,
which you touched on,
certainly is an element to it, right?
There was a study done,
I believe it was in Bethesda
and an EH study
when they had like 20 subjects
and they randomized and crossed it over
and they could either have whole foods
or they could have processed foods
and the people that were reading the processed foods
they could eat at will.
They're eating like 500 calories more a day.
So it is something that you do
in your normal environment.
If you're eating stuff in a wrapper
and you're eating it,
you're inclined
to eat more of it. And not only are you eating more of it, right, it's easier to digest, right?
You're getting bigger glucose spikes and you have a lower thermogenic effect of food, right?
So it really is, it's probably also not doing great for your microbiome because there's less fiber in it.
And so that is playing a big role. It starts starting the ball rolling for sure.
And then there's different layers to it. Then you have your PYY and your GLP1, which the GLP1, you know,
it's triggered by anything
but glucose tends to trigger more of it right
and then the PYY
that's more your proteins and your fat
and it does something similar
you stay full longer I think
and with a big heavy fat and protein meal
probably because of the PYYW
that's something's been very hard to drug
right they didn't have a GILA monster
to solve the problem that GLP1 did
but it's also very potent
and they both come from the L cells
and the distal small bowel and the colon
And those are kind of all the major players.
You also have leptin in the background.
That's more of a thermostat, if you will, that gets involved in a set point and things
like that.
That's secreted from your fat cells.
And it's almost proportionate to fat.
So if it's high, generally you're going to probably eat less.
If it's low, you're going to eat more.
But there's all sorts of problems with leptin resistance and other things like that, too,
that complicate it.
I remember coming up through science, like leptin was all the rage.
It's discovery.
It's cloning.
And everyone thought, okay, their drugs are going to come along to mimic or stimulate
leptin and we're going to solve the obesity or overweight issue.
But it didn't really pan out.
Why was that?
I think leptin never panned out in large part because of leptin resistance, right?
I think the hypothalamus and the brain itself is just becoming resistant to it because
it's so high in people with obesity for so long, right?
And there's just saturated.
They got a lot of fat, lot leptin, receptors are clogged.
There's a little great inflammation we know in those tissues.
And you eventually just, yep, you don't respond to it anymore.
And so the drug just didn't pan out.
I think that with the GLP-1s, it's another story, right?
I think, you know, incritons in general, we've talked about incritons.
We've been talking about these hormones that are produced in the gut.
They go into the blood and they do something.
So the concept first came about in the 19-10.
30s and it was in London. And they basically were grinding up animal duodenum's, okay? And they were
emulsifying it and injecting it back into the animal in the vascular system.
Science in its not through this form. This is 1930s. So it's a science is not that old,
you know, real science. Right? That's pretty crude. That's nitty, gritty, right? And the idea for that
was secretin. So someone had found secretan, right? And that is a hormone produced into duodenum that
goes to the pancreas and says secrete fluids for digestion, so extracrine function of the
pancreas. So this person thought, well, wow, if the duodenum secretes secretan, maybe it secretes
something else. So they did this study, and in the animal, the blood glucose fell. And like,
holy cow, right? This something into duodenum is causing glucose to fall. Phenomenal. I'll call it
incritin because you have secretin, I'll call it incretin. So that was where it started in 1930s, right?
And then there's another lab, Sheila Sherlock's lab in London.
She was famous for being one of the kind of founding physicians that started the field of hepatology.
And she was trained in some medicine and some internal medicine and some surgery.
And they had this concept, but what they had access to was this new tool, which is where you see innovation, right,
that access to this way of actually detecting and measuring insulin.
And so they did a very interesting study where they gave subjects a set amount of glucose intravenously.
And then they measured the amount of insulin that was produced.
Then they gave them the exact same amount of glucose orally.
And they found they produced much more insulin.
All right.
So this was something they coined the Incretin effect.
But is that based on taste?
So they had no idea, right, but they knew the insulin was going up.
And they thought it probably, because the only other research there was out there was from this old.
1930s study where it was coming from the duodenum, it was probably due to that incriton.
Then there's other studies that come after that, they get closer and closer to it, right?
So eventually what ends up happening is in the Lilly Labs, I believe it was, there's a physician
named Bell who actually, he, you know, the pre-pro glucagon, he ends up, you know, cloning that.
And then from that, you get GLP1 and GLP2, right?
And so he now has, we now have GOP1.
We've identified it.
And then there is this physician Blossom, I believe was the name in London again.
And this guy did some phenomenal work.
So what he ended up doing is now we had GLP1 so he could actually study it.
He found GLP1 was in the bowel where we thought it was.
He also found out that when you actually gave glucose, GLP1 increased in the blood.
And then he actually infused the GLP1 and found that when he infuses it, insulin goes up, glucose goes down.
So now all of a sudden we had a real sign that what this Incretin was,
and it was JLP1.
Very exciting work.
The problem was you had to infuse it, right, for it to work
because it gets chewed up really quickly by dipeptidyl peptidase.
It chews it up.
There's something on the end terminus of it that is susceptible to that.
And that's the part that binds the receptor,
so you can't really get rid of it.
And then it was in the Bronx in the 90s when there's a Dr. Eng
And he's studying Heelom Monsters.
And in the GILA monster, he finds this thing in the GILMON that looks very much like GLP1.
It has one substitution, like second amino acid in from the end side.
Otherwise, it looks just like it'll bind a receptor.
The C's a little longer and different.
But this is, you know, extend in four.
And basically this is the molecule he discovers.
And this is what ends up becoming all the GLP ones.
These GILMONs don't have to eat very often.
So it makes a good candidate to state.
So you do surgeries of various kinds.
The people are coming to you, have they all tried GLPs and they don't like them or they're not working for whatever reason?
Or they'll microdose it, but it's not solving the problem.
And what sorts of surgeries were you trained to do?
And then at what point did you become the doctor I referred to earlier who seeks out IRB approval to build something better?
Like I'm a, I guess if there are multiple themes in today's discussion, but what?
One of them is if the really great physicians look at a problem, they look at the tools they've got to solve that problem.
And if they're not working for any number of patients, they build something better or different or they increase the array of tools.
So tell us that story.
Where did that start and where are you at now with that?
Really, for me, I've started in fellowship.
So I'd moved to Boston to learn interventional gastroenterology.
So this is not colonoscopy and whatnot.
It's doing procedures mostly focusing on pancreatobiliary,
so pancreas and biliary conditions.
And the big problem at the time was really pancreatic cancer diagnosis.
And so I was moving there to learn a new procedure
that they called endoscopic ultrasound.
So you'd be able to put a scope in the mouth into the stomach and small bowel
and then use the ultrasound probe that's embedded in its tip
to see the structures just outside the lumen
and you could gain access to them.
You could put a needle in them, and that held a lot of promise.
You could maybe ablate lesions with it.
So you're feeding a needle through a tube.
You're watching it on a screen, right?
So you're not using the, you're not opening up the abdominal cavity.
Yeah, so you can do it through the mouth.
So it's a natural orifice.
You're going through the mouth rather than opening up, which for pancreatic cancer,
a lot of times that's how they would do it.
They would go to surgery, open the belly up and get the biopsy, right, to see what it was.
because it was really hard to make the diagnosis.
And so I wanted to learn this new technique
where the patient goes home the same day,
they don't feel anything, right?
So I thought it was phenomenal.
When I got there, I'd done a master's in health evaluation science
at Penn State before going,
and I thought that I would be doing epidemiologic research.
And when I got there, my mentor, Bill Brugge at the time,
was a pioneer in this ultrasound.
And he gave me a needle and said,
hey, this thing doesn't work to make the diagnosis of pancreatic cancer,
I need you to try to fix this, right?
And he was right, the thing didn't work.
Unfortunately, we had about a 50-50 chance of getting a diagnosis with the needle,
and it's because it was designed like a hypodermic needle,
like you'd get an IV placed, right?
The IV is not taking chunks of tissue out of you.
It was designed to atchramatically split the tissue,
and that's needles we were using, right?
It's designed to deliver stuff and not take stuff.
Yeah, yeah.
So I kind of figured out what the problem was.
They didn't know the solution, honestly, but I gave him my report,
and the company thought it'd be too expensive to fix,
and we didn't really do much with it.
But it still went on.
I was a couple years into practice on faculty there.
And, you know, we still had the problem of, you know,
you take these F&As, finding all aspirations of it,
and you wouldn't have an answer.
And you'd have people that wouldn't want to have a major surgery
having their pancreas taken out without an answer.
And then they'd have worsening cancer,
and then by the time you'd be able to make the diagnosis,
It'd be too late to treat them and help them.
So that's where I started kind of entrepreneurial stuff, right?
And so my first company, I guess you'd say, was based on that.
And I needed a team, you know, and one of the engineers had the brilliant idea of how to change that bevel design, helped raise the money.
I knew what the clinical problem was and that and whatnot.
But you needed a team to fix it.
So we hired engineers and we got together and we came up with a needle that could buy up to the pancreas without causing pancreatitis or any problems.
problems. And it has been wonderful because that really became very instrumental in helping a lot of
people to get the diagnosis earlier. So we're saving lives with that. But now we look forward to
the fact we have preserved cellular architecture. So you could do precision medicine. You can actually
test different drugs on the tissue and see what it's going to respond to. You can do immunostaining.
And it's a lot better than just having a few shaved cells. So that was the first time I really
getting involved in trying to solve a problem like you say. And that was before I just
started diving into metabolic disease where I've spent really a large part of my time, but that
was what started off. So just like earlier, you know, I was saying that you have mechanical influences
and chemical influences over our health and biology for what I call like reading from the body. Like
people get a sleep score or your heart rate or a blood pressure, that's reading. Obviously, you're not
writing to the body, but you have a structure and you have functional readout. So like if, you know,
someone goes, I have the pain in my side and you go, okay, well, you give them an ultrasound,
There's a massive thing there.
Like, you've got a structure that it doesn't belong there.
Then you can decide to cut open, right?
I hear biopsy.
People hear biopsy and they go, boy, you're getting poked with a needle,
this kind of thing.
But I might shock a few people.
But if you told me that I could come into the clinic
and spend one long day under anesthesia
and get completely non-damaging biopsies
of every single one of my major organs
to grab a few cells here and there through the mouth
or heck, even if they have to make a small insidious,
in one place and then zip me back up and send me home and I can just say, okay,
like I'm, let's just look at all the cells. Let's see what's, you know, let's see if I have any
issues. A lot of people would be like, why would you do that? Well, I'd rather do that than
walk into the clinic at 72 and go, I've got this pain or I'm not sleeping well or I'm sweating
or have this bump here. I mean, in the end up diagnosing ourselves. Well, we either drop dead
diagnose ourselves or someone else diagnoses us, right? And so with a procedure like yours,
I'm kind of inclined to say, like, would you just get it?
You seem healthy.
Have you done it to yourself?
Can I come in and get it just for checking things out?
We take blood tests now.
If you go, what's my testosterone, my estrogen, my lutonizing hormone, my lipids,
my, you know, small, you know, LDL, APOB.
20 years ago, if you wanted to get a blood test, 15 years ago,
and you didn't have a problem to motivate that,
it was thousands of thousands of dollars at best.
very hard to find people that give you these announced trivially inexpensive for most people.
So I feel like we're kind of going that way with biopsy. So how soon are we going to just be
doing biopsies with non-damaging procedures? So I think a lot of times with biopsies,
you have to be very targeted to get the tissue of interest, right? So even in the pancreas,
like we said earlier, you know, you could be even in the area that looks like a lesion, like a tumor
and not getting cancer cells out. So I think that you have to be very, very, very, very
targeted. But then once you do get the tissue, you can do all these stains and you can really
figure out what's going on. Is there a genetic predisposition to it? Is there some way it'll
respond to one drug over or another? I think that's phenomenal. But I would like to see the
diagnostic studies become less and less invasive so they can scale easily. So the one problem with
procedure-based diagnosis, I like procedure-based treatment. I love it. It's better than surgery.
you know, going through the mouth
rather than making an decision,
the abdomen, I think, has benefits for the most part.
But when you get diagnostic studies,
similar to colonoscopy, there's a scaling problem, right?
So when a patient has to come in
and spend an hour with a doctor or two hours,
that doctor is taking care of one patient for two hours
and he's outnumbered, right?
Everyone needs screening and it becomes very complicated.
So I would love to see innovation and technology go
where we have minimally invasive ways of diagnosing things,
whether it's via your smartphone and AI,
or it's via minimally invasive scans,
and blood tests are great,
because it's quick and easy to do.
And we're not even doing,
talk about metabolic health.
You know,
there's several things we could be doing
non-invasively at home right now
that we're not doing to catch it much earlier.
So, yes.
Well, so an example is,
most of the time we're waiting
for human globin A1C, right?
And that's the marker of diabetes,
and that's going to be the thing that,
you know, once you have an A1C
or a high Apo,
which you're probably not,
checking maybe in LDLC or something, right? Once those are high, we know there's a problem.
However, there are signs much, much earlier than that. And so metabolic dysregulation follows a
fairly predictable sequence, right? First, it's calorie excess, right? So it's in the Western
diet, it's usually glucose, right? So you have too much glucose around. You can have too much saturated
fat too, but too much glucose. And then that had too much glucose, you could catch that by doing a
CGM, right? So that's one way you could do it, a continuous glucose monitor. You can then see
if you have particularly glucose spikes to certain foods. And if your glucose is shooting up to 200
with certain meals, you know you're sensitive to that. And maybe you should change how you're
eating it. Try to eat it after having something fatty, maybe avoid it, right? So because we know this
is part of a sequence that's going to lead to problems. And this goes back to the White Hall 2 study,
which, to give relevance here. So the White Hall 2 study was on British civil servants. It was a
prospective kind of longitudinal thing.
And they found that they followed all sorts of metrics.
One of them was insulin.
Fasting insulin was one thing that they followed.
They followed other things as well.
And they saw that if someone had high fasting insulin,
they're more likely to get diabetes long term.
So, and it was a long period of time.
It was like at 10, 15 year time,
they could detect this thing 15 years earlier.
They could do something about it, right?
But no one does because no one looks for fasting insulin.
And the other thing is very relevant here
is there's another study.
It was UNCN.N. Haynes study.
Okay. And that's another large database. It's more cross-sectionally looking at a point in time. And what they found was that less than a third of people that were lean are metabolically healthy. That's crazy. 12% of the whole population, less than a third of lean people are metabolically healthy based on their parameters. And their parameters looked at waist circumference and glucose and blood pressure and whatnot, right? So looking at metabolic signals. The word there is, start looking early and don't look with the traditional things. Okay. We have to look at other things getting back to metabolic syndrome ideas.
So first, you could check for glucose.
So glucose spikes.
A CGM can do that.
I wouldn't say wear it all the time.
Get one for a month or two.
Learn what spikes your glucose.
See if something spikes your glucose and adjust it.
Next, you have fasting insulin.
Okay, so the next thing that happens is first than anybody
to have the insult of excess calories.
The excess calories comes.
That's what happens.
Insulin's job is to take that sugar and push into the cells.
Because glucose is really bad for the body.
We know this.
If you look at end-stage diabetes where they can't control their glucose anymore,
they go blind.
you know, they have kidney failure.
It's killing the vasculature.
It's sticky.
Glucos is sticky.
It glicates things.
It causes problems.
So the insulin's got to get it out of the bloodstream.
So next, in the sequence of metabolic dysregulation is high insulin levels.
Fasting insulin goes up.
So you can get a fasting insulin level.
That's the next thing you check, right?
It's not a lot to ask for.
It's an inexpensive test.
And you can see if you've evolved into that problem where now you have chronically high insulin levels.
And part of that, honestly, is due to eating too frequently.
and could be eating, you know, certain things that are, you know, high-fructose corn syrup
or things that basically, you know, have a high glycemic index or load that's going to cause
your sugar to spike.
So, and the problem is if you're eating every few hours, insulin goes up and it spikes,
it drives the glucose out of your blood, but then insulin stays high.
Okay, it doesn't go right back down.
It stays high for a few hours.
So if you're eating every few hours, you always have this high insulin.
That's going to lead to other problems.
And the next thing that happens is ectopic fat, right?
So your fat exists in different areas.
You have subcutaneous fat.
That's where it's supposed to be.
That's your depot for energy.
And it's healthy there.
It has different ways of growing.
Then you have visceral fat, which is really in your momentum.
You know, it's in the abdomen.
And in your mesentary in the abdomen that's around the bowel.
Okay.
So that's kind of your visceral fat.
Then you have your organ associated fat.
You have some fat around the heart.
You have some fat around the kidneys, et cetera.
It's kind of supposed to be there.
They're all.
adipocytes. They're all fat cells. Their job is to store fat and release it, right? That's what they do.
Then the last bucket is ectopic fat. And ectopic fat is where you have fat in cells that is not their
job to store fat, right? Like liver cells or muscle cells or pancreas cells. And that becomes,
that becomes a problem. It's like woggyo beef. Yeah. It's like woggy beef. Yeah, those cows are
over they're not, they don't move. They're overfed. It's, yeah. And that, that's, you know, that's another problem.
Right. So that's the next phase of metabolic dysregulation. And they've done all sorts of great studies that are shown exactly from each step what happens and how you get there, right? And so that's when you get fat in your muscle and you get fat in your liver. And that's bad. Fatty liver is very bad. And then that is what goes on to insulin resistance. Okay. So for the fat, how can you look for that? Well, you can do a waste or comforts measurement, waste of height ratio. You can get a dexas scan. That'll tell you if you have visceral fat or, you know, if you have a lot of subcutaneous fat, a CT scan, MRI.
other things will do it too. Or an ALT, look at a liver test measurement, right? That's an
immunotransferase in your liver. And usually, you know, I'll signify some inflammation.
So, you know, that's the next level, right? And then you have insulin resistance, which
that's a little harder to check. That's a combination of, there's a formula that you can do,
look at that. It's a fasting blood glucose and a fasting insulin level, and you multiply those
and divide it by a constant. And if it's greater than two, you have insulin resistance. So that's the next,
next phase of it, and then finally you have metabolic inflexibility.
Your body is supposed to change between calories, right?
What is burning?
If your fasting is supposed to be burning fat,
and if you're eating is supposed to be burning some element of carbs,
depending on what you eat,
but if you have carbs in it, it should be burning the carbs, right?
And so you can develop metabolic and flexibility
as the next phase of this once you have insulin resistance,
where when you're fasting, you're not really accessing your fat anymore.
Your fat's still there.
It's burning more your glycogen stores,
and God forbid is chewing up muscle.
right, but it is no longer accessing the fat sources
is supposed to be accessing.
And then when you eat,
it doesn't shift over to burn the carbs well either.
It kind of just, it doesn't know what to do.
That's a loss of metabolic flexibility.
And by then, you're getting near the time
when all of a sudden something's going to happen.
Because once you have a loss of metabolic flexibility,
they've shown in studies that you're more likely
to gain weight and develop obesity.
You're more likely to start losing beta cells.
You start burning out your beta cells,
and they became apoptic and you lose beta cell mass.
and you start having all sorts of other problems.
So this is a very kind of typical sequence that you see.
It can happen in other ways, but that's the typical sequence that's backed by science
and different clinical trials.
And each step of that way, you have a study you could do to find out about it.
The last one, the metabolic flexibility is a little harder because you have to do,
kind of go on and do a breath study for that where you're looking at gas exchange.
And it's very accurate, actually, because we know that there's a respiratory exchange ratio,
athletes do this to optimize performance.
You can do this where you get a dexas scan in a lot of places.
They'll tell you how many calories you're burning or what you're burning.
And basically, it's, you know, first law of thermodynamics and you're burning calories,
but it's a ratio of a volume of carbon dioxide divided by a volume of oxygen.
When you eat carbohydrates, carbohydrates have an equal number of carbon and oxygen,
so it doesn't require much oxygen to burn the carbohydrates, but when you burn fat, it requires more oxygen.
So if that ratio is like 0.7, so it's involved in carbon dioxide or oxygen, that means you're using more oxygen.
That means you're burning fats, right?
And if it's one, you're burning carbs, and then there's a in between.
And so this is a great way to see if you're metabolically flexible.
Eat fat, see what happens.
Eat carbs, see what happens, and do it fast, and see what happens, right?
And you sit in a chair and you breathe for half an hour.
There's companies that are actually developing at home methods doing this, too.
There's a few of them.
And actually one of them recently, I think, now has one that does both the oxygen and the carbon dioxide.
I've seen this is like a little box that you breathe in, too.
So, I mean, you can do everything, right?
So, and then, or you can just wait until you have diabetes
and your A1C goes up.
And so, yeah, there's a lot of things that we should be doing
before we do the standard test
of looking at your fasting glucose
and looking at your hemalumin A1C.
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code Huberman for a $50 credit towards your membership. Again, that's functionhealth.com
slash Huberman. It's gratifying to hear that you put the CGM pretty early on that list, very early,
In fact, I mean, I don't, I want to be clear.
I'm neither complaining about nor am I trying to turn you against your colleagues.
But I'm going to just be really blunt from, and these are my words and my words only.
I want people to understand this.
So, like, I mean, I've gone public many times saying, hey, like, as cost of blood testing comes down, this is awesome.
You get a window into lipids, hormones, things.
It can be very informative, whether you have issues or not.
And the pushback on that from the medical community, not all, because I have friends in the medical
community who will quietly say, yeah, I totally do that test.
I take that test, you know, but many of them just say, oh, great, now patients are going to
be coming to me saying, like, do I need to be worried about this?
Do I need to be worried about this?
I said, I actually put a post out recently that as the cost of a whole body MRI comes out,
it's going to be interesting to see what happens.
I have neurosurgeon friends who tell me about life-saving procedures they do all the time.
the neurosurgery community was super angry.
It generated some press.
This week actually, this is how the tables kind of turn.
There's a celebrity.
I forget their name who took a one of these types of scans.
From a company I have no affiliation with, by the way, I took a Pernovo scan and identified
a malignant issue that could be cut out and very likely saved their life or at least extended
it.
So I get it on the one hand why a lot of physicians are worried about people walking around
with a lot of data.
I heard the same about CGMs.
Okay, I'm going to try not to rant here.
It was like, oh, gosh, who needs to know that?
Glucose goes up, glucose comes down.
In the absence of diabetes or pre-diabetes,
like you can have a glucose spike.
We don't want people walking around
neurotically worried about eating a grape,
which I totally understand.
Your body can manage these things.
But now that CGMs have been out for a couple of years,
I don't hear much pushback.
Yeah, if somebody wants to use CGM for a couple weeks
and see how they react to different foods,
post-exercise, post-poor sleep,
et cetera. Cool. So it's kind of wild to me that physicians don't want patients to have data,
but here I'm hearing something very different. You're saying, yeah, I think people should pay
attention to how they're regulating their blood glucose. The problem with medicine is it moves very
slow, right? So a lot of people are going to want your randomized control trial, another randomized
control trial, maybe a few more than a meta-analysis. And there may be a guideline. Yeah,
understandably. But from a patient perspective, people want data now. And if they can get it,
inexpensively. And by the way, these are they called elective or elected procedures?
Elective, yeah. They're elective if they're elective procedures. So no one's saying you have to
get this done. Yeah. It's an option. Yeah. I don't get it. Yeah. It's unfortunate. It's unfortunate
that there's a reason for it. Obviously do no harm, right? So there's a reason for it. But by the same
token, it does not necessarily do the patient any favors by waiting for something that's,
that is logical and makes sense, right?
And there's enough evidence for this sequence of events, if you will,
from metabolic illness all the way back to Syndrome Max in the 80s, right?
We know there's this constellation of things.
And we also know that if you don't act early,
you're much less likely to have a good treatment effect.
If you start treating someone once they have diabetes,
it's much harder to get them back to healthy and normal.
They've already lost beta cell mass.
Or peripheral, I mean, they could have loss of their fingertips and toes,
or sensation, excuse me, their fingertips and toes.
And now, before, I mean, we might not have had access to things.
we had access to fasting insulin, right? But think about this. So say you don't get the CGM and do
fasting insulin, right? And the fasting insulin is normal. You don't know if step before that is a
problem and they're going to have problems with fasting insulin. Or if it's abnormal, you need the CGM
to learn how to eat, right? Because that fasting insulin's high for a reason. You're spiking your
insulin or you got to figure out why you're spiking it, right? So then you go back to the CGM and you learn
and I don't have any stock in a CGM company either. You got to learn how to eat to not spike your
in that case. Now, if you're taking a bunch of, you know, saturated fat, that's not great either.
You can't be on super high saturated fat with an April B through the roof, but, you know, either
way, it's not good, right? So most of the time in Western countries, it's the glucose and
insulin that are the problem. And it's the very beginning of it. So why not learn about yourself?
Take some responsibility, right? And learn and prevent these diseases from going on. And I do hope
physicians are more open to kind of encourage this as well, where we start acting earlier.
It's going to be better for the, you know, for the population in general.
Because I could see why physicians would be very reluctant towards self-directed interventions.
I get it.
But here we're just talking about getting data.
And it's voluntary.
The costs are coming down.
And as you point out, having data early is better than having data late when it comes to physician-guided interventions.
So what I've heard in this regard is, you know, in conversations is, well, the problem
is a patient's going to then figure out
they can eat junk food,
like something that's really bad for them,
you know, some greasy, fatty thing
that's unhealthy for them,
going to put their, you know,
they'll be through the roof,
and they'll think it's okay
because it's not showing up on their CGM.
I think it's not giving the patients enough credit
because generally if you're getting to CGM,
you probably are trying to do the right thing.
So I think it's how will they use the information?
Could they accidentally not be informed enough
to use that information appropriately
and could they do the wrong thing?
But again, I think more information is better, almost in all circumstances, with diagnostic stuff.
Now, I agree with this MRI thing being concerning because you might have a lot of little lumps and bumps there that now you're doing diagnostic studies for it that could increase risk, right?
So the diagnostic studies can increase risk and also can be a burden on the health care system.
But more information, I still think more information is better.
We just have to find better ways of doing the follow-up formatory diagnosis.
There might be other ways we can do it looking for metabolic activity of tissue like PET scans or whatever.
or doing other things rather than a biopsy
and something that would increase risk.
Okay, well, thank you.
I wasn't asking you to take my side in the argument.
Since you threw out CGMs first,
I just took that as an opportunity.
I think I won't name names,
but let me put this way.
Whenever I get that sort of pushback,
I'll go to people I know in the field,
and I'll say, I'm not looking for confirmation
that I was right and they were wrong.
So tell me what I'm hearing here.
What's the layer beneath what I'm seeing?
and almost inevitably they say the same thing, give it 20 months, this will be standard.
And that happened with CGMs.
No one balks the idea of a CGM.
Yeah, you want to put that thing on, you can afford it.
You want to get some data.
Like most physicians I know now are comfy, but at the beginning it was like all the pushback
in the world.
That's really wild.
So wait 20 months and this will be a non-issue is what I keep hearing again and again.
Well, even when you have procedures that have gone through rigorous, you know, evaluations
and they have FDA approval and, you know, they're ready.
You have so many people that are reluctant to send patients for them, right?
Why is that?
I think it's in the culture.
Are they afraid they'll do it wrong?
It's like a new skill to learn?
That could be.
So some of these procedures, you can't learn them on a weekend course.
You know, you have to have to have any year or longer learning some of these things.
And so for a physician who wants to add something to their practice,
they're not going to dedicate a year to it.
they might do a weekend course and realize it's too hard, and then they don't adopt it.
The problem is the people that do adopt it and they're not ready.
So then doctors are referring go, huh, this procedure's been around for six months or a year.
It really has great data in clinical trials, but does the guy down the street know how to do this after doing a weekend course?
And so they're reluctant maybe for that reason.
So let's give it time.
Wait until it's maybe insurance not covering it yet, right?
Wait to see if the insurance companies think it's a good idea.
Then maybe we'll start sending patients.
So it just, it moves slowly.
Yeah.
Well, I don't want to, you know, hover on this too long,
but I have a friend who's really into cars.
And he told me that in the mechanic and automobile community is similar thing.
Like, as things became more and more computerized,
there was a lot of pushback because it makes it hard for auto shops to do their work.
You know, it changes, the field changes.
And you need more tools.
Sometimes those tools are expensive.
You need training.
And people like to hold on to the way they were trained.
This is absolutely true of most every field.
Adapt or die or your patients die there.
That's why, you know, if you don't adapt, your patients will die.
I have to imagine that there are good surgeons.
They're mediocre surgeons and they're exceptional surgeons.
Are there places where you've brought in devices or machines that could offset the mediocre
and lousy surgeons or surgeons by day, a little sleep deprivation?
So I'm not just saying like bad surgeon, good surgeon.
So what has come into the field that's allowed you to do your work more effectively
and others to do the work more effectively?
Most devices we see are kind of incremental improvements, a little bit of better wire,
you know, devices a little more ergonomic.
But what I see kind of happening more recently is AI starting to have an impact where it can
actually coach you through procedures.
How does that work?
Do you have an earbud in or something?
On the screen itself.
It's like a heads up display.
And on that heads up display, it will actually give you information.
So you're not just seeing the images you're working on.
It can actually highlight certain structures you want to work on.
It can actually point to something where you want to put your stitch, right?
And it can count the stitches as you're placing them and tell you if they're close enough together.
It can change the shape of the stomach as you're working on the stomach to let you know if you're having a good treatment effect.
This is something that we never could have done before.
It's in real time.
Real time, yeah.
Which is phenomenal right now.
It's not widely available yet.
This is in research centers, right?
But you actually can see this happening in real time.
And it's phenomenal.
So you see that and more and more is happening in different surgical procedures
where AI is kind of real-time coaching you and in endoscopic procedures.
Additionally, there's the hope for robotics to help as well.
And we've done a lot of research in our lab on robotics
and how it can take trainees that are learning a new, very complicated procedure
and shorten their learning curve dramatically.
And we'll randomize the trainees and have them do the traditional way.
like this is usually resecting a tumor from the colon, leaving the colon in place.
That's a very complicated procedure or from somewhere else in the stomach or whatnot.
And the fellows will learn they'll spend a couple of weeks training in both modalities.
And then they will struggle horribly with the original way.
That's why it takes two or three years to learn how to do it.
They'll stand on the robot and be almost good as an expert.
So robotics are very interesting.
And now in the future we haven't done it yet.
But when you start layering on AI and automation with the robots, now you may have a big win.
And we've seen this before with different surgeries as well, with intuitive surgicals robots when they first came out years ago.
It democratized the field.
It took mediocre surgeon and it made them excellent.
And the excellent surgeons were still excellent, right?
But it really helped the ones that were struggling.
How do the excellent surgeons feel about it in keeping with our previous discussion?
Seriously, like, is it, is it part of it's like, is it like athletics?
Like people want to be, they want a hierarchy of performance for themselves.
they don't want patients dying at the hands of poor surgeons.
But I would think that if do no harm is really the true central cord of medicine,
then every person in a field would want more people being healed,
independent of their own stature as a physician.
Yeah.
I think they're supportive of the robots,
but I think that a truly exceptional surgeon is probably just going to be better without the robot.
and the robot, it's just, it's going to make your worse.
How do I know if I'm getting a truly exceptional surgeon?
That's a good question.
Understanding, am I getting the best physician for this thing is really hard to determine?
Yeah, that's common across all medicine, right?
And even as I'm looking for a doctor for something, it's hard to find the right person.
I'm in a massive medical center, you know, and have great connectivity.
But knowing who truly is the best is complicated, right?
So some things we rely on are volume, case volume and historic case volume.
So how many procedures do they do?
That's important.
And probably more important, how many have they done over the course of their career?
So if you're having your procedure, you want to know volume because volume is important.
It's not the whole story, but volume is important, right?
And we need in medicine, honestly, to move more towards objective metrics.
And this is one thing AI can do for us, right?
I'm involved in a healthcare delivery platform.
It's called Everself.
And what it does basically is the doctors that are,
doing these procedures are held to a certain metric, right? So it starts with just collecting
the data, you know, finding out what their weight loss outcomes are, finding out how many stitches
they place per procedure, looking at their procedure time, looking at their complications. So you're
grading all that. But the next layer is putting this AI on top of it, where the AI, not only can it
coach you through the procedure, it can give you a grade at the end of the procedure. It can be very specific,
and it can tell you, you placed this many full thickness sutures versus this many. You want 100% of your
it's just to be full thickness.
Maybe the doctor is putting in 70
their full thickness.
That's not good.
This number of sutures
were close enough together
somewhere too far apart.
It will give you a grade.
This is the pattern used.
This is the volume of stomach
you reduced to buy.
It'll give you a grade
at the end of that procedure.
And that grade is incredibly important.
And then the idea next would be
is to share that data
so people know kind of what grade you're getting.
It'd be great to share that
with governing bodies
to do credentialing.
So people that are truly underperforming,
maybe they should get a refresher, right?
It would be nice for patients to be able to select who they're going to go to based on objective metrics.
And AI can do this probably across the board with other things as well.
So that's part of it.
We've seen this a little bit with ADR, adenoma detection rates and colonoscopy,
where they used to publish that and they stopped doing it.
So doctors were expected to have a certain number of polyps they'd see per colonoscopy,
and they'd report that.
That was something that was another way.
But then the problem was all the patients wanted to go to one or two doctors,
they had the high ADRs, and their wait times became enormous.
Right?
and then patients couldn't get access to them.
That's a problem as well.
But there should be a reasonable cutoff
where a certain level of expertise is required.
And I think AI, you know, hopefully will help us get there.
I'm excited by what you told me about how AI can provide real-time data
and prospective data about how the stomach will change shape
with the opportunity to make the adjustments as you go,
as opposed to having the patient heal up
have to have to come back in for another surgery.
Years ago, I saw something amazing.
A neuro-ophthalmologist friend allowed me to sit in on something he said, you know,
people forget that surgeons wear microscopes on their eyes, right?
They wear these like optics that allow them to see things bigger, obviously.
But then there are all these new tools that, you know, like a little drop of fluorescein,
a little bit of innocuous liquid that creates a contrast for the surgeon or for the
eye doctor to see what is what and not cut the wrong tissue.
It seems like such an obvious thing, but I was told that for, you know, 100 years,
the same procedure had been done without that.
And so eye surgeons had to essentially guess based on their intuition, their training
of what was tissue to preserve, what was healthy, what was unhealthy tissue.
I mean, these what seemed like kind of simple to us now technologies have improved the margins
of safety, have improved the,
you know, outcomes tremendously.
And so the idea that you would have AI combined with really good microscopes,
either worn on the eyes or you're looking down a microscope, better surgical tools.
To me, it just seems obvious, like yes, yes, and yes.
But a lot of people hear AI, they hear robot and they hear surgery and they go, oh my goodness,
like what if they go to the extreme.
I think with AI, people think it can go rogue, it has a mind of its own.
So I don't want you to give false assurance that that's not going to happen.
But when you sit down to do a procedure and you're getting information from,
AI, where does your trust come from that it's giving you good information as opposed to faulty information?
Yeah. So the AI is trained on thousands and thousands of procedures, right? So more than I've done,
right? So which is good. And so it recognizes patterns. So you have to use your clinical judgment.
And you're not doing, you're not using this AI kind of blindly. You're using your clinical judgment,
and you might ignore it sometimes. You don't have to follow it. Now, if it becomes the time where you're
automating operative robots using AI.
Like suture placement, for instance.
Yeah, that'd be different.
If it's doing it itself, that's different.
But for this, where it's just suggesting where you put a stitch
or showing you were a blood vessel is, I think it's a huge advantage.
So we do these procedures that are very technical, where you tunnel, you know,
you're creating a potential space in the esophagus.
So back to that earlier person that couldn't swallow, right?
They had trouble swallowing because they had acalasia.
So the procedure, how we do that is we go on through the mouth, we inject a little fluid
under the mucosal layer to lift it with a pocket of flu.
We make an incision in that, and we take the endoscope and we slide under, in between
the mucosal layer and the muscle.
We dig all the way down to the bottom of the asophagus, and then we cut through the muscle.
When you're doing it, there's vessels in there, and they're hard to see.
AI can actually see those vessels because it's got your pattern recognition and color them
for you so you don't hit the vessels as you go, reducing your chances of hitting a blood
vessel, right?
Beautiful.
So that's just one example of something that's a very complicated procedure, and you're
certain, you're making certain aspects of it a little easier.
We think that physicians are looking at the equivalent of a medical textbook with coloring,
but it's not. It's black and white and gray and beige, and there are certain structures that
look different. They're contrasty and look different. So now with endoscapic ultrasound,
it's not even color. It's all gray. So when we're doing endoscopic ultrasound, we talked about
looking for a pancreas tumor. It's all gray. It's just different shades of gray. There's no
coloring to it. Now you can, you can turn on a button.
see if there's blood flow, right? But it's all gray. So years ago, in my lab, I was trying to use
image registration so I could take a CT PET scan and I could link it to the angle of the probe,
and you could see a CT scan fluctuating in the probe of the ultrasound and lay the ultrasound over it.
And then you get an idea of the tumor you're looking for, the lesion you want a biopsy or whatever.
It was too hard to do. It would take three hours of preparation to be able to set that up.
You could never scale that. Now with AI, other groups are doing similar work now.
It's almost automated.
So I'm hoping that we'll see image registration with these very advanced imaging tools that are being used help us with diagnosis and hopefully even with therapy too.
They're doing something now called hyperspectral imaging and they're doing it in surgery as well.
There's several groups doing this.
One group in Lund is doing phenomenal work.
They're using all these narrow bands of wavelengths, just tons of wavelengths.
And they're finding out that each tissue actually has a fingerprint.
So you can actually use this hyper spectral imaging to fingerprint tissue.
and you can actually see margins of tumors with this.
And it's very interesting without giving a dye anymore.
So you still want to give it for lymph node testing or whatever.
Sometimes they'll inject something into a tumor
and then look to see if it gets into lymph nodes.
That's different.
But this is for actually looking for margins or for lesions.
And it's just with light technology, it's amazing.
So that's what LEDs are doing, right,
in different kind of cameras, right?
So instead of CCD chips, you have CMOS, right?
And so with newer technology, even though it seems incremental,
with LEDs being able to fluctuate,
kind of fluctuate the wavelengths of light
and your chips being able to read it faster and better,
we're able to make better diagnosis.
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I feel like one structure that we could,
conceptual structure that we could put on things.
I'm realizing today is medicine has a couple of different ways
to determine what's going on for better or worse.
One is the stuff that comes out of the body.
And we do this with babies, like, oh, their mucus looks really green.
We do this. Maybe I have a sinus infection. It comes out of the body or with bowel movements or we're not so good at gauging the color of blood kind of things.
Then we have the surface of the body, pallor of skin, how the eyes look. Do we see, you know, stuff that we don't normally see?
And then, you know, the age old story where it was like phrenology, which was like, you know, complete bogus.
But it was like, oh, can we figure things out from the way things are changing at the level of the shape of the skull is complete nonsense, right?
But as we go in, we're still trying to do this, right?
X-rays let us see, you know, fractures and things with, you know, you don't want too much x-ray
radiation.
But the goal has always been to get more information with less invasive procedures.
And I feel like, now we have blood tests, so you can pull stuff out of the body.
And it's kind of wild that in 2026, this is where we're at.
I think it's super exciting, but, you know, hasn't, I don't mean, a 15.
years ago, the tools were really crude. But I think they might still be kind of crude now
compared to where they are in 10 years. Are you hopeful that in 10 years, you can go into a tube
20 minutes later walk out and we might be able to scan with good enough resolution? Do you have any
tumors anywhere? Compare that to a blood test and you're good to go? I don't know if we'll get there.
I'm hoping, right, because we are seeing capsule technology improve. We're seeing imaging technology
improve and blood tests improve and there's all sorts of things you can do with kind of genotyping
things and whatnot. I think that's exciting. But where we are seeing improvements, I think,
are in learning about physiology and how things work and then being able to do a targeted
approach. So you're not just doing that with drugs where GLP1 is. Actually, GLP1 isn't really
targeting a deficit necessarily. There's different ways you can treat things. You can either
find a pathology and treat the pathology, right? Like cutting a tumor out. It's kind of like
treating a pathology. It's not supposed to be there. Or you can take normal,
physiological and augment it, right? And that's what they're doing with GLP1. There's not like some
horrible GLP1 deficit this is totally clear. Right, they're ramping things up thousandfold over
what they would be, even the healthiest person. Yeah. Most people don't know that, by the way.
They think that like the GLPs are bumping things up like two or fourfold. It's like no,
never before in human history, at least to my knowledge, have people walked around with this
level of GLP1 circulating in their blood. Yeah. You're supposed to have a little tiny amount that's
produced in response to a meal, right? And then it goes away, you know, and it's kind of like,
Like, you know, relatively speaking, not, this is super physiologic doses.
You're bathing the area of post-trema in this chemical, right?
And it's like, it's not functioning like in a physiologic way.
Our GLP1 is secret, it's nutrient responsive.
It's secreted from L cells, right?
And then it does its job.
It goes to the pancreas, says produce insulin.
It goes to the stomach.
It says slow emptying.
It goes to the brain.
It says you're full.
It does things like that, right?
And it does in response to a meal, and it's in much smaller doses, like you've said.
So, medicines have done this for a while where they kind of,
of see something as a mechanism they can augment or they see a pathology they can treat.
But that augmenting is very interesting. And surgery for a long time wasn't doing that. They were
just thinking, oh, I'm going to make you malabsorbed calories. I'm going to make this tight so
you feel full quicker. But now they're understanding mechanisms, and there's some great research
that's gone into this, we can actually develop targeted therapies. And I think that's what's
very excited. It's more so even than a new device. It's being able to do targeted therapies
and get better outcomes with that.
And where I started with this is in fellowship.
So I saw a patient with a gastric bypass.
So they have a gastric bypass anatomy.
They have a small gastric pouch,
like I mentioned in the bigger stomach.
And a patient was sent to me that had bad reflux.
They had weight gain after the gastric bypass,
and their diabetes came back.
Their diabetes was gone, but now it would come back.
So the surgeon basically said,
hey, take a look at this patient,
See if they have an ulcer, what's going on.
They're having all this pain and heartburn, find out what's going on.
So it looked, and there's this little hole between the pouch, the new stomach and the old stomach.
And I thought, well, maybe the acid's produced in the other side.
Maybe the acid's coming up through that fistula.
And we had a new device.
It was a suturing device that you could actually put in through the mouth and put stitches in.
I thought maybe the suturing device I could use it to close that hole, right?
So I waited until I was on faculty a few months.
And I talked to the surgeon, he was supportive.
So, again, this is kind of that thing.
Are you inventing something?
The procedure is FDA approved.
The device is FDA approved.
The procedure is not.
No one's closed to a fischita with us.
But we talked to the patient.
You know, we told them we weren't sure if it was going to help or not.
We tried to do it.
They were willing.
And we did the procedure.
Close the fistula.
And so I was hoping the reflux would stop.
The reflux stopped.
But the person started losing weight and their diabetes went away almost immediately again.
And that was for me, and this is 2003, 2003, I was like, flabbergasted.
You know, was it a coincidence?
What the heck was that?
Why is closing that little hole so important, right?
So that's what got me involved in understanding these gut hormones, honestly,
because we were able to now, if I learned about the gut hormones
and why we saw this treatment effect,
we could potentially manipulate them to get better results, right?
So that was the beginning of it for me.
And there was shortly after that,
one of my friends and colleagues actually did some animal work.
He had a rat model.
They're called GK rats.
And they're rats with diabetes that don't have obesity.
Okay.
And they were a great model for this because you didn't want weight loss to confound things.
And so he did two surgeries of foregut and hindgut method, right?
So the one surgery, he basically excluded the four gut.
So he excluded the duodenum and the very first part of the dejunum, okay?
And he did a little bypass surgery there.
So no food could get into duoden.
We went from the stomach and it went to the very first part of the deum.
duodenum and then boom down into the jejunum, not touching that foregut, not touching that bowel.
The other one, he did a gastro-juulinestimosis, so stomach, too small bowel, but he left the rest
open. So food could go either way. He could go into the duodenum like it normally would
in the foregut, or go to the hind gut, dropping down into the distal bowel.
What he found was, these were diabetic rats. He did glucose tolerance tests on them,
and he found that the ones that had the exclusion, their diabetes got much, much better.
the ones that didn't have exclusion didn't get better at all,
even though you were dumping stuff into the distal gut.
Very interesting.
So he thought there was something very important about for gut exclusion,
and he hypothesized there was something called an anti-incretin in that bowel
that would maybe protect against hypoglycemia,
but there was something in there that if you exclude it,
you got a better treatment effect.
So that was, you know, my fish flow work,
and then his very interesting animal work got us going down that path.
And it kind of fed well into something that actually,
was done in the 1980s that was from a continuation of that work
that Sherlock had done looking at Incretins,
and it was a famous publication by NOC.
And what he did is he looked at the same study
that Sherlock did in London,
where they were giving glucose to look at the insulin response.
But he did it in diabetics,
and he did it in a normal population,
normal population, the normal population had that exact same incritin response
where you gave a certain amount of glucose intravenously,
little spike, same amount.
of glucose orally, big spike.
Diabetics didn't do that.
And they had already taught it maybe to CHLP1
and maybe in the bowel.
So very exciting.
So maybe by excluding this foregut,
you're playing a role,
you're having something to do with that
or maybe not.
So that was the beginning
of trying to understand
the procedures for me.
And with that,
I then did another study
where I closed those fistulas,
right?
And where we closed the fissulas,
60% of people
had resolution in their diabetes.
If we didn't,
and closed it, no one got resolution of diabetes.
So, okay, that's a good thing.
So we learned there's some important element to foregut exclusion.
Then there's various device companies that start getting involved in the space
because there's this information out there that excluding the foregut might be important.
And a company comes up with the idea of putting a liner in endoscopically.
So it's like a little sleeve.
You anchor it.
It has a little stent that springs open.
You anchor it in the first part of the small bottle.
It covers the duodenum, protects it.
It's the implant.
It has to come out, right?
at some point in time, maybe a year later.
But it was very interesting because I was part of those clinical trials.
And we found you had a one point in diabetics.
You have a one point drop in A1C.
That's fantastic.
Can you lose weight about 7% total weight loss?
So clearly it's doing something and it's important.
The problem is it's an implant.
It's got to come out, but it's exploiting this mechanism potentially.
So you're essentially cinching down this compartment of the gut or you're creating more compartmentalization
along the tube?
You have the duodenum, right?
And then there's a liner
that you place in it.
So this is like a stent,
so it springs open
and holds its form inside it.
And then it's a sleeve
that kind of goes down.
So you can still get all your secretions
that go on the outside
of the sleeve and track down.
But it's right after the pylorus,
the outlet of the stomach,
so all the food is going in the tube.
So the food is inside the sleeve,
the digestive enzymes are outside the sleeve.
And they don't mix for a few feet down.
So that's very interesting.
And it worked.
The problem is,
It's still in clinical trials, been around for a while,
but it's an implant.
So it's just like taking a drug eventually that has to come out.
But there was a brilliant idea that came up
one of my colleagues at the Brigham, and he's a cardiologist, right?
And he knew I was trying to do something that was,
so I traveled to Brazil, right?
And I was doing surgery, endoscopic procedures in Brazil,
and there was a doctor in a room nearby,
and that doctor was doing a very novel experimental surgery
called Iliol interposition.
And what he was doing, and this was a lean diabetic,
so they weren't suffering from obesity.
They had type 2 diabetes.
And he was taking the small bowel,
the distal small bowel,
kind of the opposite,
a little bit of what Rabino had done.
Took the distal small bowel,
and he moved it up,
kept it on his mezzantharian blood flow.
He resected it out of the distal small bowel
near the colon,
and he moved it up,
and he put it near the duoden.
And his idea was,
you know, the concept was that GLP1 was denser
in that part of the bowel,
and it was also denser, you know, down lower.
And if you moved it up high,
you'd get a more immediate,
an effect from GLP1.
So you'd hit GIP and then immediately GLP 1
and you'd have this amazing effect.
And he did. It was incredible, right?
These people, their diabetes went away
and they didn't lose any weight
because he didn't actually have any blind areas.
The food, he didn't change anything.
There's no restriction.
There's no absorptive change.
You just move that part of the bowel up.
That was phenomenal.
So I was trying to do that endoscopically
by harvesting tissue from the Iliam
via colonoscopy,
creating stem cells
and then injecting it in the foregun,
and getting him to take
and hopefully getting an ink or an effect
that wasn't successful.
But one of my colleagues is a cardiologist
and he actually said,
why don't you just burn the duodenum,
you know, ablate the duodenum.
There's different ways you could do it.
You can do it with steam, hot water, et cetera.
Just ablate it and see if you can reset those stem cells
because the duodenum is sick, okay?
And this is very interesting research
to prove the duodenum is sick we should probably talk about.
But, you know, the duodenum is sick.
If you can reset the duodenum, it might work.
And I said, why don't you doodeneum?
it and he did and he started a company and it's been great. So, and that that is something that we're
studying more and more of. And now you don't have a sleeve in place, you don't reroute any bowel,
you just ablate the duodenum, okay? And what happens is your A1C drops by over a point.
You don't lose a lot of weight by just ablating the duoden right, but your A1c corrects and
that's a potential treatment for diabetes. They've also done some studies. I don't believe these
are published yet, but I think that it's showing that when someone comes off a GLP1,
if you use this treatment, it keeps them from regaining their weight. So you can take a GLP
and then have your duidium kind of reset, if you will.
The stem cells come back,
and you maybe heal those tight junction
and other problems that you're having.
So it regenerates.
It regenerates.
Yeah, it comes back more healthy and more normal.
And the rationale for that comes from a lot of very good research, right?
So there were studies that showed in mice
that if you feed mice, you overfeed them, an overfeeding study,
and you have a control group you don't overfeed,
when you take them to necropsy
and you look at their bowels.
The bowels and the overfed mice are longer.
They're heavier.
The villi are longer.
They've adapted.
They've adapted.
It's upregulated the ability to absorb calories.
And then these studies have been repeated in humans
where people getting gastric bypass,
they're already going to be doing surgery on them,
so they resect part of their small bowel.
And someone getting cancer surgery
is a control patient that resect their small bowel
and they look at the differences.
And there's extreme differences, right?
The villar longer is thicker.
There's more inflammation in people with obesity or type 2 diabetes, a lot more inflammatory
cells.
The natural killer cells are up eightfold.
Macrophage is up 1.5 fold in these studies, right?
So you have more inflammatory activity going on in these patients.
The only thing that's different is really obesity, right?
Additionally, if you look at those patients and you do immunostating for like zonula occlude
and like tight junction proteins, scaffolding proteins and proteins, you'll see that those
are much lower.
and they're disorganized.
Two questions.
So if I understand correctly, if people overeat, the vil, I like basically little finger-like
protrusions inside the gut that can sense things but also collect nutrients, right?
They're growing to adapt to the elevated levels of calories.
And so then essentially you've changed the digestive tract in a way that, yes, they can make
more use of those calories, but that also creates a more pro-inflammatory environment.
Do I have that?
That's absolutely correct.
And also because they're changing in configuration
and you're using that energy,
the cells are using energy to do other things,
your tight junctions are deprioritized.
Okay, right.
So then there's this secondary or parallel effect
of the tight junctions.
We haven't really talked too much about tight junctions here,
but I'm not by no means an expert,
but I'm familiar with them from the blood brain barrier.
Like cells need to stick together.
And some tissues, you want things sticky but not too sticky.
Some tissues you want to really,
sticky. And my understanding is that the tight, as the name suggests, tight junctions, the goal is to
keep stuff inside the gut, not let bacteria out. Is leaky gut a real thing? Or is leaky gut?
Because I've heard it sort of like chronic fatigue syndrome that a lot of the standard medical
community, they hear a chronic fatigue syndrome. And they go, okay, that was made up by people in the
Bay Area. I'm only half kidding here. I'm from the Bay Area. But that's how a lot of physicians react
online to this phrase leaky gut. But we've had a fair number of people come on here and talk
about tight junction deficits, bacteria getting out of the gut, this isn't good for the body,
inflammation going up, bacteria circulating places they shouldn't be is not good. So is leaky gut
real? Well, increased gut permeability is 100% real. But that's it. I mean, I'm not pushing back on
that sounds like a different language for leaky gut. Yeah. So it is. So what?
So why is this phrase leaky gut so, no pun intended, so irritating to the medical community?
So I think if you say leaky gut, it could have other connotations that you don't know what it means to the person.
Someone might think that leaky gut means that is responsible for a certain constellation of symptoms potentially.
Like irritable bowel or Alzheimer's.
Like they can take a leap.
Yeah, because you see in lay literature, right, in other literature, they say leaky gut is associated with XYZ, right?
And it's not clear that that phrase, leaky gut, is really talking the same thing I'm talking about.
Now, is leaky gut the same thing?
Yes, I'm still talking about leaky gut in a sense, right?
But the danger is calling something leaky gut when people already might have a definition for leaky gut in mind.
Like it's responsible for all these other problems, right?
But let me tell you what leaky gut is to me or what increased gut permeability is.
And I'll tell you that it's very real.
And it is actually tied to metabolic illness.
we can start with a study that used small bowel biopsies, right?
And this was recent, just last year.
And they did small bowel biopsies, and then they actually were able to, from the stem cells, grow little organoids, right?
And then organoids are like three-dimensional cultures that they behave as they should.
And as the cells kind of populate out of there, they take their normal form and structure.
And they had a control group, and they had a group with mass, obesity and mash, right?
which is a metabolically associated steatio hepatitis.
So these two groups, they looked at the organoids
and they found that the tight junctions
were far less well developed
and more disorganizing the mash patients
compared to the control patients.
Additionally, they did transcriptomics on it
and they found that they weren't even producing
the proteins.
They weren't even making the RNA
to produce the tight junction proteins.
So clearly at transcriptional level,
they were down-regulating the tight-junction proteins.
So with the immunohistochemical staining and then transcriptomics,
they found that the tight junctions just weren't functioning as they should in people in mash.
So if you don't have tight junctions, it stands to reason you might have quote-unquote leaky gut.
So another group actually looked at something similar, right?
They had the same population, patients with mash, and they actually studied,
there's different tests you can do to look for a leaky gut.
You can give something that's very small,
but it should not get through those tight junctions, right?
There's different tracers you can use.
51 chromium, meat ETA is one that they use.
And that's one that was used in this study.
And so they give it, it's not supposed to get into the bloodstream.
In patients with mash zipped right in, much higher levels than there should be.
And in patients without mash, it wasn't getting in.
Additionally, in patients with celiac disease that was treated, it wasn't getting in.
But in patients with fatty liver disease, it was getting in.
And it's probably playing a role, right?
So if you think about it, the gut, the first place it goes is the liver.
There's a portal circulation, and the gut goes to that portal circulation.
Everything that goes through there has to stop by the liver, with the exception of fat.
Fat gets into the lymphatics and dumps out of the thoracic duct.
It doesn't have to actually go to the liver.
So if you have bacterial products, LPS, lipopolysaccharide, it's a portion of gram-negative
cell membrane, right?
If that gets through these tight junctions, it causes all sorts of problems.
It is going directly.
They're inflammatory.
They interact with Tollate Receptive 4, and, you know, that goes, you know, starts all sorts of
inflammatory cascades.
So it goes via NFCAPAB signaling, et cetera.
That can be problematic.
Another group proved that was problematic, but actually, this was done at Duke.
They actually took LPS and they injected it into healthy people.
And they found that their inflammatory markers went through the roof and they found all sorts
of other problems out, including they did clamp studies in these patients.
they found it induced insulin resistance.
So, yes, I think leaky gut can be involved in all this stuff.
And that gets back to our very early discussion about fiber
and about fermented beverages and how important it is to keep your microbiome healthy.
Because that microbiome and that buterate is critical to producing healthy enterocytes.
That's first and foremost, right, as well as healthy tight junctions, a healthy mucin layer.
And actually, it also works together, buterate and the microbes and the byproducts of the microbes.
work with your immune system, your innate immune system.
It tells them what you recognize and what not you recognize,
which is just as important because your bowel is full of bacteria, right?
So absolutely very important.
And you do see where this increased gut permeability is associated,
hardcore, good science evidence with real illness.
So absolutely is a problem.
It's just I don't want to blame it for everything.
Right, right.
I get it.
I think that the, you know, earlier we were talking about CGMs,
And they're sort of a kind of a common theme here,
which is the general public now,
because of online health information, good and bad,
is starting to create their own nomenclature.
And I could see why that would scare physicians.
But I think that a more symbiotic relationship
between like the public's knowledge of their own data,
questions about like maybe it's leaky gut, you know,
and being able to approach their physician
with these things in mind
and still acknowledging that the physician
as the physician, right?
Could be really helpful.
I have a couple of questions that feel free to pass
if these aren't meaningful.
I get a lot of questions about artificial sweeteners
and negative effects on the gut microbiome.
It seems like they're marginal to zero effect
on insulin and resting blood glucose
from artificial slash low-calorie sweeteners
in a way that would lead people to say these are bad.
There's no reason to run out and use them
if you don't want to.
But the weight loss data say,
people who drink diet sodas instead of water actually lose more weight.
I've seen those data.
This is not an incentive for people to start drinking diet sodas.
It sounds like, you know, saccharine and splendor probably worse for you than stevia and
aspartame.
Like, where are you at with these things in terms of their potential negative effects?
And if you know of any positive effects, I'd be curious.
I think they're better than high fructose corn syrup for sure, right?
I mean, that I think we should be treating like alcohol, right?
Yeah.
I think fructose and fruit's fine.
I'm not worried about fructose and fruit.
Fruit dose in general, because it comes with a matrix around it.
It's not like a rush of a fructose into your liver.
But fructose can only be processed by the liver, right?
And so it's busy as it is.
Now it's got to take the burden on of, you know, a beverage, which is absorbed very rapidly,
goes directly to the liver and it has to be dealt with.
And, you know, it gets trapped in the liver very quickly,
and it's the only place I can really process it.
So I think that fructose is something to watch.
Again, not if it's in fruit.
Even in juices, it can be kind of, juices are processed fruit, right?
So it's similar.
Minimally processed stuff is better.
I think the problem with sweeteners, artificial sweeteners,
is they come in foods that are highly processed as it is, right?
And you can't separate the two.
I think that's for a while why people were so down on polyunsaturated fats, right?
Because they'll come in a bar full of a bunch of other stuff that's not good for you.
So, well, I guess the polyunsaturated fat is also bad for you in some way, right?
That was like a more recent phenomenon.
Well, no, the food that it's in is bad for you, but the polyunsaturated fat has been shown to reduce all the out and has health benefits.
We're essentially translation where people like seed oils, basically.
Yeah, seed oils.
Yeah, there's some still debate about whether or not the processing of them can make them worse.
But yeah, it's hard to, well, no, do you see this recent avocado oils thing out of UC Davis?
This is wild.
UC Davis went and analyzed, like, all these avocado oil-containing products are
simply, like, healthier.
You know, how much avocado oil these products contain?
Zero.
Oh, no.
And the pushback has been that maybe they're looking at the wrong metabolites of avocados.
I don't know how this is going to play out.
But if it, this could potentially do more damage to the, I just called the non-olive oil
community, right?
Because, I mean, my mind, like the safest thing is.
just use olive oil.
A little bit of butter here and there.
Right?
Like, okay, no one debates olive oil.
It's kind of wild.
No one debates, everyone knows it's good for you.
No one thinks it's bad for you.
But this seed oil large thing, they go back and forth.
And it's kind of like professional wrestling.
I feel like it's all kind of made up for entertainment, but both sides are really adamant.
And it's just kind of stupid.
Olive oil butter, right?
Or you're the physician.
Tell me, am I thinking about this wrong?
I do the same.
No, olive oil is the best, obviously, and then small amounts of butter.
I don't think, you know, large, bad and small amounts.
So I think the problem is overall amount of saturated fat, right?
But polyunsaturated fats have a lot of proof they're very safe.
Where you get into the problem is if you have a big container of it,
a huge container, they're not going to use it a reasonable amount of time
and sitting in the sun or something and you get oxidizes, you know, it oxidizes.
That's a problem.
You don't want to take it an oxidized oil into your body, right?
Or you're deep frying with it and you're frying over and over again to start generating trans fats.
That's a different story.
But in general, I think, you know, I think they're fine.
And I don't even think you need this omega-3-Omega-6 ratio.
people used to worry about, right?
I think you need a certain minimal amount of omega-3s, right?
You know, if you eat fish once in a while, you're getting all you need.
Do you strive to get, like, some fatty fish in your diet?
I do, yeah.
I love fatty fish.
It's good for you.
Try to do it a couple times a week.
I take Lavaza, a high-dose omega-3 pharmaceutical,
because I don't want the mercury.
It's cleaned of mercury.
I don't know.
My blood markers are where I want them to be.
But I'm curious, what's your read of the data on omega-3s for metabolic health and cardiovascular?
I mean, it's probably better for Alzheimer's, right?
If someone's starting to show signs of Alzheimer's,
I think it's better for, you know, for that, the data.
I think the problem is universally supplementing
is not necessarily the way to go.
You want to find a deficit and then supplement, right?
So even with vitamin D, you know,
most people probably are deficient, so they benefit from it.
But there's no point in really doing it unless you're deficient for most things.
And I think with omega-3s, it's similar.
You want to get your daily allowance, if you will.
I mean, again, if you're a vegetarian, you can do it from algae, the original source,
the fish are just consolidating, right?
So, you know, you don't have to eat the fish, but that or get in some kind of, you know, supplement form.
You heard it here from Chris Tombs, and fish are just consolidated algae.
I'm just kidding, I put those words in your mouth.
I love that.
For all the people who are like, no, you can't get omega-3s from non-animal sources.
I mean, I think you put it beautifully.
I don't like eating fish, so I take the Lavaza.
Yeah.
I don't like, I don't like it.
But I'm not on the East Coast.
You guys tend to have better sea.
food. It's delicious. Yeah, I know, I got to get out, but it's too cold out there. Then you
have to take vitamin D out here. You don't, I'm just kidding. What else do you recommend your
patients as they start to move away from obesity? So obviously fiber, some fermented foods,
it sounds like resistance training might be in the list, given that they're at risk of
becoming thin but more jelly tissue than lean,
lean mass, do you prescribe resistance training? Absolutely. So all my patients, I ask them to be
resistance training, even, you know, before they start losing weight, before they go through a
procedure. It's essential. Zone 2 cardio is great, right? It's good for fat burning. You're in that
zone where you're burning fat and, you know, not carbs as much, right? Hit is great. So a high-intensity
interval training is great for mobilizing visceral fat because your visceral fat, we haven't talked a
whole lot about it, but it has beta-adenergic receptors on it. It also has gonadotropic hormone
receptors on it as well. So it's responsive to stress, like acute stress. So it will mobilize when
you're going through the stress of high-intensity interval training. So it'll mobilize. It won't be
burned right away, right? Because you're burning carbs at the time. You're burning your liver glycogen
and your muscle glycogen. You're burning that. But you mobilize the fat at least. And that's kind of
what it's designed for us, why you have some visceral.
fat there. So I
try to have them do those things.
Hit Little Zone 2 and then
resistance training. I think those are the most important things
long term. Do they do it? This is
very interesting. So
I think they try and
depending on how they lost the weight, the term is
if it's effective. So it's
theory of set point, right? Which is
something is very important back to metabolic
health. So
it's not a point necessarily. It's a
defended range if you will, right? So you have this defended
range of what you think your weight's supposed to be.
And that's set by a variety of things.
Leptin is part of it, right?
And your thyroid hormones and whatnot.
And you think you're supposed to be a certain weight.
And then what you do is you do a crash diet.
You lose a bunch of weight.
Like the biggest loser was a great example of this, right?
You lose a bunch of weight.
So now you're fighting several factors, right?
So one factor is your body's smaller, so it burns less weight.
Okay?
So you have to eat less to just maintain the same weight you're at now, this lower weight.
That's a bit of a problem.
You downregulate your gut hormones.
We talked about a bunch of gut hormones.
hormones. You're producing less
GLP1. You're producing
less PYY. You're producing
GIP is here, neither here
than there. A little less CCK.
Your satiety hormones are being produced less. Your grelin
goes through the roof. If you do this with diet and exercise,
your grilling goes through the roof, right?
So that, in addition to the fact that
your muscles become more efficient, I think you become 25%
more efficient in doing a similar task.
They're going to burn less fuel to do the same task. It's amazing.
Right. Your kind of non-exercise
energy expenditure, right? So just kind of daily activity. Your basal malbacrate as well,
they all kind of go down. So you're burning less calories at rest. So we've shown this study,
study after study. So your whole body is fighting you, okay? It wants to go back to that weight,
whatever I thought it was supposed to be at. The biggest loser was a great. There was that
kind of an NIH follow-up study to that, and they found that they were burning 500 fewer calories
per day after that. So, and there's other studies that have shown this as well if you lose weight
that way. So that's why it's so important.
GLP1's helped fight part of that, right?
You're replacing the GLP1 that's,
you're not addressing the Grellin or other things.
So time will tell if we can have
long-term weight loss, but it does,
it does. So Grellon isn't the whole story, right?
So like, with our procedures,
so we're addressing these very targeted with
procedures. And one bridge into that
is the ESG procedure.
So this is the procedure I developed
2012. So you
going through the mouth, someone's sleeping, obviously,
with a little scope, and you fold the stomach on
itself. Now the goal of that was to do two things, you know, that one was to augment the
stretch receptor. So it's a smaller pocket. So when food hits that, the stomach stretches quicker.
And you have the vagal a ferrets now that go up to the no-dose ganglia and then, you know,
NTS and then, you know, boom into the hypothalamic areas.
As you tell the brain, we're full. Yeah, exactly. We're full, right? Stretch, fast, boom.
So when you stretch, you get that signal, boom, and you're full. That's part of it, right? That's
phenomenal. The other part of it is you suppress ghrelin because food stays in the stomach longer,
right? And so it's suppressing ghrelin. So it's doing two different things. Now, when those people
lose weight, they don't have to worry about their ghrelin going up because it's been suppressed. So it's
easier to keep the weight off for 10 years or longer because you're not fighting that part,
you know, of the countermeasures that the body will do to defend this potential, you know,
potential range. We're not doing anything with that necessarily to JLP1 and other another
do dino hormones, but you'll see it actually,
you have ways of dealing with this.
So how do you augment weight loss?
You have all these different targets, right?
So one thing we're doing now is we talked about how grelin resides in the fundus.
Now in addition to that ESG where we tighten the stomach,
someone developed an idea I think they were in Germany
where you can actually ablate those fundal grelin cells
because they live in the mucosal layers.
You can get to them.
So they use argon plasma coagulation.
There's different ways to ablate it.
You just kind of spray this over the fundice and it kills off the grillin producing
cells, they grow back and there's not much of them, right? So now of a sudden you can suppress
grelin as well. So the weight loss goes from about 18% with the SG alone in a top center
goes up to way over 20%, maybe 25% if you start ablating the grelin. Are there drugs that just inhibit
ghrelin? No, not effectively weight. Yeah. So and then you add to it, right? So now if you've
delayed gastric emptying, your CCK is not spiking as much as it was, et cetera. So but you're not
getting, which is a subtle countermeasure potentially, right? It will still spike, but GL
P1 is an issue. So now what if you combine that with a small bowel procedure, right?
And there are different small bowel procedures that we've come up with using magnetic
anastomosis when we published about 10 years ago. We did it in the Czech Republic.
We used endoscopes. It was a hard way to do it. We went from below a colonoscopy, my partner
did that. I went from above, it released these two magnets. And we connected the jujuum,
the first part of the gym, to the lower part of the ilium. We should probably tell people
what anastomosis is basically when you connect two tubes.
Exactly. Is that right? Yeah. You're basically just so you're basically like
ligating a tube.
Right now here we're using
more nomenclature.
You're bridging two tubes.
Bridging them, right, yeah.
And they did it originally with sutures.
You cut a hole and you suture the tubes together.
Yeah.
And then they did staplers.
And staplers, they do it.
But they're big and bulking in a harder position.
So our lab developed magnets, right?
And these are ring magnets.
So they come out, their magnets
encased in nitinol
so they can take a certain shape.
So you put them through a tube,
in this case, it's an endoscope.
You can put them through a laparoscope
or whatever else you want to put it through.
And they come out and they form a ring, right?
So we went from the top endoscope.
We formed a ring in the junum in the bottom.
We formed one of the Ilium way downstream.
And then we had an anastomosis that would allow the food directly pass there.
And what we found is you get these big spikes in GLP1.
So now what people are doing, I'm conflicted and can't do this part of the procedure.
But what they're doing is they're doing that anastomosis and they're doing suturing procedure endoscopically.
And together, you're really replicating a full gastric bypass.
You're having a GLP1 hindgut spikes.
you're getting that sense of restriction
and the vaguely afferrant signaling,
you're getting, you know, grelin to be suppressed
and you're getting really amazing weight loss.
So what we can do now is take a procedure
that was really big.
It started off as a big open procedure
to add certain risks to it.
We didn't know how it was working
and it did a bunch of different things
and we're targeting different aspects of it.
And the goal moving forward
is to even be more precise
and find out what someone's going to be more responsive to
and then just do the least you need to do.
Maybe they just have grelin that's driving them
just to plate the grelin, right?
maybe they need something more.
And people are actively studying that.
They're studying the phenotyping of obesity.
It's quite exciting.
Sensing another theme here, this procedure that you co-developed or developed?
Which one?
This bridging of...
So it was my lab.
Yeah.
So, yeah.
It's my lab.
I'm the PI, but I have a whole team, obviously, yeah.
Yeah.
So it's increasing GLP, but I'm guessing it's not increasing it thousands-fold, like a
GLP drug would. It's got some other positive consequences that help cure the obesity. I'm kind of
sensing a theme here, right? Like we have these drugs like Ozympic, Mungaro, et cetera, that blasted
GLP's through the roof, helped a lot of people that need help, but there were a lot of side
effect issues. Then along comes this other drug, Reda Trutide, which is like, okay, well, let's increase
GLP, but let's also kind of bump up the GIP system, a nudge or two. Let's also bump up the
glucagon system and low on the whole we get a much better effect muscle sparing and actually better weight
loss so kind of a perhaps a lesson to us that like you don't really want to push really hard on one
lever in biology or take any one thing out with maybe the more combinatorial approach is the better approach
speculating here but there seems to be a you know parallel theme oh definitely I think that
you can mitigate risk by doing that by not giving too much
of one thing. And I think it's hitting, again, using multiple levers is definitely a way to get
a treatment effect without exposing the body to potentially the harms of going too big on one thing.
So that'd be the argument for these kind of multimodal approaches. And then you can also combine
these procedures with the drugs. Right. So you do an endoscopic procedure like a tighten
the stomach and then give a drug and see if you get much more weight loss. Or at a lower dose and
get this. Lower dose, right? Yeah, this was what years ago on this podcast, we looked at the whole
ADHD thing and the effects of these drugs on ADHD.
And, you know, like parents who get a great effect of a, you know, an Adderall or a Vance
for their kid that couldn't focus.
I have friends with a kid like this.
And, you know, they're just like, it's remarkable, but they're worried about the reduced
growth effects.
They're worried about the sleep effects.
And, you know, so they're in this tradeoff.
And that's where I think it's not always in either or.
We forget it.
It could be, well, maybe this child could get by with a lower dose of medicine.
if they're also doing some things behaviorally,
if they're also doing some things with nutrition, et cetera.
Obviously, the constellation of things will differ.
But we don't often think like that.
Americans want the drug that fixes the problem.
We love that.
And then we get all pissed off when we're like,
we had a generation of kids raised on amphetamines.
It's like, maybe kids just bring a little amphetamines
and more exercise, right?
And so it's gratifying to hear
that you're doing these multi-pronged approaches.
and that you do recommend exercise,
including resistance training, right?
And, you know, they do all these studies
that show diet and exercise alone don't work
because of the set point.
Like, look ahead was a great study, right?
That's running, right?
It's like treadmill.
Look ahead.
It was a lot of that,
and it was a lot of just diet,
heavy diet too.
And they found they got like a 6% total weight loss
or something like that out of 10 years
and no improvement in heart disease
and stuff like that, right?
So there's other studies that show
it's hard to do it alone,
like the biggest loser version, and there's several other versions of that,
where it's hard to do alone because you're not addressing the countermeasures the body throw
at you, right? The body throws at you. But that doesn't mean it's irrelevant, right? So when you do
a procedure, like say gastric bypass surgery, right, or you go on a GLP1, you've still got to
fix the fundamentals that got you in the problem to begin with, right? You need to start getting more
fiber. You need to, you know, have a better diet, you know, try to avoid the insulin spikes.
Do what you can to treat those things. You've got to start moving, got to start exercising. Otherwise,
it's going to fail. The treatments will fail. The endoscopic procedures, the surgeries,
the medicines will fail unless you really address those underlying problems. So even though
alone, they don't do it because the body has adapted, they're still important to the ultimate
treatment. So given where things are at now, the treatments that you and colleagues have
developed, and when I say colleagues, I mean, people in your laboratory and clinic, but, you know,
clearly is like a international thing going on trying to solve these issues. Where are things
head in next. You mentioned AI. What's the potential role of other technologies to improve
health and outcomes? Well, I think one thing is very exciting is gene therapy. So we talked
about GLP1s and how it's megadosing, superphysiologic. It's not nutrient responsive.
There's a new company working on a new approach, which is a gene therapy. And I was involved
in the very early work for this. And basically what there's
doing is they've developed a viral vector, right, that has the gene for GLP1 in it.
And they're using the promoter for the beta cell insulin gene, right?
So basically, when a patient would secrete insulin in a nutrient-responsive way, they're simultaneously
secreting GLP1.
These viral vectors are their beautiful tool of biology, where you can put some genetic,
cargo into a virus that doesn't cause any problems, but allows for stable expression of
and the production of certain proteins in the cell. So how are you getting into the pancreas?
You injecting it through the skin? No. So we actually are using endoscopic ultrasound. So,
you know, that same device we developed to actually, you know, biopsy the pancreas. We're now
using something similar to actually treat. And you can, you can ablate tumors with energy as well.
People are using electroporation to cause apoptosis. They're using thermal means. But you can
also inject something, fine, you know, injection, right? So, and we're injecting the,
the viruses basically into the tail of pancreas. Now, you wouldn't want to just take
this intravenously because it ended up another tissue, right? We've done a lot of work to make
sure those things stay in the tail of the pancreas too, right? We've done a lot of animal studies
where we've injected it and we make sure we use, you know, green fluorescent protein, make sure
it doesn't end up in areas it's not supposed to be. Is this, we're getting technical here,
but is there a pancreas-specific promoter? Translation, this would allow, even if some got out,
it wouldn't get expressed elsewhere.
Is there a way to make it only expressed by pancreatic eyelets cells?
Very, very close, yeah.
But still, you just don't want to get anywhere anywhere,
but the only place that becomes active is in the beta cells.
It doesn't become active in the alpha cells, right,
of the pancreas, right?
So it really is just active in beta cells.
And again, you secrete insulin into these little vesicles, right?
And so you're secreting GLP1, those same vesicles.
So then when you have your meal, the vesicles release JLP1 and insulin together.
Well, that's clever.
Nutrily responsive.
You're making the drug.
I mean, we were already making the drug,
but now you're making it an elevated rate.
And not only that.
You're not making it in the L cells
where it has to go all the way up through,
go to the liver, go around, do its thing, right?
You're making it the place where it's needed
right at the pancreas.
So it has an autocrine function, paracrine, you know,
and it can, and it's much faster.
How often are these cells turned over?
Because, you know, if it were brain,
no problem because brain cells don't turn over,
but how often does pancreas turn over?
Very important.
Why you can't do it in the bowel
is because they're not terminally differentiated,
right?
You turn it over your whole bowel.
every five days or whatever.
So pancreas terminally differentiated, so they're not going to be changing.
So it's a permanent.
The epistemal DNA stays in there.
It doesn't integrate into the host DNA, stays next to it.
It's transcribed with the process.
But they're not going to, you know, not going to have to turn over.
I feel like here's another theme emerging.
Like we're hearing about drugs that you can get one injection to permanently lower your LDL.
We're now hearing about gene therapy to chronically elevate.
GLP at exactly the place and time that you want in order to offset excess calorie consumption
and obesity.
I mean, is this what we're going to see?
Like instead people taking drugs, they're going to take a one-time injection?
That's what I'm hoping, right?
It's very exciting.
They actually just entered clinical trials in, I think, the Netherlands.
So it's very exciting.
So we'll see how that goes.
But it looks like it'd be very promising, right?
So one-time GLP-1 injection, that could be nice.
Additionally, you could use it to augment other therapies.
You can use it to augment the gastric procedure or the small bowel procedure.
It might be another tool in your armamentarium.
It might be more used for diabetes than it is for weight loss.
We don't know, right?
So it's so early right now, but it's certainly very encouraging.
Really glad you're doing this work because I'm aware of a few conditions.
But they're rare, fortunately, but they're not exceedingly rare where hyperphagia is an issue.
Prater Willie syndrome and other syndromes where these kids just can't stop eating
because lack of hypothalamic signals.
And I don't know by reed is that the traditional GOP drugs are not really working there.
This would be amazing.
And I mean, in rod models, it's phenomenal because we did these trials where you randomized
to get somagotide, high dose somagletide, much higher than you get for a human.
And then the transgene, right?
And both groups lose weight.
Transgene lose a little more than they stop losing.
So you don't keep losing weight forever, right, which is good.
And then you took the group on somaglatide and you randomized them further to get nothing
or to get the transgene.
They get the transgene.
They go back right down to the same settling point, which is great.
And the ones that were randomized, nothing put all the way back on.
Phenomenal, right?
So it seems to be getting really good results from a weight loss standpoint as well.
I want to take too much more of your time.
But if you're willing, we could just briefly talk about you for a second.
We won't go into deep layers.
That's not the purpose here.
But you're an interesting person, whether you realize it or not, I hope you do,
because it occurs to me that you had certain solutions in hand.
but you decided to search for better solutions.
So I'm just curious, like, was that always, are you,
are you always been a tool builder?
Like in medical school and residency or even prior, like, high school,
are you the person who, like, sees like, okay,
like the reason you have to keep, I'm dating myself here,
like, like fix the antenna on the TV is because actually the antenna sucks.
Let's do something to the antenna.
Were you that kid?
Yeah, my mother would attest to that.
And fortunately, I took my motorcycle apart in high school,
couldn't get it back together.
I had to have it flatbed.
away and fixed. And I fixed some parts of my car that ended up bursting into flames.
So I'm much better at dealing with patients than with it. Could have been the other direction,
right? Exactly. So no, I always would tinker with things for sure. And I needed to do things
with my hands. So that's why in medical school I couldn't be kind of a general internist.
I think I needed to I needed to solve problems with my hands. And I think that's fulfilling to me
is to, I don't like managing a slow demise, right?
And I felt like internal medicine,
we were giving people a reason to continue with their current life, right?
And instead of addressing problems, like their blood pressure is high.
Well, instead of finding a way to really help them address that as, well, take this medicine,
your LDL's high.
Instead of finding a way to address it, you give them a medicine.
And you see what that gets us in to, these situations where we treat HD,
We treat a high LDL APOB really effectively,
but we're not,
and we reduce mortality from that specific thing,
but we took our eye off the ball
and fatty liver is up and diabetes is up
and people are still dying in greater numbers, right?
So I feel like we need to address the underlying problem,
and that's very important.
But aside from that, I just like doing things with my hands,
and I think that was a large part
why I was going to go into cardiology
or going to interventional gastro.
So grateful that you're a tinkerer.
It's a unique thing to find these qualities,
and expertise woven into the same person.
The fact that you clearly have immense compassion
for your patients and that you're willing to come here
and share information publicly,
you have many, many important roles in your daily life.
So the fact that you take the time out of your schedule
to educate the public is I and everyone
the same immense gratitude for that.
And that you're thinking about what could be done better,
that's like the ultimate quality, in my opinion,
of an excellent physician or scientist or engineer.
But when it comes to physicians
and the general public, we need people who are thinking about how things, yes, there are some
solutions for some people, but we need to broaden the treatments to help many more people.
So I'm just very grateful to you. And thanks for coming here today and sharing this info.
Well, thanks so much for having me. Very kind. It's definitely always a team effort, as you know,
as well as anyone. Everything is a team effort. And I think innovation is never the result of one
person's work. It's a whole group. And I've been very fortunate to be surrounded by a bunch of
amazing people that help us move things forward.
Well, throughout today's discussion, your reflex to give proper attribution is more
testament to what you just said.
It's not lost on me and nor the people listening.
People who give credit where credits do it.
It says a lot about them.
So thank you.
Come back again maybe in a couple years when you've solved everything or close to it.
I'm just joking.
I'm sure you guys are making tremendous strides, but these things take time.
Once again, thank you very much.
This was very, very informative and it was enriched.
my thinking a tremendous amount. I'm sure everyone listening as well. Thank you. Thank you for joining me
for today's discussion with Dr. Chris Thompson. To learn more about his work, please see the links in the show
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