FoundMyFitness - #013 How The Gut Microbiota Affects Our Health with Dr. Erica & Dr. Justin Sonnenburg
Episode Date: September 3, 2015Dr. Justin Sonnenburg Dr. Justin Sonnenburg is an associate professor of microbiology and immunology at Stanford and Dr. Erica Sonnenburg is a senior research scientist in the Sonnenburg lab where the...y research many aspects the interaction between diet with the 100 trillion or so bacteria in the gut (specifically the colon) and how this impacts the health of the host (which in this case is a laboratory research mouse). In this episode, we discuss... (00:00) Introduction (02:50) What is the gut microbiota? (08:10) A lack of dietary fiber starves the gut microbiota (16:13) The close interplay of our gut and immune system (17:58) Connecting the dots between the gut, immune system, inflammation, and autoimmune diseases (20:45) A diet with a variety of fibers promotes microbiome diversity and health (25:30) Artificial sweeteners induce glucose intolerance by altering the gut microbiota (29:00) Individualized responses to repeated antibiotic perturbation (30:27) The risks of antibiotic overuse (32:10) Probiotics can support a healthy microbiota following antibiotics (38:05) Factors during birth and infancy that influence microbiome development If you're interested in learning more, you can read the full show notes here. Join over 300,000 people and get the latest distilled information straight to your inbox weekly: https://www.foundmyfitness.com/newsletter Become a FoundMyFitness premium member to get access to exclusive episodes, emails, live Q+A's with Rhonda and more: https://www.foundmyfitness.com/crowdsponsor
Transcript
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Hello, my dear podcast listener. In this episode, I speak with Dr. Justin and Erica Sonenberg,
who run a lab at Stanford researching the nuances of the hundred trillion or so tiny bacteria that
inhabit the gut in numbers that exceed that of even your own cells and do much to affect your health.
We discussed the pivotal role of fiber plays in fueling good bacteria in the gut to produce compounds that
regulate the immune system, including increasing the number of T regulatory cells,
which are specialized types of immune cells that keep the immune system in check,
and prevent autoimmune responses, and how these compounds also increase other types of blood cells
in the body in a process known as hematopoesis. We also talk about how the lack of fiber in the
typical American diet actually starves these good bacteria of their food. This has an effect
not only on the immune system and autoimmune diseases, but also result in the breakdown of
the gut barrier, which leads to widespread inflammation and inflammatory diseases.
Is some of the sounding familiar? That's because I also talk about.
a bit about some of this with Dr. Mark Shigenaga in a recent podcast called CoriBarr,
Micronutrients, Fiber, and Polyphenols in a Bar. So make sure to check that out, also on iTunes.
Lastly, in this podcast, Dr. Erica Sonenberg talks about how C-sections have a negative effect
on infant's gut due to the lack of exposure to bacteria present in the mother's vaginal
canal and how the use of formula deprives the infant not only of the good bacteria present in
mom's gut, but also from specialized carbohydrates in breast milk that are good for infant gut
flora known as HMOs or human milk oligosaccharides. Sounds like exciting stuff. You bet your
smartphone it is. But before we get started, I want to take a moment to remind you guys of two things.
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And now on to the podcast. Yehaw! Welcome to another episode of the Found My Fitness podcast.
Today I'm sitting here with doctors Justin and Erica Sonenberg.
Justin is an associate professor at Stanford in the Department of Microbiology and Immunology,
and Erica is a senior scientist at Stanford, and together they run a lab where they study the effects of diet on the 100 trillion or so bacteria in the gut and how that impacts the health of the host,
which in their case happens to be a laboratory mouse.
But this applies to the general population.
And so I'm really excited because I'm convinced that the health of the gut plays a very important role in overall general health.
So maybe we can start by talking a little bit about your research and why the gut health is so important.
Sure.
So, you know, I think we became interested in the gut microbiota from the standpoint of just kind of basic pioneer.
research, trying to understand this new microbial organ that we've discovered inside of us
that's incredibly important and connected to so many facets of our health.
And over the course of the past 10 years or so, there's been this transformation in understanding
this community and how fundamental it is.
It's not just a quirky part of our biology.
It really is holding the key to health of our immune system, our metabolism.
There's a brain-gut access, so it's dictating moods, behavior, perhaps impact
things like autism and neurodegeneration. So there's really this profound impact this microbial
community has on our entire body. Yeah, and just to throw some interesting numbers out there,
we're actually 10, by cell number, we actually have 10 times more bacterial cells associated
with our body than human cells. And we even have 100 times more bacterial genes associated
with our collective genome than human genes. So both by cell number and by cell number and by
gene number, we're actually more microbial than we are human.
And so I think the research from our lab and other labs in this area is really redefining how
we think of ourselves as human beings.
We're not just this collection of human cells.
We're in fact more like a tube of human cells that houses this incredibly complex and dynamic
ecosystem of microbes.
And what we're finding is that these microbes are wired into pretty much all aspects of our
biology.
major players in many aspects of our health. Yeah, in terms of how these, you know, bacteria in our gut
are regulating health. One thing that comes to my mind in particular is, you know, so these,
this bacteria is in our gut, and most of it is in the distal part, so on the colon. And it just so
happens that our GI track happens to be also large, the largest number of immune cells.
I don't think most people, if you were to ask them, where, what organ in the human body has
the highest concentration of immune cells? People might say the thymus or the spleen or,
no, it's actually the gut. And so that is particularly where I have been interested because
there's a very complex interaction between the bacteria in our gut and these, and the immune
cells in our gut. And you guys have, you know, done.
a little bit of research on how diet comes into play into that.
So yeah, so there are kind of two aspects of that.
I think one, you know, it's a little bit daunting to think of these microbes inside of us
as dictating so much of our biology that they actually are, you know, holding the reins
to some degree on our immune system, on our metabolism.
On the other hand, our diet directly impacts this community.
Our research and the research of others has shown this over and over again.
And so really we hold the reins on what's happening inside our gut by controlling what we eat and aspects of our lifestyle.
So I think as we gain knowledge about this community, it's possible for us to foster a healthy microbiota to improve our health in many dimensions.
Now, the immune system is really interesting because there's a really delicate balance between our microbiota and our gut because living in close proximity are the
two entities that classically in microbiology were thought not to get along, bacteria
and the host immune system.
And what we realize is that there's this incredible conversation that's continually ongoing
in our gut between our immune system and the gut microbes to maintain harmony in most cases,
although this can go awry.
But it's, so there's a delicate balance in the gut, but also the immune system can leave
the gut, those signals can leave the gut and influence our immune system throughout our
body. So really these microbes in our gut are dictating the set point of our immune system throughout
our body. They can impact things like respiratory infections, how well we respond to a vaccine,
how rapidly autoimmune disease can progress. And so it's really, I think, you know, this insight
that so much of our immune system is in our gut is really profound and it's important to recognize
that this not only impacts what's going on in the gut, but throughout our entire body.
Absolutely. So the food that we put into our body interacts with these gut bacteria. And if we feed them certain foods or we don't feed them certain foods, this will impact, you know, the immune system in the gut and also in the rest of our body. So specifically, what comes to my mind is the dietary fiber that can be metabolized by certain bacteria in the gut into some of the body.
something called short chain fatty acids like buteric acid, propionic acid, acetic acid,
lactic acid, anything else.
And how these short chain fatty acids provide signals to certain immune cells to regulate
their function, you know, both in a positive way or also in suppressing your immune system
from becoming too active.
Can you explain a little bit about that?
Sure.
Well, so the, you know, the dietary fiber.
we eat is really the key for feeding this gut microbial community. And, you know, the point that
the microbes in our digestive tract primarily live at the end of the digestive tract is really important
because so much of the food that we eat in the Western world is laden in simple carbohydrates
and fats and all of those things get absorbed in the upper GI tract and leave our microbes
essentially starving. There's no complex carbohydrates to feed this community. And in fact,
going back to traditional populations of humans that are representative of how we evolved,
it's clear that we used to eat as humans much more dietary fiber than we currently eat.
So there's really good evidence that in the United States we're actually starving our microbes.
So this is important in many respects.
One is that when the microbes receive these dietary carbohydrates, these complex dietary fibers
that we eat, they make these compounds like short chain fatty acids.
That's their metabolism working.
And these compounds, short-chain fatty acids, are actually the bacterial waste, the bacterial feces, if you will.
And then we absorb these compounds, and they regulate a number of different aspects of our biology in positive ways.
So they increase the number of T regulatory cells.
These are cells that attenuate inflammation, calm the immune system.
So if you're not eating dietary fiber, it's likely that your immune system is operating.
in a hyper-inflammatory state.
This hyper-inflammatory state, it's believed,
can drive a lot of different types of Western diseases,
ranging from autoimmune diseases, metabolic disorders,
things like asthma, allergies, all of these problems
that we associate with the Western world
are really, really have excessive inflammation
as an underlying mediator.
And so it's not too hard to imagine
how Americans that are not consuming dietary fiber
not producing a lot of short chain fatty acids,
have this hyperactive immune system.
And so dietary fiber is really a key
to feeding this community and setting the immune system
to a proper set point so that it's not too reactive.
Now, there's a really interesting connection
between lack of dietary fiber and host mucus as well
that maybe Erica wants to talk about.
Yeah, so one thing that I wanted to add to that
is, you know, carbohydrates is such a loaded term,
in our society now. People view carbohydrates as something bad and you want to avoid. But broadly
speaking, there are two types of carbohydrates we need to be aware of. The more simple carbohydrates,
and like Justin was saying, these are the ones that are absorbed early in our GI tract. So these are
things from highly refined grains or packaged foods, the types of simple sugars that are so prevalent
in much of our Western diet. But then there's these complex carbohydrates, the type of
carbohydrates that are found in dietary fiber. And these are things that you find in whole grains,
fruits and vegetables. And these are the carbohydrates that the human genome is not very good at
degrading. So it actually makes it all the way down to our distal gut, to our colon. And then
our microbes in our colon can ferment these complex carbohydrates and then produce the short-change
of fatty acids that you were talking about. And so what we're finding is that when we don't
eat enough of these complex carbohydrates found in dietary fiber, these gut bacteria are
starving and so they really are forced to rely on the mucus, the carbohydrates that are found
in the mucus layer that lines our large intestine.
And so as we don't consume enough dietary fiber, these microbes become closer to our
mucous lining, they're eating that food because that's all they have to eat, and they're
inching ever closer to our...
own epithelial cells. And that creates a situation in which, you know, the human aspect of
our GI tract and the microbial aspect, that fence that keeps them separated starts thinning
and setting up a scenario where our immune system now can start overreacting to these microbes
encroaching and these microbes potentially get a little more aggressive because they're lacking
in the food that they require.
And then one thing that I just wanted to add,
there's a lot of focus on the short chain fatty acids
that are this major product of fiber degradation
by the gut microbiota in the distal gut.
But there's a variety of other interesting chemicals
that these microbes are producing.
Bacterial metabolism is something that's really not studied well enough.
And we can think of each bacteria in our gut
as a little unsupervised drug factory that's constantly making interesting small molecules,
interesting chemicals.
We don't know the identity of most of these compounds.
We don't know how they affect our biology.
They're circulating in all of our blood right now.
They're slightly different between me and you,
and they change in a single individual over the course of a day.
And so understanding how these chemicals are impacting different aspects of our biology
is one of the great frontiers of research.
Yeah, so about 10 different things came to my mind as both of you guys spoke, so I'm going to try to fire away.
But as Erica was saying, it's really interesting you're talking about how when you're starving
these gut bacteria in the colon, how they start to eat away the mucus.
And of course, that's people, you know, the gut barrier, that is the mucus.
Most people know about the gut barrier when that breaks down.
You start to have the immune cells, which are usually, you know, not in contact with all.
these bacteria in your gut start to come in contact and then they can start to have an immune
response.
It's an interesting way because I usually think about it as when you're starving the bacteria
of the fiber that they need to make these short chain fatty acids, as starving the gut epithelial
cells which rely on these short chain fatty acids for energy.
I think I read somewhere like between 60 to 90 percent of the goblet cells, which are the specialized
cell in the gut that produce musin, which is a very small in the gut that produce musin, which is
actually the mucus slimy stuff that makes or makes up the gut barrier, they rely on that
as energy. So it's almost like maybe there's a double whammy going on where it's like the
bacteria are feeding on the mucin, that's breaking it down. But at the same time, the cells that
make the mucin are being starved of the energy substrates they need to make that mucin. So you've
just got this like double, you know, double whammy compounded effect. Yeah, yeah, that's a very
interesting point. And I don't think there's been any systematic study.
to look at rate of mucin production based on the fiber in the diet, but this would be very
interesting because it's probably correct what you're proposing.
It's a great hypothesis.
Please look at it.
Yeah, yeah, it's a very good idea.
Please look at it.
The other thing that came to mind was when Justin mentioned, you know, the effects of
some of these short chain fatty acids and other compounds that we have yet to identify, possibly
how they affect, you know, the T regulatory cells.
And T-regulatory cells, as you mentioned, they keep the immune system in check.
They make sure that you're not having an hyperactive immune response, which leads to autoimmune
diseases.
And I think I've read that type 1 diabetes, rheumatoid arthritis, and multiple sclerosis, all of which
have an autoimmune component to them, have been linked to disruptions in the gut microbiome.
And I think there's been direct evidence as well.
like looking in animal models. So, I mean, you nailed it, right? I mean, these diseases of,
you know, the Western world, I mean, I'm not sure if there's a complex interaction between
people that have gene polymorphisms that already predispose them to a hyperactive immune
response. And then on top of that, having this unhealthy gut, you know, and not being able to make
as many T-Regs is like the perfect storm to create MS or type 1 diabetes or anything like that.
but at the very least, you can't control what genes that you're born with,
but you can control what you put into your mouth and what you put into your gut.
Yeah, so I think you're exactly right.
And actually, I would go as far to say that I think all the focus on the human genome
and the polymorphisms that predisposes to different diseases is actually very misguided.
I think that's just overlaying normal human genetic variation on something that's very amiss in our environment.
and namely our microbiota.
So, and you named a few of the diseases
for which excessive inflammation is thought to be a driver,
but it extends far beyond that.
I mean, you know, many cancers are driven by inflammation,
heart disease is driven by inflammation.
All the metabolic disorders are thought to be
inflammation promoted now, and certainly all the autoimmune diseases.
So when you look at, you're talking about tens of diseases
that we have in the Western world that largely aren't present in these traditional societies
that have a much higher fiber consumption and also have a much more diverse gut microbiota.
And so it really, I think, you know, when you look at all these things together and then the mechanisms
of how fiber degradation attenuates inflammation, it really looks like our lack of fiber in the
Western world and our diet is deteriorating the microbiota.
and this is predisposing us to these, you know, tens of different diseases.
And I think it's very unlikely that there are tens of different causes for these diseases.
I think that inflammation is the common denominator and the microbiota,
and our diet is really at the heart of this.
Yeah.
Well, inflammation is a driver of aging.
So you're talking about these diseases, which many are age-related.
You know, so it's really, like you said, it's at the heart of all these diseases.
And I think that, you know, it really is a driver of the aging process itself.
In terms of the heart disease, that's the number one killer in United States.
And, you know, as Erica mentioned, when you're starving your gut microbiome of this fiber,
and the bacteria starts to break down the mucin and gut cells possibly aren't making as much mucin,
then when those immune cells become in contact with the bacteria, they start to kill it because that's what they're programmed to do.
Immune cells see bacteria, okay, well, that's more.
I'm going to kill it.
So then what happens is they kill bacteria.
This releases lipopolysaccharide, endotoxin.
And what happens when you release endotoxin, it gets released from the bloodstream.
Well, your body has an adaptive response to it.
It produces more cholesterol, the LDL.
And the reason for that is because there's binding sites, the LDL receptors on the LDL and
also on HDL cholesterol bind endotoxin as a way of sopping it up to protect your body.
You don't want to go into sepsis.
And so you're producing more cholesterol.
That's why when you're an inflamed state,
you produce more cholesterol,
and that's really a link that I think
between inflammation and heart disease.
And it is also a reason why you should always get
your cholesterol measured more than once
because you may be sick or stressed and you're inflamed
and then your cholesterol is really high
and your doctor might go, whoa, let's get you on statins
and maybe that's not the best scenario.
But I want to get back to the fiber
because you're talking about how important it is
to get fiber.
and how, you know, we don't get as much fiber as, you know, our predecessors or whatever you want to call it.
What kind of fiber? What kind of food sources do you think are, do you take a broad spectrum approach where you try to get all different types of fiber?
You know, because we don't know, like you just mentioned, we don't know what all these gut bacteria are producing.
So can you talk a little bit about the types of fiber, me, how much fiber?
Yeah, so if you look at, you know, the average American is eating around 10 to 15 grams of dietary
fiber per day. The U.S. government recommends that we eat more along the lines of 30 to 35.
So just by that measure, we're pretty fiber-deprived. If you look at these traditional
populations that we study in our lab, these hunter-gatherers that live in Tanzania, they're
eating on the order of 100 to 150 grams of dietary fiber per day. So it's clear that
the amount of fiber that we're consuming as Americans is something that, you know, could be on the
order of 10 times less of what our ancestors probably ate in the past. And so, you know, there's this
issue of an amount of fiber that we just have to increase that to increase the food that's getting
to our gut bacteria. But then there's also this issue of the diversity, the different types of fiber.
So some people say to us, well, can I just, you know, take a whole bunch of metamusal, get my 35 grams,
and then I'm good. But what we're finding is that the diversity, the different types of complex
carbohydrates that are found in dietary fiber are important. So you could imagine if you ate just
one type of complex carbohydrate, there would be, say, a handful of bacteria that are really
good at metabolizing or fermenting that type of carbohydrate. Those would get very abundant,
maybe at the expense of other types of microbes. But if you're eating many different types
of carbohydrates, complex carbohydrates, then you can foster a community, kind of an ecosystem that's
more rich and robust. So if you are eating, say, 20 different types of dietary fibers, then you're
providing sustenance for many different types of microbes that might specialize in different
types of carbohydrate consumption. And that appears to be important, this having a diverse
community of bacteria in the gut. And so we think about it sometimes, like as a, you know, as like a
a rainforest, you want forests or these ecosystems tend to be more stable when there's a lot of
complexity of life on them. If you have, say, just a lawn of only grass, then one small thing
happens and that would harm that grass and then everything dies or it's unstable. But if you have
an ecosystem that has grass and trees and shrubs and all different things, then it's less likely
to collapse after just one event. And so that's how we like to think about it.
you want a diverse community of microbes in your gut, and the best way to foster that is to provide
them a diverse amount of substrate, a diverse amount of complex carbohydrates. So specifically,
what foods would you say would provide that diverse? So we think that foods, so fruits, vegetables,
whole grains, and legumes are all foods that are high in dietary fiber. And so we try to consume
many different types of each of those.
And one sort of easy way to do this is to eat seasonally.
So if you eat foods that are in season,
you're more likely to eat over the span of a year,
a diverse collection of fruits and vegetables.
I don't know if you have some other.
I mean, the other piece of advice that I would give
is just to avoid food that comes in wrappers or packages.
I mean, I just think that, you know,
the processed food manufacturers have not caught on
to the importance of dietary fiber and health.
And if you go to most of these processed foods,
if they do claim high fiber, it's usually a single type
of fiber that they're supplementing with,
either inulin or cillium husk or chickory or something like that.
And it doesn't provide the breadth of fiber
that you would get if you were to go to a produce section
and pick a handful of vegetables to cook.
So I just think that until the processed food,
people get on board with the importance of fiber,
it's good just to avoid food that comes in packages.
So a couple of things come to mind.
One is then maybe even prebiotics aren't the magic pill either.
But the other thing is the effect of processed food on the gut bacteria.
Have you guys looked into specifically any, or do you know of anyone else's research in terms of mechanisms,
what happens, how it affects the gut bacteria?
I remember reading a paper, I believe it was published in nature, not too.
long ago on the effect of artificial sweeteners like aspartame.
Are you familiar with that?
Yeah, absolutely.
Yeah.
So there's a variety of compounds in processed foods now that seem to be problematic for
the microbiota.
The artificial sweeteners is a good example.
And although the mechanism wasn't well delineated in how this is impacting the microbiota,
it certainly appeared that artificial sweeteners and they looked at three different classes
of artificial sweeteners all affect the microbiota and go on and impact insulin resistance
in the host, so a measure of diabetes and metabolic syndrome.
And similarly, emulsifiers recently have been looked at.
These are chemicals that are found in processed foods quite commonly, and it was shown that
emulsifiers actually can break down the mucus layer, lead to bacteria.
getting closer to the host tissue and induce inflammation, and that also leads to metabolic problems.
So I think that there's a variety, you know, the other thing that processed foods do,
in addition to not providing dietary fiber, is they provide all these other compounds that just
haven't, in most cases, haven't been well studied, and in the cases where they have been studied,
it appears that they're problematic. And this is, I guess, somewhat intuitive when you consider that
our body hasn't adapted to a lot of these chemicals that we're exposed to and processed foods,
it doesn't know how to handle them and they're therefore potentially problematic to our long-term health.
Yeah, so it's not just the lack of fiber, but it's also they're doing something actively
bad in addition to that.
So again, one of those compounded effects.
So the other thing that comes to mind is when you're talking about these compounds that
our gut isn't used to, antibiotics.
And that's obviously, you know, antibiotics have their place.
If it's a life or death situation, you know, prescribed me antibiotics, you know.
But the problem is that they're prescribed in many not life or death situations.
In fact, they're very over prescribed for just things that are not necessary, you know,
sinus infection or, you know, a cold, common cold.
What effect does just even having like a single dose of antibiotics have on your gut, you know,
microbiome and how can we recover from that?
What are the best ways we can recover from that?
Yes, I think we have to realize that when antibiotics were developed, there was no thought
placed on gut microbes.
These are not drugs that were designed in any way to spare the bacteria that live in our gut.
Most antibiotics that we take are, in fact, designed to be broad spectrum to kill a wide
variety of microbes so that they can be used for many different types of infection.
And what we're finding is that these antibiotics do wreak havoc on our gut.
So many of the microbes that are beneficial that inhabit us are killed by these antibiotics.
And what we're finding is that often the microbiota, there is, it is able to rebound,
but often it is not able to rebound exactly as it was before.
And from studies done, others at Stanford, not us, but a colleague of ours, David Roman,
they showed that multiple, with multiple rounds of antibiotics, with each additional round,
there's another sort of hit that the microbiota takes that makes it less likely to recover.
So with each additional round of antibiotics, they saw like an increased deterioration of the bacteria,
the community that was there, in a way that it was not able to go back to the state that it was
before. We don't know exactly what that means, but there's a lot of evidence that, for example,
children that go on multiple rounds of antibiotics are more likely to develop a lot of these
autoimmune diseases like asthma and allergies. And so there's evidence that this lot of,
a lot of antibiotic use is detrimental for our health. And then, you know, children that take antibiotics,
but say have a family pet. So there's an example of bringing microbes back into our
world by having an animal, that those children are somewhat protective from the antibiotic effects
just through increased environmental microbial exposure. So there is kind of this too, you know,
we're killing microbes with the antibiotics, but then if we can reintroduce more microbes, so in cases
where you really do need antibiotics, we need to think about ways of repopulating that community
in a beneficial way to kind of mitigate the effects that the antibiotics.
antibiotics have on our gut.
And, you know, I think it's important to recognize that antibiotics are wonderful
drugs if they're used appropriately.
And I think the problem was that for many years they were used without recognition that
there's a cost associated.
I think the first cost that was recognized was the idea of antibiotic resistance.
And if antibiotics are overused, you can actually get pathogens that are resistant to these drugs
that then are very difficult to eradicate.
And I think now there's a second wave of recognition for reasons.
to limit antibiotic use, which is that there's a cost associated with harming our resident
microbes.
And I think from a very practical sense, you know, just talking with people that work in our
lab and other people that are in the field of microbiota research, if you have a conversation
with your physician and let them know that you don't expect antibiotics every time you get
sick, that if a wait-and-see approach is appropriate, that you're comfortable with that.
A lot of times physicians will not prescribe antibiotics when they otherwise would.
We've heard of physicians that would say things like, I thought you wanted antibiotics.
I'm fine with not giving you any.
And so I think it's just important for people to understand that every time they take antibiotics,
they're harming this really important part of their biology.
And if they can avoid it, that that's certainly a better course of action.
Yeah.
So if it is necessary, like let's say in the case of a surgery or something,
after the antibiotic course, then just eating the fiber, if you've depleted those,
if you've killed off those beneficial bacteria, often called commensal bacteria that are producing
all these compounds, short-chain fatty acids included, if you kill it off and you, you know,
eating dietary fiber only can do so much, right? So what about repopulating it with the bacteria
itself, probiotics, foods that contain probiotics, are there ways that you think are better than others?
Yeah, so this is something that really hasn't been explored experimentally in great detail,
the best way to recover after some major perturbation, whether it's antibiotics or preparation for
a colonoscopy or food poisoning, you know, diarrhea or something like that. And so I think, you know,
the, if you look at trials that have been performed probiotics certainly have a place in recovery
from these major perturbations. It's clear that probiotics either in supplement form or in fermented foods,
things like yogurt can actually shorten the duration of antibiotic associated diarrhea or make it
less common in people taking probiotics.
And so this really suggests that probiotics are doing something beneficial.
Now that mechanism isn't well understood, but it's, I think, fairly well recognized that
these organisms that you can buy as supplements or you find in fermented foods don't take
up permanent residence in the gut typically.
But they do something as they're passing through this community.
It's known that they can be viable, they're alive, and they can actually have interactions either
with the microbiota or with the host immune system.
And so I think a nice way to think of it is just using probiotics as placeholders.
While your microbiota is recovering, using those organisms that are present in fermented foods,
for instance, can actually help to prevent pathogens, bad bacteria, from taking up residents.
during that time.
Right.
I've read a few studies with a probiotic called BISL number three, which I use myself.
I definitely use it if I have to take a case of a round of antibiotics, but it's got like
450 billion bacteria, which is like 10 times more than anything else in the market.
If you think about it, you take a probiotic, not to mention it comes shipped cold, you know,
so a lot of these probiotics on the market, I think, also are dead.
They're dehydrated dead bugs.
And so, you know, there's been like 25 or so published studies I've read both clinical
trials and also animal studies where I've seen, you know, it's actually effective.
It does increase certain amounts of commensal bacteria.
It does lower inflammation.
In fact, it also increases brain-drive neurotrophic factor in the brain, so it's having
an effect in the brain.
But I did a personal trial myself where I took BSL number three for 30 days.
And I measured, well, I didn't specifically measure it.
I used you biome, a company that allows you to send in a little sample of your poop and
they'll tell you what sort of bacteria are in it.
And so I did this before and after my 30 days of BSL number three.
And I was very interested to see that I was expecting just to have an increase in some
of these commensal bacteria that were in the probiotic.
But what I found, to my surprise, was that I had new strains of bacteria that weren't
identified previously cropping up.
And I'm not sure if that's because the commensal bacteria were making more of these compounds,
which were feeding other types of bacteria that couldn't be detected, and now they're, you know,
they're flourishing or what.
But I was, that was sort of surprising to me to see.
But I think that, you know, in terms of recovering from something like antibiotic use or even
people that have, you know, inflammatory bowel disease or colitis, you know, eating these fermented foods,
the fiber, broad spectrum fiber, and possibly doing a round of the VSL number three,
maybe a good thing to do after any sort of procedure.
Yeah, you know, I think your story is really interesting in a couple respects.
So the first is that I think it really reinforces this idea that we have this complex
ecosystem like a rainforest inside of us.
And you can imagine that adding a bunch of new species at high numbers to a rainforest
doesn't just result in those new species being there,
but could lead to an entirely different chain
of interactions and ecology that would crop up
over a certain period of time.
And so it's not hard to believe that you would see
new species flourishing in the presence
of these new community members added at high numbers.
I think the other thing to be aware of is,
and I think you're insinuating this
with talking specifically about VSL number three,
that, you know, the,
the supplement market is a mess. It's not regulated. There are a lot of really poor products out there,
many of which don't have the viable organisms that they suggest they have on their label.
Many of them don't have the actual species that they say that they do on their label,
or they have contaminants that are present. And so I think it's really important if people want to go the route of probiotic supplements
to make sure you go with the company that you trust.
There are independent organizations that can verify the contents of probiotic supplements.
So USP is a symbol that you can look for on probiotic supplements
as an independent verification of the contents, not efficacy, but of the contents.
And then I think fermented foods are a really great way to go
just because you get this diversity of microorganisms,
and we really don't know which ones are best,
which ones are best for different individuals.
And so it really requires that each person take kind of a personalized approach to this,
become systematic in testing, what appears to work well, be compatible with your system,
and isn't causing problematic side effects.
And so that's just kind of a personal journey that each person has to go on.
No, that's really good insight and advice.
Another thing I wanted to just touch on briefly,
because I know that you guys have talked about something that has to do with
the origin of our microbiome and, you know, starting from when we are born.
So I'm not sure actually if you guys know about the development of it in utero at all, or if it's known at all,
how that, you know, works in terms of what the mom's eating or doing, et cetera, et cetera.
So starting from conception in utero development to, you know, giving birth.
Can you talk a little bit about that and the development of the microbiome?
Yeah, so I think for many years it was largely thought that while the baby was still in the womb,
that that was largely an environment that was largely devoid of bacteria.
And now there's starting to be some new studies that it looks like maybe there are some bacteria
in the amniotic fluid.
But it's clear that even if that pans out to be true, that these are not major contributors to the initial colony that forms in the newborn infant.
So when you're born, you're born with your gut largely sterile.
And what happens at that point is, you know, there's this land rush by microbes to colonize this new habitat.
And what we've seen is that children, depending on if they're born by C-section or vaginally,
will have a very different initial microbial community.
So children born vaginally have gut microbiota initially that looks more like that of their mother's colon or vagina.
Whereas children that are born by C-section actually have microbes in their gut that are more,
the types of microbes that we find more on skin and not necessarily the mother's skin,
maybe the doctor or nurse's skin.
And so, you know, that initial colonization is dependent on the method of birth.
But there's all these other things that happen initially in a child's life that can really dictate how the community goes.
So whether a child is breastfed or formula fed has a huge impact on the microbes.
And so, you know, this is the baby's diet.
And diet we know is basically, you know, one of the major levers to control this community.
So babies that are fed formula, their microbiota looks very different than breast milk.
And actually what we see is breast milk has a component of it.
One of the major components of breast milk is this type of carbohydrate called human
milk oligosaccharides or HMOs.
And for a long time it was really a mystery why those molecules were there because we knew
that humans can't digest human milk oligosaccharide.
So why would a mother put so much effort into creating these compounds and putting them
in her milk if her baby can.
can't even digest it.
We'll come to find out it's actually the gut microbes that
are digesting these HMOs.
So in breast milk, there's not just food for the baby
in the form of lactose and fats, but these HMOs that are food
for the babies growing microbiota.
So the mother's feeding the baby and also her babies growing
microbiota.
And these HMOs are very specific for human milk.
And so far have not been able to be replicated in formula.
And so that we think is a large reason why the communities
are so different.
And then, of course, antibiotics, the average American child is on a round of antibiotics every year.
And we know that that's a huge, makes a huge impact on that growing community.
So all these things that happen early in life could really set a child on a trajectory
potentially for having potentially a very good, healthy, robust microbiota or potentially one that isn't as good.
And so I think as parents, especially of new children, we need to be very mindful of the choices that we make early in a child's life.
because many of these microbes that we have by the time we're, say, the age of five,
many of these microbes will be with us throughout our entire lives.
So we really want to get that community started in the best possible way.
So very interesting in terms of giving a vaginal delivery,
then do you think that having, the mother, having, you know,
making sure that her, you know, bacteria in the vagina is populated with the right or good types of bacteria,
is something she can do during pregnancy or before that may help with that?
Are there certain...
Yeah, I don't think that that's been studied extensively.
I mean, I think just common sense-wise, you would imagine that foods that are healthy for
the mother's microbiota, which would be coming from a diet that's high in dietary fiber
and fermented foods, that that would be a good community to pass on to her child.
But that hasn't been looked at very carefully.
Yeah, I mean, that would make sense logically.
And the breast milk, you know, obviously very important.
Do you know why certain mothers choose to use formula?
Is there a reason for that?
I think there are probably many reasons.
I mean, you know, I personally breastfed two of my two children,
and I can say, you know, as a working mother, it was a challenge.
I mean, a lot of work environments don't make it so easy to pump milk
and provide breast milk for your child.
You know, it's a huge caloric load.
So, you know, I think a lot of mothers don't realize that you're actually, you require more calories for generating breast milk than you did during pregnancy.
So that's, you know, a huge workload for the mother at a time when her infant is young and isn't sleeping well.
So, I mean, I think there's a lot of reasons why women choose not to breastfeed.
And unfortunately, you know, this is a whole society issue that I think we need to address just on making that easier for mothers,
especially for working mothers, because we know it appears to be so important for the health of her child.
Right.
And perhaps now knowing the effect on the microbiome and setting them up for life is probably a good motivating factor to do the extra work if you can.
Right.
But this has been a very interesting conversation.
There's so much more I wanted to talk about, you know, in terms of obesity, transplanting, you know, gut bacteria from lean mites into obese, making them lean.
vice versa and the brain, but I think we're running out of time.
So people that want to learn more about your research, you guys wrote a book, if you want
to talk about that, where can they find those things?
Yeah, so we do research at Stanford and our lab website is sonnenberglab.
.standford.edu, and this gives an overview of all the various things that we're
studying in the lab.
I think, you know, our background as researchers, there was a really interesting
intersection between our research impacting our own personal life.
We realized we were raising our kids differently.
We were eating a different diet because of this research
that we were doing on the gut microbiota.
And then we started talking to other scientists in our field
and realizing that they were making the same changes
to their lifestyle that we were making.
And then we talked to other scientists and other friends
that didn't know about the gut microbiota
and they weren't doing these things.
And it really struck us that it shouldn't be just
the scientists studying this field that had
the access to the information to make changes to lifestyle and diet.
And so that really prompted us to try to get this message out there.
And our first step in doing this has been writing a book called The Good Gut,
Taking Control of Your Weight, Your Mood, and Your Long-Term Health.
And this is available on Amazon, and it goes over the science very broadly, but it also
attaches that science to practical advice, how we've changed our lifestyle, and how
We think it provides insight into how you can change what you're eating and what you're doing
to positively impact your gut microbiota.
And it even has a short section of recipes, examples of how we feed our family.
Yeah.
And the other thing I would add is we have a Facebook page, Facebook.com slash the Goodgut,
where we post things like interesting studies that have come out recently that are a broad
appeal to lots of people.
So we post on there a couple times a week.
Great. Awesome, guys.
Well, check out the Sonenbergs.
That's it for this podcast.
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