Curing Autism, Epilepsy & Schizophrenia with Stem Cells | Dr. Sergiu Pașca
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Dr. Sergiu Pașca joins Andrew Huberman to discuss the rising prevalence of autism, which now affects nearly 3% of the population, and clarifies that it is not a single disease but a spectrum defined by behavioral observations rather than specific biomarkers. While mild cases often involve social differences or masking skills in high-functioning individuals, profound autism involves severe impairments frequently linked to intellectual disability and epilepsy. Dr. Pașca explains that early misconceptions about "cold mothers" have been replaced by the understanding of strong genetic components, particularly involving hundreds of mutated genes affecting synapses, ion channels (channelopathies), or chromatin structure. He notes a significant male-to-female ratio in diagnoses, suggesting biological differences in brain resilience and maturation rates between sexes may contribute to this disparity, alongside potential issues with diagnostic bias where females mask symptoms more effectively. To address these complex conditions, Dr. Pașca’s laboratory pioneered the development of organoids—three-dimensional clusters of human stem cells that self-organize over months or years in a dish—and assemblids, which connect multiple cell types to form functional circuits. These models allow researchers to recapitulate human brain development outside the body; for instance, neurons derived from patients with Timothy syndrome were observed to exhibit prolonged calcium influxes matching patient symptoms without needing direct biopsies of their brains. The technology also revealed an intrinsic cellular "timer" that tracks developmental stages independently of external cues, such as switching receptor subunits at a specific time point equivalent to human birth, even when the cells are maintained in culture for years. The research extends beyond autism to include severe epilepsy and schizophrenia, particularly 22q11 deletion syndrome, which is considered a high genetic risk factor for schizophrenia. By constructing circuits like the cortical-spinal tract or basal ganglia loops using assemblids, scientists can observe how cells find each other and form connections based on chemical cues rather than blueprints. This approach enables the study of intractable epilepsies caused by specific mutations that trigger hundreds of seizures daily, offering a platform to test gene therapies before returning them to patients. Dr. Pașca emphasizes that while animal models have limitations, these human-derived circuits provide unprecedented insight into how molecular defects lead to psychiatric and neurological disorders, moving the field from behavioral descriptions to precise biological mechanisms. Despite significant funding disparities where autism receives more attention than schizophrenia due to societal affinity for children and political correctness regarding terminology, Dr. Pașca advocates for studying severe forms of both conditions that require lifelong care rather than focusing solely on identity or mild traits. He highlights the devastating impact of disorders like dystonia, which often go underreported but have known genetic bases, and suggests that better nomenclature could help distinguish between profound disease states and neurodivergent identities. The ultimate goal is to demystify psychiatric illnesses by linking them directly to molecular defects, potentially leading to cures for the most debilitating cases where current behavioral interventions are insufficient. Dr. Pașca shares his personal dedication to this work, noting that he spends nearly all waking hours thinking about science and maintains a rigorous lifestyle involving over 12,000 steps daily and intermittent fasting inherited from medical school in Romania. His laboratory has trained hundreds of scientists globally through Stanford courses, amplifying the reach of these technologies beyond their own institution. The conversation underscores a shift toward leveraging self-organization principles in biology to repair or replace damaged circuits, offering hope for treating conditions that were previously considered untreatable. As Dr. Pașca reflects on his late colleague Lubbert Finkbeiner’s excitement about demystifying psychiatric diseases through molecular understanding, the episode concludes with optimism that these tools will eventually provide therapies for severe autism, epilepsy, and schizophrenia by targeting their root genetic causes directly in human tissue models.
Read the full video transcript
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 opthalmology at
Stanford School of Medicine. My guest
today is Dr. Serju Pusca. Dr. Sergu
Pasca is a professor of psychiatry and
behavioral sciences and the director of
the Stanford brain organogenesis
program. During today's episode, we
discuss autism, schizophrenia, and human
brain development generally, both brain
development during pregnancy as well as
during childhood and leading all the way
up to our third decade of life. During
today's discussion, you will get the
most up-to-date information about autism
and its treatments. You'll learn why the
prevalence of autism is rising, the role
that genes play in autism, and the novel
treatments that Dr. Pusca is developing
to treat what is called profound autism,
which are the most severe cases of
autism. Dr. Dr. Pusca is one of a small
handful of researchers that pioneered
the discovery and development of what
are called organoids and assemblids
which are essentially human brain
circuits derived from stem cells that
form in a dish so that one can study
them directly. And while that might
sound artificial today he explains why
those organoids and assemblids are
immensely powerful for understanding
exactly what is wrong in psychiatric
illnesses like profound autism,
schizophrenia and other psychiatric
challenges and for developing cures. So
today you're going to learn a lot about
human brain development and about stem
cells which is going to be important for
anyone interested in how the brain wires
up, how to treat various diseases of the
brain, but also for anyone who is
considering stem cell therapies. As
you'll soon learn, Sergu is an
extraordinary scientist, but also an
extraordinary teacher. By the end of
today's episode, you'll have the latest
information on stem cells, organoids,
autism, and what is being done to cure
autism and other psychiatric conditions.
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 zerocost 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. Sergu Pasca. Dr.
Sergu Pasca, welcome.
>> Thank you. It's great to be here. We're
old friends. Uh shared a laboratory
space years ago. We'll get back to that
a little later. In the meantime, these
days there's a ton of interest and I
think misunderstanding about autism.
As soon as the topic of autism comes up,
immediately some people will say, "Why
are we trying to cure this thing?" I
know autistic uh children and adults
that are delightful people that lead
functional lives. They might be a little
bit different or a lot different than
other people, but why are we trying to
quote unquote cure autism? And then
other people will say, well, there are
people with autism who need constant
care, who will never live independently.
Tell us about autism, what this spectrum
really is, and then we'll talk about
what your laboratory is doing to try and
literally find cures for the most
debilitating forms of autism.
>> Well, autism is a complex condition.
It's a spectrum, as you said. uh in a
way you could say autism and
neurodedevelopmental disorders.
It's behaviorally defined. There's no
biomarker. So in a way it's a condition
that is defined exclusively by observing
behavior which is actually the case for
most psychiatric disorders. Um but it's
essentially diagnosed by the presence
and absence of certain behaviors in a
certain period of time or up to a
certain age. And of course what
triggered I think a lot of discussions
in recent years is because the number uh
or the prevalence of autism has
increased. So now it's close to almost
3% of the general population which of
course it's a big number
>> 3%.
>> Almost 3%. Yes.
>> Wow. So it has increased even since I
was in medical school. When I was in
medical school actually was considered a
rare disease. The reason why I actually
studied autism because it was a very
rare disease and we had very few
resources. So we thought studying a rare
disease would be easier
>> but now we also know so much more about
this condition. So we do know for
instance that there is a strong genetic
component to it uh which for a while
obviously we we we didn't in fact uh in
early days the psychoanalytic
perspective dominated especially in the
50s and 60s. So it was thought that it
was resulting from having very cold
parents in particular cold mother.
>> Emotionally cold.
>> Yeah. Emotionally cold. It was the
so-called refrigerated refrigerator
mother hypothesis
uh of autism. And then in the 70s, some
of the first biological studies were
done primarily in twins
that show something quite remarkable
that if you have twins that are
identical, genetically identical and one
has autism, then the probability that
the other one has autism is very very
high
>> even with different mothers.
>> Sure. Yes.
>> But generally we think that there is a
strong heritable component to autism. So
that was like in the late '7s and really
just in the last 1015 years we've
learned actually that there are genes
associated with uh autism and with
certainly with very specific forms of
autism. So that's what we would call
generally profound autism today. The
conditions that are severe uh that are
causing an impairment uh they're very
often associated with other conditions
such as intellectual disability. So low
IQ, epilepsy. So because it is a
spectrum of course it creates a lot of
confusion uh and certainly there's no
doubt that uh there are individuals that
have autistic traits that are fully
functional in the general population but
the reality is also that there are uh
kids that have autism who are very
impaired and will require actually
lifelong care of sorts. You know,
another way of like thinking is about
autism is that autism is not one
disease. And I think, you know, no
psychiatrist or even biologists who
studying autism would ever consider that
this is one single disease. The way I
look at it um sometimes is like think
about the fever of the 19th century in
medicine, right? So you see this very
often in movies, right? They will say,
"Oh, he has a fever, high fever. He's
going to die from high fever." Well,
that fever could have been a viral
infection, a bacterial infection, could
have been cancer, metastatic cancer,
right? Could have been an autoimmune
disease. The treatments are very
different. But in that time, that's all
we knew. It was we were observing that
behavior in which case raising of the
temperature, but we didn't know the
biology. Today, we will use very
different treatments for those
conditions and some of them of course we
don't even treat, right? We just
observe. So I think
in autism research as it is the case for
many psychiatric conditions they are
defined behaviorally but there's a
disconnect with the biology very often
we don't have good biological we don't
have biological markers by definition
and so that disconnect I think creates a
lot of confusion
I have a couple of questions first of
all is the prevalence of autism higher
in males I've been told yes um if it's
3% overall is it um what what's the
distribution for males who are
>> the ratio varies also based on severity
but generally it's been one to four so
more more males than uh females
>> and uh we just recently had our
colleague Nero Shaw on the podcast who
basically said the difference between a
biological male and female comes down to
this SRY gene
>> not even necessarily on the Y chromosome
if if If a baby has the SRY gene, you're
going to get a fully functional male.
>> Yeah.
>> Um if not, you you're essentially
dealing with a female. So presumably
something about the SRY gene is
conferring a vulnerability to autism. I
think it's fascinating. Well, there are
a lot of discussions of course like what
causes this difference and you know some
discussions are just in terms of
diagnosis that perhaps some of the girls
are not getting diagnosed properly that
they're we do know that some of them are
very good at what we call like masking
the symptoms or so like
>> you know learning the skills uh social
skills and so like covering for that
diagnosis. But what we do know for sure
is that there are differences in how the
male and the female brain especially
around birth can actually take up
injury.
>> So think for instance about premature
birth. You know one of the best
predictors for a premature baby in terms
of outcomes it's actually to be a female
just in general females preeis will do
much better for whatever reasons you
know uh you know the way the nervous
system is built the resilience. We know
that the maturation stage is also
different right uh for the male and the
female you know think about like
acquisition of certain milestones that
happen much faster in girls they
generally tend to speak a few months
earlier to walk a few months earlier so
just the nervous system uh is maturing
at different uh uh at a different pace
and can take injury differently. So it
could be that that that uh is certainly
the cause. But at the same time and as
we were talking since autism is not one
single disease, it is very hard to point
out to one specific factor that is
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You mentioned that autism is diagnosed
by behavioral measures or the lack of uh
behavioral symptomology, what we call
positive and negative symptoms, which
can be confusing language because people
think positive means good. No, positive
is the presence, negative is the
absence.
>> Um
>> I haven't looked at this literature in a
while, but uh the last time I did, it
seemed that babies or young children
failing to uh focus their own gaze on
the eyes of other people is one of the
major diagnostic criteria. uh seems they
look at the face uh they'll they'll um
more holistically or they'll zoom in
just on the nose but they're not really
making as much eye contact. Is that
still a diagnostic criteria?
>> It's not part of the diagnostic
criteria. Um interesting. It's uh but it
is one of the features that has been
observed.
>> Uh of course it also has to do with just
in general like joint attention is one
of the earlier. So you know uh if you
just tell a child like oh look here
right? So if they kind like have that
attention, if they engage in that
attention, uh it's one of the features
that is associated with autism is not
certainly diagnostic, is not uh
pathogmonic, so to speak. So it's not
specific to the disease in any way.
>> Uh but there's certainly many deficits
and some of them can actually be
compensated later. Interesting. There
were some other things I've heard over
the years for instance that when
children with autism have a fever that
their symptoms improve. Is that still
the case?
>> Yeah. So those are mostly anecdotic
reports
>> um of patients who would have a very
high fever and then for instance they
were non-verbal. So many patients with
autism uh or individuals with autism
will have you know will be non-verbal.
they have very few words or if they you
know they're they're not able to
communicate and so there are few reports
of parents saying that when they spike a
very high fever they'll start talking in
sentences like very briefly or like
engage and in fact I mean that is known
uh you know kids in general when they
have a high fever they tend to be more
talkative it activates somehow the
nervous system there have been a lot of
hypothesis about this um some of them uh
having to do with how the neurodenergic
system is activating during fever.
Others saying that there are some of the
cytoines, the immune molecules that are
present during fever that are somehow
getting into the brain activating the
nervous system. And others as simple as
oh ion channels, right? Ion channels
will open uh more when the temperature
rises. So something about the circuits
functioning differently during that. But
it's it's mostly anecdotic uh at this
point. And it's certainly again probably
not present in all individuals with
autism. Also because autism is again not
one single disease. So we would not
expect it to be present in all.
>> A few years ago there was a lot of
excitement about the idea that autism
might somehow be related perhaps even
caused by deficits in the microbiome. Um
there were some mouse experiments of
doing uh fecal transplants from what we
call wild type or healthy mice into mice
that were uh had some symptoms that
resemble autism and there were
improvements observed um to the point
where I think there were some human
clinical trials using fecal transplants
um what ever became of that?
>> Yeah, I think again almost everything
has been associated or thought to be
causal but generally demonstrating this
is very very difficult. So you know we
cannot deny that perhaps improving the
microbiome will improve the you know the
quality of life of some of these
individuals but whether it's really
causal there's no um clear evidence for
it. Think about it just to give you
another example think about sleep. Many
patients
uh will report especially the ones that
are profoundly impaired will have severe
sleep disturbances. I mean 70 80% of
them you know they can have nights where
they sleep very little right then do
that for like a week so just imagine
even just improving the quality of sleep
for those patients can do miracle I mean
all all of us right if we don't sleep
for 3 4 days our social skills you know
we become socially impaired so I think
of course correcting uh a lot of this
issue so for instance many patients are
picky eaters you know they don't like
certain textures so they will never eat
for instance veggies right so that creat
In the early days, for instance, we
thought that uh you know there are
dietary disturbances that really at the
core. Of course, it remains to be seen
whether just simply correcting those is
going to be just improving or certainly
reversing um some some of the forms. But
again, most of the evidence points out
towards a very strong genetic component
uh behind it. And in fact, we now have
hundreds of genes that we know when when
they are mutated, they're strongly
associated with specific forms of
autism.
>> I'm curious uh what sorts of um proteins
those genes are upstream of. And I ask
because uh David Ginty at Harvard um I
think did these really beautiful
experiments where he induced mutations
just in the periphery so outside the
brain of these mouse models for autism
and saw a lot of the same symptomology
>> raising the question of whether or not
autism originates in the brain or
whether or not the deficits in the brain
are the byproduct of changes in the
body. Yes, microbiome but perhaps um
their skin, their hearing etc. are more
sensitive and maybe that's why they, you
know, you can imagine if you were ultra
sensitive to an environment that your
brain would eventually wire differently
according to kind of overwhelmed by what
was happening in the sensory landscape.
>> Yeah, absolutely. And those are really
elegant experiments that he's done. Many
of the genes, you know, they fit in
different categories like you would have
genes that would produce proteins that
sit at synapses, uh, which was sort of
like to be expected. Some of them are
you know ion channels. They're proteins
that would let ions inside or outside of
a neuron. There are many of these
conditions so-called channelopathies.
Then there are the ones that are like
synaptic related. So synaptopies there
are a lot of chromatin genes. So like
proteins that pack the DNA in cells
those are chromatinopathies.
Um so they're really again many many
categories of genes. And then what is
also interesting is that many of these
genes are also expressed in the
periphery. So I think the experiments
that you were mentioning are really
elegant because it showed that indeed
that can perturb the development of the
nervous system even if they're affecting
just the periphery. Of course now in
patients there are present also in the
central nervous system. So it's always
difficult to distinguish but just
missing some of the critical periods or
perturbing some of these critical
periods of development can have
certainly devastating effects later on.
So, if a parent comes into the clinic
nowadays um with a child that's
diagnosed with profound autism, what is
the treatment? Uh let's set aside the uh
the potential for epilepsy, which
hopefully they would treat as well, or
other things that might be secondary. Um
but what is the typical treatment? Are
they doing and let's assume infinite
resources, which of course nobody has,
most people don't have. But if one had
infinite resources, what would be done?
Would it be behavioral training? Would
it be something to control the
activation state of the brain? I mean,
as far as I know, there's no single
treatment for autism.
>> No, there's no single treatment for
autism. Again, in the context of this
not being one single disease, what we
can say today is that if um you know, a
family walks into the clinic with the
diagnosis of autism or perhaps like they
receive it into the clinic, there's like
a 20% probability that they'll leave the
clinic with the genetic diagnosis.
meaning that it will be pointed out to
them that this gene is mutated in your
child. And it may be sometimes a
mutation that was present in one of the
parents and got transmitted or maybe was
present in both and somehow you know the
child got two copies that were uh
modified now or many of the genes were
actually mutated denovo meaning that the
mutation was not present in either
parents but something went wrong during
development perhaps early in the sperm
cell in the egg cell or perhaps in early
stages of development and a new mutation
was acquired but that is also the we We
acquire a lot of mutations. All of us
they we have a lot of new mutations,
right? About like 80 new mutations. 30
of them are protein truncating. So
certainly the challenge very often is to
even when you see a a gene that is
mutated to know whether that gene is
truly causing the disease. So very often
the way we know is that we find many
patients that have a similar
presentation clinically. Let's say maybe
they'll have synacttoy. So they're
webbing of the finger and they have
autism and let's say epilepsy and they
all have a mutation in one single
channel let's say in a calcium channel.
So that would be timothy syndrome a
genetic form of autism where the
mutation is very clear actually there's
one single letter in the genome that is
changed and causes a relatively similar
presentation in all of these patients.
So about 20% of the patients will get a
genetic diagnosis. Now sadly that
doesn't do that much today because we
don't really have specific therapies for
those forms. I think the hope is that
perhaps we will have individual
treatments whether they're going to be
genetic or otherwise. So being part of
that community is generally useful and
then the rest of the patients will
essentially fit into this larger
category of idiopathic meaning that we
don't really know the precise uh cause.
I want to talk about Timothy syndrome
and I also want to talk about genetic
approaches for fixing genes so called
gene therapy. Uh before we do that,
would you be willing to just speculate
on why you think there's this fairly
dramatic increase in the incidence of of
autism? Uh people will always say, well,
maybe it's better detection, better
diagnosis. So, I'd like your thoughts on
that. And if there are increases that
can't be explained with that, I I'm I
just would like your thoughts. I realize
we're not talking um formal bioatistics
here. I just in your experience, you're
an MD, you think about autism a lot. Uh
you're working on potential cures for
autism and other neurologic conditions.
How do you think about this increased
prevalence issue?
>> Yeah. Well, the certainly the increase
is still puzzling, right? So I think on
one hand there's no doubt that the
changes in diagnostic criteria which
have happened over time I mean we had to
just refine what autism really is that
changed uh you know to some extent the
prevalence. We've also seen you know a
diagnostic migration so to speak. So
some children for instance you know 30
years ago would have been diagnosed with
intellectual disability
and today they fit the criteria for
autism. you know about a third of uh
individuals with autism also have
intellectual disability. So there is
also great overlap between the
conditions. So there's been a move
sometimes between the diagnosis over
time. Of course there are all kind of
discussions about you know availability
of services and to what extent that is
also contributing uh right but uh you
know we don't really you know we don't
truly understand all the reasons behind
like this uh this increase. There's
there's no doubt we can explain. We know
that it's highly heritable based on
genetic studies.
>> So we know the heritability is very
high, one of the highest for psychiatric
disorders that we know of. Uh but of
course we can we don't have the genes
for every single form. So it is likely
that some of them are very rare, right?
So essentially just think of it as like
you know they're individually rare form
but collectively common. So it will take
a while until we sort like map all of
them. And then of course there are
environmental factors that we do know
historically can contribute to this. So
there are various exposures to uh
environmental factors like in early days
uh talidomide for instance was one of
them that we know increases uh the risk
uh for autism. So of course those are
contributing but
>> but theomide was a drug given to
pregnant mothers to um try and prevent
miscarriage. Right. Exactly. It's no
longer prescribed.
>> It's no longer prescribed.
>> It's caused major birth defects.
>> Defects. Exactly. Yeah. So there there
certainly you know it's quite complex
because first of all the definition of
the condition is is quite difficult
right and I think that is in general
like the challenge with psychiatric
disorders right um and and perhaps one
of the reasons we've made such slow
progress in understanding these
conditions because of course the power
of modern medicine is in molecular
biology you know we like deploy this
remarkable force of an understanding and
in order to do that you You need two
things. You need first of all to u have
a very clear definition of what that
disease is generally biologically right.
Think about like myardial inffection you
know very clearly defined in terms of
like what it actually means. You
immediately have biomarkers right the
patient walks in you take blood you can
immediately tell yes in 20 minutes you
can tell that they have a myioardial
inffection based on a biioarker. And
then the other one which is certainly
very important which and to a large
extent is sort of like you know is the
source of all the work that we've done
is the unbearable inaccessibility of the
human brain so to speak and to a large
extent the human brain is inaccessible
for most of its development. And so if
you look actually across branches of
medicine you can see that there is a
very strong correlation between how
accessible an organ is and how many
cures or therapies we actually have.
Think even just in cancer, right? Think
about in cancer, you know, which used to
be, of course, uh an incurable disease,
right? A century ago, think about like
uh leukemas in children. They are like
90% lethal in the 50s and the 60s.
Today, there are maybe 10% lethal. And
that is because a lot from this
patients, right? It's very easy to
collect. we've been bringing it to the
lab, studying it like what what goes
wrong and then deploying molecular uh uh
biology to develop therapeutics with the
brain. Sadly, you know, there's no way
of doing it. And so largely to, you
know, what we've been trying to do is
like find a way of shortcutting that
process. But I do believe that the major
challenges that we're facing in
understanding brain disorders, whether
they're neurological or psychiatric are
on one hand, you know, the
inaccessibility of the organ of
interest, the brain,
>> and on the other hand, our challenges
are very often defining some of these
conditions with biological markers
because they're much more complex. The
degree to which correlation has been
leveraged to try and understand
neurologic disease is kind of
staggering. Um I'll just share a couple
and I would love your reflections. I
remember when I was an undergraduate and
in graduate school there was this
prominent theory that uh a mother who
contracted influenza, the flu um toward
the end of her second trimester had a
much higher probability of having a
schizophrenic child.
>> And there was so much said of that and
then now we barely hear anything about
it at all. Although I think
schizophrenia is more prominent at the
toward the poles where you have harsher
winters as opposed to around the
equator. But someone needs to check me
those uh on that because those
statistics might have melted away with
more careful analysis. I don't know. The
other thing is that you'll nowadays hear
a growing interest in uh populations for
which a given disease is very rare. So
one of the things that's circulating out
there now uh that's related to the
vaccine debate. And by the way, I'm just
going to I'll myself go on record. I
don't think there's any solid evidence
that vaccines cause autism.
>> And there's not epidemiologically.
There's no evidence.
>> There's not. I mean there's this open
question as to whether or not vaccines
of all kinds can increase inflammation
and there might be things downstream of
inflammation but for the record there
right now there are no published papers
that have not been retracted that uh
that support the vaccine autism link. Uh
I think those papers are being
reinvestigated under the new
administration but let's leave that
aside for now. people will say um well
you have groups like Amish populations
um where the incidence of autism is
significantly lower. Turns out it does
exist. I looked at these data but it's
significantly lower. And then people
will say well it's the absence of food
dies, it's the absence of of vaccines
perhaps, etc. But then as a genetic
disease we could say well there's also
uh there's a tendency for people in the
Amish community to reproduce with other
people in the Amish community. So, it's
a more restricted genetic pool.
>> And so, that could explain it as well.
And I raised this not to um create any
additional arguments. There are enough
out there between people, but just
because I think the correlative nature
of all this is what kind of raises the
opportunity for anything that's observed
like a fever, they get better. Uh but as
you said, healthy kids without profound
autism also talk more when they have a
fever. And so there's there's been so
much made of autism and the various
conditions that could create it. And I
think it's been very confusing for the
general public. Even as a as a you know
trained scientist, it's been very
confusing for me. I feel like every six
months or so, every year we have a new
uh pet hypothesis. Yeah. And um but
nothing's really except for these
genetic data, nothing really is rock
solid,
>> right?
>> And then of course it's the the other
issue is also that these conditions are
disorders of the human brain, right? So
if you think about it right even talking
about schizophrenia right hallucinations
right or or phenomena that are very
difficult to study and of course we
don't know this we know that
schizophrenia is present in almost every
population that we know of even isolated
population at 1%. Right? And again it's
a little bit easier because it's done in
adults right I think in children it's
much more difficult and in fact many of
the genes that were early on identify
for autism were identified in this
populations in the Amish populations for
instance there is a very classic example
of a gene that is associated with severe
epilepsy and autism that was identified
there for the first time it's present in
other places as well so uh yeah I I
think of course the the complexity of
the problem is that you also want to
make sure that you don't just associate
something, you also want to reverse it
in a way, right? So, you would want to
do the other experiment where you change
it and it goes away,
>> but you can never do that in the human
brain. We can't just turn things on and
off to see whether they're truly causal.
And then, of course, human brain
developments also takes an incredibly
long period of time,
>> right? If anything, it seems that the
human nervous system has done everything
possible to slow down that process,
right? I mean, we mileinate all the way
to the third decade, right? like neurons
are born and migrating through the
nervous system into early postnatal uh
years.
>> Wait, you're telling me that our our
neurons continue to get mileelinated uh
which of course for those that don't
know is uh the building of the
enchieathment that allows electrical
signals to be passed down neurons more
more um efficiently uh in until we're 30
years old.
>> Yes, there's evidence that myelination
especially in the frontal areas of the
brain are are continuing up to the third
decade. our uh unfortunately now
deceased uh former colleague Ben Baris,
he used to shout at people in labor lab
meetings. Yeah. When they'd say
something he didn't like, he'd say,
"What do you know? You're not even
milinated yet." So, he was right.
>> He was absolutely right.
>> Okay. So, if you're in a disagreement
with somebody younger than 30 and you
happen to be older than 30, you can um
leverage the argument. What do you know?
You're not even milinated yet.
Completely milinated yet. Um, all
kidding aside, before we get into the
incredible experiments that you're doing
and the direction that you're taking to
tackle these really hard diseases, I
have to ask two questions. First, is the
incidence of autism also increasing
outside of the United States or is this
something unique to the United States
and Northern Europe? Um, I don't know
why we always pair those two or I should
just be fair to the United States and
Australia or whatever. Um or is there
something going on in the United States
in particular that autism is increasing
faster here?
>> Yeah, I know this the you know the so
like the prevalence for autism you know
has been actually reported to be higher
in other countries even before this.
Some of the early reports many years ago
show that in Korea for instance you know
the the prevalence was very high. uh now
that the studies are done uh also like
in Scandinavian countries it shows that
it's probably around the same um you
know kind like rate one in 30 to one in
40 so somewhere between
>> okay so it can't be whatever is uh
attached to whatever United States
specific um conditions I mean uh well
because you hear these arguments oh you
know it's the glyphosates in the in the
the crops in the United States and while
I don't favor that argument. I I do
think we need to be cautious about
what's in the food supply, but
absolutely um those same people often
will uh leverage the argument that well
in Europe they're not using these
things. Well, if the incidence of autism
is the same and rising, that sort of
does away with the at least the clean
logic of that.
>> And perhaps another argument which is
very important to, you know, bring is
that we find the same mutations, right?
I mean, the same mutations if we're
talking, let's say, a mutation, a
specific calcium channel, you know,
you'll find it in a patient in Denmark,
right? As well as like one in Africa or
in let's say Australia. So, I think some
of the genetic mutations are sort of
like the same.
>> Yeah. Could we briefly talk about gene
therapy and crisper just briefly because
I think in the context of a discussion
about these neurologic diseases for
which currently there aren't
>> perfect cures or even cures in many
cases uh gene therapy does hold some
promise.
>> Yeah.
>> Um in simple terms uh that I and
everyone else uh can understand could
you just explain what crisper allows
physicians potentially to do? In other
words, can genes be fixed in adulthood?
Do they have to be fixed in the embryo?
Um, just give your thoughts generally
about about crisper and gene therapy
because I think most people have heard
of it. Yeah. But I think most people
don't have an intuitive sense for for
how it how it works.
>> So gene therapy is a rather actually
broad term and it covers many ways in
which you can correct generally a gene
or a genetic defect that we think it's
causal. So on one extreme for instance
you can envision a gene is broken has a
mutation. So what you want to do is you
want to put it back. So those were some
of the early efforts where you would put
it in a virus and deliver it to the
patient an adult
>> in an adult or in a child depending on
like the condition with the idea is that
the gene is not there or like there's
not enough of it so I'm just going to
deliver more. That's one extreme. Does
it inject into the blood or do you have
to go into the specific cell type that's
lacking the gene?
>> Many of the studies were done for uh
blood disorders of course because it was
easier. So you would inject them. Uh uh
of course the other possibility
sometimes you don't want to put the gene
you want to put the protein already
made. And that is the case for many
conditions where an enzyme so a protein
that you know does some interesting
chemical reactions that are essential to
a cell is missing. So sometimes you just
make that enzyme and then you deliver
that. It's not always working but in
some cases actually uh works really
well. Now the other thing that you can
do is you can try to correct that defect
directly. That means you need to operate
at the DNA level. So somehow you need to
get into every single cell that is
affected
uh and correct that. And that's where
crisper uh comes into play where
presumably you could at one point uh
deliver um you know the guides so the
tiny pieces of nucleic acid that tell
you where to go on the DNA and then an
enzyme they will do the cutting and then
the putting back or various other
versions of this that you would correct.
Of course there are challenges with
that.
>> Yeah. Where do you put it? I mean so
like for cickle cell anemia I know
they've essentially reversed cickle cell
an anemia using crisper technology
that's in the blood right in the blood
it's of the blood right but if for
instance we know about a a genetic
defect of let's say a mut we'll talk
more about this soon but a mutated
calcium channel that disrupts heart
function and brain function
>> and you come in with crisper you know
what the what gene is mutated you have
the healthy gene that potentially you
can put back where do you put it do you
inject it I mean injecting into the
heart is possible
um into the blood supply obviously
easier. Um getting it directed to the
bone marrow
>> um but to the brain is hard.
>> Yeah. Well, presumably you could inject
into the brain as well, right? There are
ways in which you can inject through
either surgery or through an injection
in the spinal canal like intrathecally.
So that's certainly one way in which you
can do it. It is very challenging though
because of course the brain has a lot of
cell types and you know you very often
the way you deliver this like through a
virus or through other modalities you
know there's only so much of that virus
that you can actually put inside the
nervous system and the efficiency is not
yet like very high. So another way is to
go like one level down so that gene will
produce an RNA that will produce a
protein. So perhaps we don't have to
correct the DNA everywhere, but perhaps
we can correct something that happens
downstream. And that's so like been the
strategy that we've been using primarily
just mostly because at this point and
probably in the future it will be
possible. who knows like in 10 years or
maybe even earlier we'll be able to
deliver very uh effectively some of the
genetic therapies using crisper
>> because certainly in um non-human
primate models things like um
>> color blindness have been rescued by
introducing a gene through a when we
talk about viruses people often will
think oh goodness why would I want to
get injected with a virus but we should
just mention there are things like adn
noiruses which cold viruses are adn no
viruses that can be um engineered so
that they don't make you sick, but they
can carry a cargo like a gene you want
to put into a nervous system or or body
that lacks that gene. So when we say
using viruses to deliver genes, it's uh
it's of the benevolent type or at least
benevolent motivation. We think that
that those adnoiruses can live in our
body for a long time without causing
additional trouble
>> and they're very often modified to make
sure that they don't cause disease. M of
course another limitation of that is
that if the gene is really large it
simply won't fit in a virus. So for
instance that would be the case if you
think about a calcium channel. Calcium
channel is a gigantic gene. It will be
very difficult to fit uh inside a virus.
Then of course the other thing is like
with these viruses very often especially
with the adeno viruses or aavs is that
you will have one shot meaning that you
have to inject once uh and hopefully
would work because next time you know uh
you may have an immune reaction right
you'll have you'll produce antibodies
and so you won't be able to deliver
again. So there again there are all kind
of challenges that you know people are
working really hard to solve and I have
no doubt that in the next decade we'll
see you know therapies or you know
perhaps even cures for some of these
conditions of course and I think you
were bringing this up one of the
challenges like when we do this
>> because especially for disorders of the
brain neurodedevelopmental disorders so
autism and other neurodedevelopmental
disorders the question is always how
early it is too late
>> you know how how much damage has it done
has it been done and how much can I
actually correct and that's one of the
things that you know we're only now
starting to really explore as we're
thinking about some of the first
clinical trials in the space
>> this might shock you a bit but um folks
in the quoteunquote biohacking community
not me um are getting I know some that
have gotten folstatin gene therapy as a
body enhancement thing so they're
leaving the country because you can't do
it in the United States and literally
getting injection of a of folstatin gene
uh therapy um to I guess have more
muscle to you know improve that. Uh I
wouldn't do it personally. Um I also I
like working out so I I don't need a
full statatin uh gene therapy but it's
interesting to note that people are
doing this and I'm raising this as a
segue into a discussion about stem cells
um because people around the world are
getting injected with stem cells in the
United States. It's still not allowed by
FDA for most things. Um, but I think
gene therapy has started.
>> It it's certainly begun. It's but it's
not the sort of thing that your
physician offers up uh early. It's still
very experimental for most things.
>> And then for gene therapies again in the
context of what you're mentioning is
some of this again they're irreversible.
Mhm.
>> So once you put the gene in, you know,
and it goes into a cell, let's say
through a lentivirus that will
integrate, you can't take it out
anymore, right? That would be very
difficult. It would get inactivated over
time, but so that's why we have to be
extra careful with some of this
therapies and, you know, make sure that
we don't do more harm, right? Which I
guess it's always what we try.
>> Absolutely.
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Let's talk about stem cells, organoids,
and assemblids, and you'll explain what
those are. Um but let's we wade into
this through the uh the way it happened
chronologically.
>> Sure.
>> Um most people have heard of stem cells,
cells that could become other things. Uh
when I was a posttock,
any laboratory that worked on human stem
cells worked on human embryionic stem
cells. Literally cells that were
collected from aborted fetuses. This was
and given for a medical study. there was
an incredible discovery which you'll
tell us about which basically made that
technology obsolete and also allowed um
scientists to bypass a lot of the
ethical considerations serious ethical
considerations regardless of where you
sit on that debate. I mean you're using
the the
>> the tissue from a human embryo to to
study things. You could say some people
will support that some people won't but
then a new technology comes along.
>> Yeah. and basically makes that
technology obsolete allowing you and
others to do the work on stem cells and
assemblids and so forth without having
to take cells from human embryos which
is spectacular. So could you please tell
us about that discovery of the uh stem
cell technology that really changed the
entire game and did away with this
ethical um serious ethical battle. Let's
call it what it was. Let's start first
with stem cells and what they are
because I think it's also important uh
to define them. So stem cells are cells
that have two properties. First of all,
they in principle can become other cells
and if they are of the most potent type,
they will be totally potent. So they can
make everything. If they're plur potent,
they can make almost everything. And
then of course there are, you know,
lower levels of potency for the cells.
So we all carry stem cells in us right
not in the brain or few are in the brain
for sure but you know in the liver and
in other organs like in the gut as we
renew the gut uh you know every few
weeks that is done primarily through the
stem cells but those are restricted they
can make everything they can make mostly
that specialized cell type for which
they have been so like primed. Now the
earliest earliest of stem cells like
those pur potent that are very important
those are present at early stages of
development of the embryo. Um and of
course that happens postconception. So
the challenge has been that you have to
remove them from a fertilized uh egg and
if conception if life starts at
conception then of course you're
interfering. So I think a lot of the
ethical debates have started because of
that but you know in early days even if
you were to do that you wouldn't be able
to keep those cells. Turns out that the
cells are very difficult to maintain.
And this brings us actually to the
second property of the cells, which is
that in principle they can be maintained
forever. If you provide the right
conditions, they will divide and stay
the same forever. Those are the two
properties. So, uh you know, you can
keep them forever. You can freeze them
down, put them in a you know, liquid
nitrogen, bring them out any time, and
they'll start exactly where they left.
And then with the right guidance they
can become other cell types.
So only around you know 1998
that it was that when we could actually
maintain some of the cells in a dish. So
somebody figured out a soup of chemicals
that you can add and the cells will
survive because after that point it was
not possible. So that triggered of
course the promise of this field that
now would be able to take those cells
and derive various organs right perhaps
transplant them replace organs. Uh of
course that ended up being much more
complicated and of course there were all
this ethical debates related to the
source of those cells and what does it
actually mean to use this embionic stem
cells and yet we've learned a lot about
those cells in early days. what are the
properties of those cells? And then
almost 20 years ago, uh Shiny Yamanako
is a scientist in Japan at the UCSF came
up with an absolutely brilliant idea.
You know, we were always thought that
the development the development of the
human or of any it's it's a one-way
street. Once you go down development,
you never come back. So once you start
making you know a stem cell that is more
restricted and then at the end you make
let's say a liver cell you can never go
back and become that plur potent stem
cell again and that generally is thought
to be useful to protect us from like
cancer or like any others where we don't
have you know parts of our hands like
differentiating into something else
and he thought that maybe you could do
that not in a natural way in an
artificial way and that of course would
be very useful. So what he did is he
went and he looked at the genes that are
expressed in plur potent stem cells at
very very high levels. So very very high
levels and almost as gene therapy
because we were talking about gene
therapy. He took like like the top
couple of dozens of these genes and then
started adding them inside skin cells.
So he took skin cells initially from
mice and then from human and then
started adding them one by one, 2x2,
3x3, 4x4, 5x5, 6x6 to see whether any of
those cells once they have this
combination of genes that are expressed
in purip potent stem cells would somehow
get confused and think that they're
actually a pur potent stem cell and then
go back in time and actually become a
plur potent stem cells. And he showed
indeed that a combination of four is
enough. Of course you can have six. And
that ended up being what we today call
the Yamanaka factor. Uh in in a way it
was like it was almost like alchemy,
right? Where you sort of like, you know,
transform something into something else,
right? You make out of this metal, you
make gold. It was pretty much like that.
It was like the essence of alchemy.
And it turns out that that discovery was
so profound because suddenly you could
take a skin cell from anybody and put
those genetic factors in, turn those
cells into plur potent stem cells that
would later on learn they're almost
identical to those embryionic stem cells
and now have those cells from any of us
and use them for various purposes
perhaps for let's say making blood cells
in the future or perhaps to you know
model something outside of the body and
I was finishing my clinical training
around that time and I remember even
seeing that paper and of course in my
naive at that time I thought wow this is
it this is going to be you know the
entry point for studying human
neuroscience I was doing experiments at
that time studying actually the cortex
and recording from animals electrical
activity of those neurons and always
like thought it's like saw this
disconnect between what I was seeing in
the clinic which were these patients
with severe profound autism
and then recordings from the brain and
thinking we're never going to be able to
do that, how are we going to understand
this complex disorder of the brain. If
we cannot even listen to the activity of
those cells live and then suddenly like
seeing that discovery uh you know again
naive at that time thought well that
could be perhaps the way in which we
could make neurons from any patient. And
so very soon after I came to Stanford
which I guess where we met uh with sort
of like this idea in mind that we will
be able to make neurons from this
patient and rebuild maybe some of the
cells or some of the circuits of the
brain outside of the body without doing
any harm because we're not doing a
biopsy of the brain or anything
invasive. just essentially creating a
replica of some of those cells outside
of the body and then finally study them
at will in a dish and do all kind of
experiments where you remove things and
add things and perhaps at one day even
develop therapeutics. And here we are 16
years later uh since that process really
started. took a long time, but now for
the first time we've gotten such a good
understanding of some of these
conditions and one of them in particular
that actually a therapeutic is insight
and we're preparing for the first
clinical trial that is really arising
exclusively through studies done with
this human stem cell models without
actually using any animal models just
essentially creating recreating cells
and circuits outside of the brain of
those patients. It's amazing because it
allows you to study human cells which
has immense benefit. Um they're
essentially limitless in number
>> because all you need is one fiberblast,
one one skin cell or or some cell that
you can
>> provide these Yamanaka factors
>> uh to and essentially grow other cells.
Um, and we'll talk about what those
cells that you create are capable of
becoming, not just cells, but circuits.
Yes. In a few moments. But, um, I know
it's going to be in the back of people's
minds and certainly in the back of my
mind. Uh, this idea that when one has a
baby that you should, uh, keep the
umbilical cord because the umbilical
cord uh, contains stem cells. Usually, I
think the umbilical cord is discarded.
Maybe some people keep it. I don't know.
Um, what is the current thinking on stem
cells that reside in the umbilical cord?
People pay a lot of money to freeze
those and most people don't have a a
minus80 uh freezer around so they pay to
do that. What What is the potential for
umbilical stem cells in the future? Is
it something that parents
>> I don't want to say should invest in,
but if they have the disposable income
uh that they would be wise to do that?
So those cells uh that are collected
from the umbilical cord are stem cells
but they're already quite restricted in
what they can make.
>> So their applications are also
restricted mostly to blood disorders. So
I think it's it's important to keep in
mind that they're not so like a
universal
uh you know solution to anything that
would ever involve plur potent stem
cells in the future or stem cell
therapies in the future. So again, I
think it's important to know while that
while they have certain applications and
there have been quite clear cases where
the availability of those cells were
useful in a blood disorder in that child
later on, um they're certainly not, you
know, they have these universal uses as
maybe sometimes they're being
advertised.
>> When we hear about people typically
leaving the US uh to get quote unquote
stem cell injections, where are those
stem cells coming from? Are they coming
from those patients? And I should
mention that there was a clinic down in
Florida um that was offering stem cell
injections into the eye for people with
um macular degeneration and that clinic
was shut down. And all stem cell
injections in the United States, to my
knowledge, all were shut down because
those patients uh not only did it uh
fail to rescue their vision, it actually
made them go blind very quickly.
>> Uh so the FDA shut down uh commercial
stem cell injections. I think there's
still places where they do a kind of a
workaround. Yeah.
>> Um and it's worth mentioning that PRP
plateletri plasma is FDA approved. It
does not contain many if any stem cells
despite what you might read. Um but what
what are your thoughts on like when
people go down to Colombia, it seems
like they go down to Colombia uh or
elsewhere to get or Mexico to get stem
cell injections assuming the conditions
are are clean. Um, and I I say that
because I know of at least one patient
who was paralyzed from an injection of
stem cells into their uh spinal disc,
>> paralyzed, almost died.
>> Yeah.
>> Fortunately, is doing better now and it
was because it went septic that got
infected.
>> But well, that's one of the problems
very often we don't even know what is
being injected.
>> I think that is like a very important
aspect. We don't know what is in
sometimes are the cells from the patient
that are being collected. Mhm.
>> Sometimes some of this umbilical cells
sometimes we don't even know what cells
are being injected.
>> Like it could be cells from somebody
else.
>> Yeah. They're incredibly risky
procedures of course that never really
been observed. There have been very few
of any clinical trials trying to really
address it in a very systematic way. And
very often that's also the case you know
that's also because they're not really
justified. So in the context of autism
this is very often like done uh you know
and it's done not just in South America.
Sometimes there are places in Europe
where you can get an injection of some
stem cells for autism.
>> Wait, parents are taking their kids to
these clinics and getting them injected
with stem cells that come from some
other patient.
>> Some some some cells that are collected
either from the patient, you know, it
depends a little bit on where it's done
and how it's actually done.
>> But again, even from a biological point
of view, you know, what are those stem
cells presumably doing? Let's say in
autism, you know, we don't think that
there is a cell type that is missing in
the brain. So, it's not like those cells
can go. And I think as I was mentioning
before most of the cells already
restricted in their potential they can
no longer make any cell type. So you
know the idea that you take these plur
potent stem cells uh and you just inject
them let's say in the knee and it will
like miraculously grow you know
cartilage it's uh very often not really
the case because those cells are not
even capable of making cartilage. So I
think there's you know very often um you
know a lack of understanding of what
these therapies really are and then of
course there is sadly a lack of
understanding what of what is actually
being injected. So uh you know for
autism this is unfortunately happening
much more often that you would think.
>> So I very often get like parents uh or
families that are asking me desperately
you know we've like exhausted all
resource we don't know what else to do.
We've tried behavioral therapy. we've
tried this therapist, nothing works and
everybody's recommended that we should
just go now to South America and do this
injection. Should we do it or not?
Right? And of course, my answer is
always like no because again there's no
reason that that would work. Some
parents come back and of course they
report an improvement
and uh which is generally uh temporary
uh to the extent that we know of course
it's never really been studied in a very
systematic way. Partly it's of course
there's a very strong placebo effect uh
which you can you know especially in
parents like by proxy when you have a
child who's like very sick those placebo
effects are very very strong. These
parents really want those kids to
improve. So they will see things that
are improving plus those are still
developing kids. So week by week they
may acquire new milestones. And then the
other thing uh which of course could be
part of this is that there is an
inflammatory effect very often and so
that's almost like the fever in a way
right like would increase perhaps some
of the cytoines will create a fever
perhaps that is associated we don't
really know but certainly there are
dangers uh associated with the you know
with like procedures like this that are
you know lack the rationale first of all
and then of course then they lack any
regulatory uh um you know framework
work.
>> Yeah. I mean, I think the the concern is
very real for stem cell injections into
all tissues, but when it comes to eyes
or brain, and of course, eyes are brain.
Yes.
>> Uh that's where I just, you know, take a
big deep breath and hold it and like
wide eye like, oh my goodness, no.
Because
>> we don't get new neurons. Uh you lose
neurons, they're gone. I mean, we get a
few in the alactory bulb in the dentate
gyus of the hippocampus, a few. But, you
know, once they're gone, that's it,
>> right? And um injecting something into
the brain, the the probability of tumor
growth is is incredibly high.
>> Absolutely. And especially when it is in
the brain where there's not enough
space, right? So we know that anything
that grows in the cranial cavity will
actually push down right vital center.
So there are certainly risks associated
with that.
>> So let's talk about the other approach
uh which is the one that you are uh
you've been embarking on. I'll never
forget when we were posttos folks. We
were posttos in the same room. It was
D222.
>> Yes.
>> Uh we had a lot of pride in that room.
We had benches on opposite sides of the
room and
>> we sort of uh took over that room as an
empty room. This is you probably
couldn't do this anymore, but was like
there's an empty room. Let's bring some
microscopes in there. We just started
doing experiments there. And I'll never
forget um when you
started building organoids, you started
building nervous systems in in a dish
and how excited you were and uh and it's
been remarkable to see your your arc uh
to from that. Um and it's not lost on me
that you were working extremely hard
then continue to to become what really
one of the luminaries of this field. Um
tell us what organoids are. tell us why
they're useful and
what they're telling us already about
how the brain develops and their
therapeutic potential.
>> Yeah.
>> So let's start from the beginning. So
around like you know 15 16 years ago we
were able for the first time to get some
of the cells that are now known as
induced puripotent stem cells.
>> These are the Yamanaka.
>> Yes. Or IPS cells. IPS. So induced
because they've been induced to become
plur potent in an artificial way but
again they stay like that. So you can
share them with anybody else like
afterwards. So we got some of those
first cells in those early days and now
the question was how do we make neurons
and what you do is you really kind like
leverage the everything that is known in
developmental biology. Right? So we
already know that there are certain
molecules that are very important for
making neurons. So all you do is you put
those cells in a dish, right? In a
plastic dish, in a petri dish, and then
you start almost like when you cook, you
start adding various molecules on top
and you see what happens. And we knew
that it's actually quite easy to make
neurons. That was already known. There
have been a lot of experiments done the
decade before that showed that even if
you just remove some of the factors that
maintain those cells pur potent those
pur potent stem cell will start not to
differentiate and they like to become
neural cells
>> by default
>> almost by default. So it's actually not
that difficult to make neurons. So in
those early days you know you'll take
those cells play them nicely those plur
potent stem cells in a dish and then
remove some of these factors and then
within a few days you'll see that
they'll change shape and within a few
weeks some of them will really look like
neurons
and uh when you look at them you can
even sort of like look at proteins that
only neurons will have you can actually
get an electrode inside a cell and
listen to the electrical activity. So it
was very exciting as maybe you remember
in those days. Uh I mean you know this
uh bursting curiosity is always sort of
like uh you know the ATP of the li the
you know the life in the lab so to
speak. It is
>> right. I mean you just like like want to
wake up right and want to go see what
happened to those cells.
>> And it was clear in those days that you
know we would be able to make those
cells but would we actually see any
abnormalities in those cells? I think it
was like the question, you know, how
would you know if you derive cells from
a patient with autism, how would you
know that you found anything abnormal? I
think that was like uh the question
what, you know, we didn't even know what
would be abnormal in the brain. And so
that's when we decided actually to focus
on something that would be relatively
predictable. And that was this mutation
in a calcium channel which was
discovered just a few years before in
very few patients that had essentially
one single letter in their entire genome
changed in a gene that makes a protein
known as a calcium channel sits in
excitable cells meaning cardiac cells
and brain cells. And every time a cell
receives electrical input, this protein
opens up and lets calcium go inside the
cell. And that's very important because
it couples electrical activity of the
network with chemical activity inside
the cells. And what we knew about that
mutation at that point, that's pretty
much all we knew in those early days is
that it probably
allows the channels to stay open
slightly longer, just a little bit
longer, so more calcium would go inside
the cells. Of course, there would be no
way to know because you can't get a
neuron or a cardiac cell from those
patients to actually test it. So, what
we did is essentially we made uh we
recruited some of these patients, we
flew them to Stanford. Uh then we got a
tiny skin biopsy, made this IPS cells.
This takes months. This takes already
like four or five months. And then we
took those cells in a dish, started to
deriving neurons. And after about 5 6 7
weeks then we put them under a
microscope and we started looking at
calcium. You can measure calcium inside
cells through a microscope and just
literally look at it. And I'll never
forget that day um you know when we did
that experiment was looking down the
microscope and we essentially stimulated
the neurons and you could just see how
control cells will go calcium goes
inside the cells and then it goes out.
And then in patients that had timidity
syndromes in timothy syndrome derived
neurons you could see how the calcium
will go and then it will stay longer. It
takes longer to go out. So it's like the
first defect that we saw in patientder
derived neurons that were actually not
coming from a biopsy. They were not
coming. So that was incredibly exciting
as you can imagine but it was still
relatively simplistic. Just a few
neurons at a bottom of a dish. Of
course, for me, what was particularly
frustrating was that we couldn't go very
far in development. So, think about the
cerebral cortex, the outer layer of the
brain that presumably makes us human,
right? Has multiple layers, a large
diversity of neurons. You know, it takes
27 weeks to make all those cells in the
cortex. 27 weeks to make all those
neurons. And we're not even talking
about gal cells, the supporting cells
that are coming much later for several
years afterwards. But just making those
cells takes about 27 weeks. And it turns
out something that we discovered in a uh
through experiments done in a dish is
that the timing of the development of
those cells, it's actually recapitulated
in a dish as well. So if you keep the
cells in a dish, they'll actually
essentially develop at the same pace.
They're not like much faster. And it's
very difficult to keep neurons in a dish
for 27 weeks to get all the neurons.
essentially they peel off, you know,
every time you start to move them to
another plate and at one point they just
die. And so then we thought, how about
like never letting them to sit down on a
surface? How about just essentially
aggregating them as bowls of cells and
then letting those float? And in those
early days there was this uh amazing uh
scientist from Japan, Yoshiki Sasai who
started doing uh really beautiful
experiments where he was already moving
some of this studies that he was doing
of development in 3D cultures. So he
show you can make an optic cup a part of
the eye. And so it was clear it was in
the air this revolution of actually
moving cells from 2D flat cultures to 3D
self-organizing. And that actually
unleashed amazing uh new properties of
the cells. So essentially all we did in
those days is I ordered from Germany
this plates that were counterintuitively
coded so the cells never stick right. I
mean every time we keep cells in a dish
you want them to stick. That's the major
problem. So they were actually coated so
the cells will never stick. And then
there were like this bowls of cells.
They were floating there. And of course
I I remember uh talking in the lab and
everybody was like oh they're not going
to survive. It's going to be a couple of
weeks and they're gonna and then a week
passed and two week passed and then they
kept growing and growing and of course
the enthusiasm of every every day to see
are they still alive right and then we
discovered that we can keep them for
months. Uh and this three-dimensional
cultures uh are now known as organoids
which is perhaps not the most fortunate
name because it suggests that it's
organike and of course they're not an
entire organ. So they're not a
representation of the entire brain, but
that's sort of like the term that we
refer these days to anything that is so
like three-dimensional and organizing in
some way. And so we started keeping
these cultures. And then at one point
actually we discovered that we can
pretty much keep them indefinitely. My
lab maintained the longest cultures that
have ever been reported like literally
going for years for two three years in a
dish. And at one point uh in those early
days when actually I was running out of
funds in the lab and I came one day in
lab meeting really
uh you know determined to for us to
actually like cut cost. So I've told
everybody go into your incubators
because we're spending so much money in
feeding the cells and everybody throws
out 20% of your cultures. And then
people started saying so should I throw
the ones that are like 500 days old? and
somebody else was like the ones that are
800 days old and I said what you guys
are keeping them for such long yeah
they're just keep growing they're in the
incubator. So then we actually did the
first study and then we had a series of
three studies done over the years of
like trying to ask how far do they go in
development. So if you have a clump of
human neurons that you've made from
pluropotent stem cells and you keep
feeding them in a dish how far do they
go in development? Do they move much
faster? Do they move much slower? Are
they stuck at one point in development?
And it turns out that they actually keep
track of development beautifully to such
an extent that for instance we discover
when they reach nine months of keeping
them in a dish. So about the time of
birth they literally switch to a
post-natal signature
>> really
>> on their own in a dish
>> in a dish. So you know there's this
classic example in developmental
neurobiology. There is this uh uh
there's this uh protein that usually
changes around the time of birth. It's
an NNDA receptor. So maybe some people
know about NNDA receptors. They're
binding glutamate. They're very
important, but they change a lot during
development. They're made out of
different units. And the units change.
And it was very well known that during
early development, so prenatal before
birth, you primarily have 2B subunits.
And then after birth, they're primarily
2 A. So if you look in brain
development, you just see how
essentially 2B goes up and then it goes
down and 2 A goes up. And when you look,
they meet around birth. So very often
people thought that it's birth itself
that triggers that switch. That
canonical, it's called a canonical
switch cuz we all thought that it was
like so classic. And then you take an
organoid that you maintain in the dish
for 600 days.
And of course, we're not inducing birth.
We're not changing media. We're not
doing anything special.
>> Yeah. No hormones from
>> no hormones changes like you know we
keep exactly the same media which is
certainly a very simplistic uh uh you
know kind of like soup of chemicals but
we don't change it and then you just
look at these two subunits and you see
how like 2B goes down and 2 A goes up
and they pretty much meet that nine
months of keeping them in a dish.
>> It's amazing.
>> So that tells us that there's some sort
of intrinsic clock once you start a
development the cells measure really
really well the time of development.
That does not mean that all aspects of
development are going to now be
recapitulating in a dish. But it tells
us that there is this incredible ability
of cells especially in the nervous
system because of course those cells
will keep for the rest of our lives.
We're not never going to renew neurons.
It's going to be different for liver
cells or gut cell but for neurons
probably in particular they'll need to
keep track of time really really well.
So that was like the first discovery
that we've sort of like made which is
still stunning today. We still don't
know the mechanism. We're still working
really hard on figuring out exactly how
the cells are keeping track of time
because as you can imagine if we
understand what that molecular machinery
is. We used to call it the clock. We now
call it a timer. We think it's more of a
timer than an actual clock. Uh but
understanding what the molecular biology
of that is will allow us actually to
play with that clock. Right? So if you
want to make neurons that are you know
70 years old neuron from a patient with
Parkinson, you know I don't have to wait
70 years in a dish. Could I make it in
like a few weeks? Or perhaps could I
take an aging neuron and somehow, you
know, rejuvenate it by playing with that
with that timer? But just to make it
clear, we still don't know that, you
know, we have some clues about like what
it may be, but I think it's still early
days. And I think that was like one of
the first things that this cultures
allowed us uh uh to do uh just watch
development, human brain development
outside of the human body in a dish and
actually witness that some fundamental
aspects of brain development are
actually recapitulated even outside of
the uterus and of course of the prey. So
that that was like the first and then of
course I guess I'm a developmental
neurobiologist by training and you know
I've done a lot of circuit work in early
days of course an obsession of mine was
that especially for conditions as
complex as autism and schizophrenia we
need to recapitulate some of the circuit
properties of the brain right so we now
know that you know probably both for
schizophrenia or and for autism it is
very unlikely based on the evidence that
we have so far that there cells really
missing from the brain. You know, we
thought for a while that maybe some
cells are missing or maybe other cells
are in, you know, in excess, but now the
studies that have been done, especially
with single cell profiling of brains of
patients that have already died showed
us that the composition of the brain of
the cortex in particular, it's very very
similar. So, it's unlikely that the
cells are missing or like uh but likely
the way they're connecting with each
other is that makes a difference. And of
course, in the beginning, we were just
making this clump of cells. They're all
for the cortex, but they're like not
connected to anything else. So then uh
came the idea of assemblides
because most of the cells in the brain
connect with cells across the nervous
system. And in fact, even more
interestingly, cells do not reside in
the place in which they're born in the
nervous system. We have the largest cell
diversity of any other organ. Almost
2,000 cell types. By the end of the
first trimester, there are about 600
cell types in the human brain. You know,
think about the liver, right? Maybe a
couple of dozens. The brain has to make,
you know, hundreds of times more. So,
how do you do that? The only way is to
actually make the cell types in
different parts of the brain, provide
local cues there, and then once the
cells have been specified, let them move
and find their final position. So the
first assembly that we've actually made
were of a very stereotypical canonical
movement of cells in the nervous system
which has to do again with the cortex.
So the cortex again the outer layer of
the brain has both excitatory and
inhibitory neurons. It turns out that
most inhibitory neurons are not born in
the cortex but they're born deep in the
brain. So essentially all we did is we
made two brain regions. the ones that
has excitatory neurons and the one that
has inhibitory neurons and the plan was
to put them together hoping that at one
point you know the cells will like so
like know what to do and in fact that
was like one of the first projects in my
lab kind like planning that and I
remember gave to one of the students
like this very difficult task of
figuring out how we're going to fuse
these two cultures and they're about 3
mm in size so you can see them by eye
and I thought it's going to be very
difficult to put them together so the
student worked for for months trying to
figure out like biological glues
you know, kind of like using various uh
electrodes and impaling them and
everything else until somebody else came
one day and said, "Look, it's very
simple. You just put them at the bottom
of a tiny ependorf tube, which is the
tiniest like of tubes that you get. You
put them there overnight and next day
they're completely fused. But they're
not just fused because now if you look
inside within a few days, the cells that
are supposed to move start to actually
point out towards the cortex. They
literally smell the chemicals from the
cortex and they start to move in this
very stereotypical way towards the
cortex. And so that was the first
assemblid made around 2015. And I still
remember it was Ben actually. Ben was so
excited. Ben Baris was so excited about
like seeing the cells. So he wanted to
look at these movies every day. And then
um he said I still have this email from
him where he was very preoccupied that
he kept saying like this new preparation
is not an organoid. It's not a steroid.
It's something else.
>> You have to find another name.
>> He loved naming things.
>> He loved naming things and he understood
the importance of naming things. Not
just for like career reasons, although
he understood a lot about how to build a
career, but because naming
like Yamanaka factors made sense to name
it after Yamanaka, he got a Nobel uh and
uh is immortalized that way like stem
cells immortalized. Um but I think the
naming is essential because otherwise um
things can get lost in in the technical
details.
>> Yes.
>> So who came up with the name
essentially? So, so he kept insisting
that I should find the name. So, I made
this long list. I still have like the in
my notebook like I had a long list of
about 20 and I would like keep sending
Ben one and you know like Ben was always
awake like 24 hours.
>> Yeah. He didn't sleep much.
>> He never slept. No. So, I remember one
after sending many emails going back and
forth and he was just like no bad name.
Bad name. I don't like it. And then at
one point I thought well oid because
it's like and then assemble because
we're assemble the circuits. So I
thought Assemblid and I sent this and
says perfect. I love it.
>> So you named assemblids.
>> I name assemblids and Ben sort of like
uh blessed like one night at like 3:00
a.m.
>> And so that was the first assembly and
the first assembly was for cells
migrating. But then the question was
cells have to find each other and form
circuits. And so within a couple of
years we started making assemblies that
will have exxons. So the long
projections of neurons finding other
partners
and uh you know how forgot who said this
must have been Rodolf Felinas or you
know who said that the brain is sort of
um you know the next evolutionary step
towards movement
>> you know so like the nervous system
there's been this theories that has
evolved as a way of like moving around
>> that was Sharington Sharington said the
final common path is movement he was a
physiologist he was kind of vague in
statement, but I think he was
sharantine. And I don't doubt that
Ralpho said something about it, too. I'm
not going to try and take anything away
from Ralpho. Anyone that knows who
Ralpho is. He's not somebody you want to
piss off.
>> Well, we should check it like who
actually said it.
>> Yeah, give him credit. I like Ralpho.
>> But but for us that became like the next
objective like can we actually build a
circuit that will have a very clear
output so we would know that we've
actually built that circuit. So what we
did is essentially we thought about like
the simplest circuit for movement which
is like the cortical spinal tract.
Right? So that means that a neuron in
deep layers of the cortex, sends a long
axons all the way to the spinal cord,
finds a motor neuron, makes a
connection, then the motor neuron leaves
the spinal cord, goes to the muscle. And
essentially, you only have these two
neurons, right, that are connecting with
each other with the muscle. Two
connections, one between the two of them
and one with the muscle. So the simplest
of circuits that you can have.
>> No, let me move my big toe,
>> right? Exactly.
>> It's pretty pretty long distance if you
think. It's a very simple and of course
like in other species a little bit more
complicated. It turns out that in mice
there's an additional neuron there. So
there are some changes that uh you know
happened over evolution but for us and
in primates it's it's as is as simple as
this. So what we did was we essentially
made an organoid that resembles the
cortex and has some of those neurons and
then we made an organoid that resembles
the spinal cord and has some motor
neurons in it. And then we made a ball
of human muscle that you can make from a
biopsy. You can literally biopsy a
muscle, you get the myoblast, you grow
them and you get a nice bowl of of
muscle. And then of course the the
challenge was that you know the reality
is that we don't know how those cells
find each other. Like in development we
know some of the molecular cues that
they use but it's we're far from having
a comprehensive understanding of how
they find each other. And I remember we
were sitting down in the lab and kind
like thinking I resisted actually doing
this as the first assembly in the lab
for a while because the probability was
like against us like those cells in the
cortical organoid that are less than 5%
the motors are less than 10%. So the
probability that they find each other
perfectly and in enough numbers to
trigger muscle contraction was close to
zero. And yet you do it. You put the
three parts together. You let them
assemble and within a few weeks you can
actually now stimulate the cortex with
whatever you want to use with an
electrode with light and then the muscle
starts to contract. And in fact the more
you do it the more reliable the process
is. And then of course we went on to
like reverse engineering it and figure
out that indeed the cells have connected
in that precise way.
So I think what we started actually to
realize was that of course a lot of stem
cell biology was you know and I think a
lot of biology was based on chemical and
physical factors that we were leveraging
but we've never truly leveraged this
kind like next level of um law or power
in biology which is self-organization.
The ability of a biological system of
build it itself. If you think about it,
the human brain builds itself, right?
There's, of course, there are
instructions, but there's no blueprint.
There's no plan that the brain
constantly looks to make sure that it
actually made all the connections
properly, right? Instructions are sort
of revealed at every step for kind like
the next step. Uh, and it mostly comes
from the cells uh finding each other. So
I think what we also started to learn
from this was that all we need to do is
make the parts and if we make the parts
right then the parts will come with the
instructions and then the circuits will
assemble on their own. And so that has
been really kind like the the beginning
of it. And of course it became
progressively more difficult to build
circuits. And so of course if you put
two you may think oh let's make three
and if you make three can you make four.
So actually we just published a few
months ago the first four-part assemblid
uh that actually now reconstitutes the
pathway that processes sensory
information in the nervous system. So
you think about the cortex, you know,
sends out uh to control movement and has
an output, but it receives information
from the outside constantly and that
happens through neurons that sit close
to the spinal cord, have projections in
the skin where they sense uh tactile
vibrations or pain stimuli, send that
information to the spinal cord. From the
spinal cord, they cross, they go up to
the phalamus in the middle of the brain,
and from the phalamus, they go to the
cortex. So this is a four-part pathway.
So it took us years first of all to make
the parts um and then to put them
together and then again the beautiful
thing about it is that while we still
don't know all the rules of assembly you
can make this fourpart we call it the
sensory assembly or a somat sensory
assembly because it turns out that the
sensory neurons that we can make are
mostly sensory neurons that sense pain
stimuli and so uh you can actually put
the four parts together. So the sensory,
the spinal cord, the phalamus and the
cortex. And you have to put them in that
order. If you change the order, the
cells will not find each other. So you
just have to create the minimal
conditions for them, making the right
cell types, putting them in the right
order, and then they'll find each other.
And within a few weeks, it takes, you
know, hundreds of days to build a
circuit like this. But the beauty of it
is that suddenly you look at it and you
just see spontaneous activity that
arises in the entire pathway just starts
to flicker all in sync. Can you use this
assembly to study the effects of
different pain medications?
>> Yes. So that is certainly one potential.
The other thing that you can do and the
first application that we've had was for
genetic forms of pain condition. So we
very often think that genetic
conditions. So where you have a very
clear cause so like entry points like
like Rosetta stones for understanding
anything. So there are this interesting
mutations in a sodium channel. So
another channel but the sodium channel
turns out that if the channel is
overactive because of a mutation you'll
have excessive pain. So this patients
are highly sensitive but then if the
channel is essentially unable to
function then this pain that these
patients have loss of pain and that's
equally bad. Many of these patients
actually will die because they can't
sense pain at all.
>> Yeah. I think people don't realize that
in mutations where people can't sense
pain um people fail to make the postural
adjustments
>> that um allow you to stay alive and or
to because you uh they unfortunately
they can be resting a little bit too
much on their right leg. We we normally
think okay no big deal but you're
constantly making these postural
adjustments. If you don't do that, you
actually uh can damage, right,
>> the legs that you're, you know, you're
pushing down too hard on. Seems like a
trivial amount of weight, right? It's
your own body weight, right? But we fail
to recognize just how often we're
redistributing our u our position.
>> No, no, no. And it's absolutely true.
Like feedback in general is very
important, including through like this
uh painful stimuli through all stimuli
in general. And it turns out that if you
now make essentially a four-part
assemblid that carries the mutation that
causes excessive pain, now the sensory
neurons are excessively active. So they
keep bursting with activity throughout.
And then we thought we're going to take
it out. And of course in these patients
they can fire. It turns out it's not
true that they can fire for some reason.
There probably other channels that are
helping them compensate, but they fail
to engage the rest of the pathway in a
synchronized way. So that's why we need
the four parts and I think that's why
assemblies generally are going to be
very useful because they're emerging
properties that are arising from the
interactions of the cells at distance in
the brain and likely many disorders and
of course are very far from
understanding complex disorders such as
autism. Uh but certainly this
interactions fault interactions at a
distance in the circuits are probably
going to be you know key to
understanding the biology of these
conditions and hopefully at one point
like reversing them. I'd like to take a
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to get early access to function. So, I
want to discuss an ethical consideration
concern. But before we do that, I I want
to um take a step back and um just have
you reflect. I mean, I I will never
forget the first time I learned neural
development like sperm meets egg and
then you get cell duplications and then
the embryo figures out what's going to
become muscle, what's going to become
nervous system. And it's really a um
it's a humbling thing.
>> Yeah.
>> To be able to realize that we understand
even a small bit of that. Yeah.
>> Um and very little was known until you
know the uh sort of early parts of the
last century really is uh where some of
the defining tissues and interactions
were first discovered. It was a
relatively young science. Um nowadays
I'm even more humbled by it
>> because um one only has to see a child
that you know nine months ago didn't
exist and you and you really start I
mean most people understand how babies
are made um and yet
>> it just kind of it's staggering and I
think what's so staggering about it
what's so miraculous it it really is
it's a miracle is the self-organizing
aspect of it and now I'm hearing that
these self-organization
knowledge of the cell's own knowledge
about what they should do and when is
maintained. Uh, and I also have to just
um both
highlight again and um applaud the fact
that regardless of where one stood on
the uh embryionic stem cell debate,
you're describing assemblids that were
made from essentially taking a
fibroblast, a skin cell exactly from a
patient or from a non-patient, a a
healthy person that doesn't at least
doesn't have that mutation, putting them
in a dish, reverting them to stemness
through the Yamanaka factors, then
giving them certain things to drive them
towards neuronal fates and then other
fates, putting them together. And none
of this involves the use of aborted
tissues.
>> No.
>> May I ask you this? If today
you could bank your fibroblasts turned
into a few neurons, um would you do it?
um knowing that those cells could
eventually be used to create any tissue
like I hope you live a very very long
life Sergio but let's say when you're a
hundred your heart has an issue we
humans can do heart transplants
>> um from another human there immune
rejection issues there um pig hearts
have been transferred into humans but we
could potentially you could potentially
build a heart that is of your cells no
immune rejection why wouldn't you bank
your cells
>> I think you you can collect them at
anytime in principle as long as you
>> can get them on your 99th birthday.
>> I think you can still get them for sure.
It could be an argument
>> time folks,
>> right? So it could be an argument made
that all the cells are going to be aging
so they're going to be some changes
happening in those cells. Maybe they
have some Yeah, that could be an
argument made about it.
>> On the other hand, what we're also
seeing with some of the cell therapies
that are just being developed now more
broadly is that um they don't have to be
necessarily personalized. So they don't
have to be made from your own cells. Uh
because uh you know you can use
imunosuppression. That's one way in
which you can do it. So you can
transplant the cells from somebody else.
>> Uh of course that poses more challenges
if you think about the brain. Um
replacing large parts of the brain which
certainly is like
>> you know far into the future. Careful
whose brain you're talking about. Yeah
certainly. But in general like uh you
know you can see how in the future we
may have like offtheshelf
right. uh cells that have been made uh
from a generic individual uh that you
transplant with imunosuppression or
cells that have been genetically
modified so that they're not rejected by
the immune system. So they're compatible
with all of us that it's much more
likely to become a therapy that is
broadly used. Uh I think so that's why
I'm not that worried about like
harvesting my own cells like right now.
Where do you sit on this idea that at
some point in the not too distant future
uh we will be able to immortalize entire
organs within our body? Perhaps not
ourselves, but our colleague Michael
Snyder, chair of genetics at Stanford,
told me um that he thinks that at least
in my lifetime, I'm a little bit younger
than he is. Um I'm almost 50. uh forget
how old Mike is almost 70 but he said at
least in my lifetime um that
immortalization of tissues human tissues
will be possible he doesn't think that's
a a a fantasy
>> yeah I think different people mean
different things by immortalizing
something we generally
you know think like for in vitro studies
or for an addition study when you
immortalize something it means that the
cell is maintained forever but it
generally involves using a cancer like
factor giving them cancer properties. I
mean the cells that are immortalized if
you think about it are either the stem
cells
>> that we talked about or the cancer
cells. So we always have to be careful
about like what it means to actually
immortalize a cell
rejuvenate cells. That's kind of like an
interesting concept. Will we be able to
actually rejuvenate ourselves even if
they're aged? So a lot of discussions
have been um happening lately whether
you can actually use the Yamanaka
factors
not to the extent that you completely
reprogram a cell but that you just use
them you know just a little bit so that
you rejuvenate the cells uh not fully
but as you can imagine those are
complicated experiments right they're
going to have to be tuned you need to
control very carefully the dial there
>> micro doing yamanaka factors
>> right because you would actually you
risk moving into another uh uh state. Uh
but you know you know that may be
possible at one point.
>> Yeah. I thought that at one point one of
the concerns of using Yamanaka factors
and this whole technology
therapeutically was that you could set
the reversal in age of cells back to
stemness back to stem cells but then how
do you stop them there? Um and also how
do you send them? I mean ultimately it's
not a stem cell that you want. You want
a fully differentiated heart cell or
neuron. You want to stop there, right? I
mean the idea being uh for anyone trying
to reverse their age. I mean how far
back are you willing to go?
>> Right. Right. And it's true when you use
the Yamanaka factors or a combination of
them because you know we've discovered
afterwards that it's not just those
factors that can do that. There are
combinations of other factors that can
do the same.
>> So there are various combinations. There
is a lot of redundancy in that pathway.
Okay. And if you hit the right
combinations in a cell at the right
time, you can push it back in time.
>> Uh now of course the challenge is that
uh you know that reprogramming is full
in the sense that everything is going to
be erased if if the reprogramming is
done properly directly all the
metilation. So all these metal groups
that you put across DNA that you know
accumulate with age are going to be
removed. uh all the sort of like the all
the signatures of you know are
essentially removed so the cell is truly
rejuvenated as like in the beginning and
as you mentioned you know perhaps you
don't want to do that right fully
>> uh can you do it in a way that is a
partial reprogramming as some people
refer to
>> um but but certainly that these are
still like early days for that certainly
it's a possibility
>> I think for most people if I said look
uh scientists are developing um
engineering ing eyes that can replace
eyes for uh people that are blind.
>> Maybe one eye, maybe both. They'd say
great,
>> you know, you're curing blindness
effectively.
>> Um and people are trying to do this.
Neurolink is doing this. EJ Chashonki
and Dan Pelanker at Stanford are trying
to do this. Um if I said you know there
are um scientists and companies trying
to develop chips so that um paralyzed
people can walk again or that people who
have locked syndrome can speak again
>> uh through one modality or another
they'd say great but if I said
there are scientists who are building
assemblids in a dish so that maybe you
don't have like two hippocampi you of
three.
>> Mhm.
>> You have a super memory.
>> Yeah.
>> I think most people be like, "Whoa, slow
down. You're playing God.
That's not okay." And as a parallel
example crisper gene therapy, which we
talked about earlier,
>> Yeah.
>> was employed by a Chinese scientist to I
think it was to mutate the HIV receptor
>> to modify Yeah. two individuals, two
babies.
>> Yeah. So there are at least two babies
that we're aware of and probably more
around the world but not terribly many
who for whom crisper was used to make a
genetic modification. Um those babies
were carried to term and it wasn't to
fix any particular disease. It was to
confer them with something additional.
>> Yeah. To to prevent in this case to
prevent
>> presumed transmission of HIV from the
mother
>> which is not necessarily justified in
that case. So
>> right uh did the mother have HIV? I
think the idea was that yeah to avoid
maternal transmission uh to the fetus
>> you would like not have that but there
are other ways in which that can
actually be avoided so in this case it
was not perhaps the best choice of a
disease to correct and I I think that's
why the scientific community has been
quite outraged by both guess the
rationale and the way the experiment was
done which was not following certainly
>> yeah yeah the uh the scientific
community as you as you said um was very
upset about that which brings us to the
question of ethics.
>> Yes.
>> So I'm sure being really familiar with
this technology that you've thought
about a number of ethical issues that
aren't going to occur to me or perhaps
you've heard about things from the
general public or from physicians and
psychiatrists. What are some of the key
ethical issues that come to mind when
thinking about how assemblids are going
to be implemented as eventually
treatments for disease? Yeah. So we
think a lot about like the ethical
issues and we think this as a group at
Stanford that's part of like my center.
Uh we have like Hangley who's a
professor of law and an ethicist. Uh but
actually we've engaged uh many ethicists
sociologists of religions. We're
actually going to have the first meeting
at aar this November on the ethics of
neurorgonoids assemblids and their
transplantation. And you know there are
various ways of classifying the ethical
issues. The way I sort like think about
it is that on one hand there are ethical
issues that are related to the cells. We
are taking cells from a human and so you
expect that you have received proper
consent uh for the use of those cells
whatever that is. On the other hand if
for instance you put them into an animal
then there are ethical issues related to
that animal. Are you doing any harm? How
do we manage pain in the in that animal
that has been transplanted? And then
there are sort of like issues that are
at the interface between the two. So for
instance, are there any emergent
properties that are arising at one point
whether they're like in a dish or maybe
perhaps in an animal. How complex can a
circuit like this become? Is there any
form of learning of computation? Of
course, some people have raised the
issue that perhaps there is sentience or
awareness, consciousness. Are they
feeling pain? So for instance that has
been like one critique for one of the
recent work that we've done. Of course
in that case we know you know the
emotional component of uh pain is
processed in different brain regions. We
don't have those uh in a dish. So we
know that they're not really feeling
pain. We have the pathway of pain. But
also speaks to the fact that we need to
be very careful about how we communicate
this type of research. Even just using
terms that are trivializing can actually
create a lot of confusion. And the
classic example in our field has been to
call this preparations this organator or
assemblids to call them mini brains.
Right? Then it may seem like as a
trivial joke that it can do anything uh
you know any harm. But you hear that for
the first time scientists have made mini
brains in a dish right and what do you
think? You think oh it must be a
miniature human brain that they're
keeping in a dish right isolated. And of
course that's not true. We have not made
the entire nervous system. We can make
parts of the nervous system. We can put
them in various combinations, but we've
never made the entire brain. Actually, I
don't know of any scientist who has as a
goal to try to build the entire nervous
system as an exact replica uh of the
brain. So, I think the words matter uh a
lot and in fact that has been uh you
know one of the things that we've done
over the years. uh a few years ago I
thought it would be really important to
get most of the scientists in the field
together and start thinking about these
terms really carefully and so we got
together created sort of like an ad hoc
consortium and through many many calls
one-on-one in various groups we came up
with one paper which was published in
nature a couple of years ago really
comes as a nomature for the field we as
scientists decided these are like the
way we classify them these are the terms
that we all agreed should be used
uh and not use not for instance
um you know project let's say complex
terms onto this. We'll never say that an
organoid like sees just because there's
a retina right? We'll never say that a
cortical organoid has intelligence
because that's a property of an entire
nervous system. So we think that this is
actually quite important especially in
communicating with uh the public and
that that consortion turned out to be an
actually great exercise of getting
everybody together and now thinking what
are some of the common practices that we
should all use when we report this
experiment. So we just had a few months
ago another paper uh that came also as a
perspective in science where in nature
where we also uh lay out so like the
framework for the field. I think this
also speaks to the fact that we're
entering sort of like a new era in
science where I think you know you would
say all these labs are working
separately they're competing with each
other and yet we all got together you
know 25 or so labs discuss some of these
issues reach some consensus you know and
I think that moves the field forward and
I think in general in science we will
need more and more of this collaborative
efforts because the science is getting
more complex biology is getting really
really complex and there's no one single
app that can solve all of Yeah. Yeah, I
completely agree. I think uh some years
back collaboration became the norm as
opposed to the occasional thing. And uh
I always thought that laboratories
should be named after projects, missions
as opposed to individuals. But that's a
that's another story. Well, kudos to you
for thinking about these issues so
carefully and for gathering people
around them um in order to come up with
nomenclature.
>> Going back to this issue of naming, what
things are called is so critical. It's
so critical and and we see this in the
public health sphere. Um you know when
people talk about gain of function
research now you know it's rarely
mentioned that you know gain of function
studies are critical for understanding
things that it's not always the case
you're mutating a virus. It's like gain
of function as a general technology.
More specificity of language I think is
going to be immensely beneficial. So
appreciate you doing that.
>> And these terms change with time. I
think it's also important to like
mention that our understanding evolves.
science progresses and sometimes there
are things that we thought we understood
and then new techniques come and change
that. You know, I think it was Sydney
Brener who said that progress in science
usually comes from a new technique that
will yield new discoveries and that will
create new ideas. So you know you think
you understand something and suddenly
you have a new machine that can measure
it much better with more precision or
let's say you have this technology when
you can now recreate some of the
circuits and suddenly new ideas come out
of it new discoveries and then we
rethink and we adjust and I think that's
the beauty of science that in a way it's
selfcorrecting
as we get a better and better
understanding of the world around us
>> also essential for people to hear
because I think whenever science or
medicine comes out and tries to correct
itself
Um, often the general public, not all,
but components of the general public
will go up in arms as, you know, similar
to like a teenager realizing that their
parents also um did some bad stuff when
they were younger, and they're like,
"See, I shouldn't believe anything you
say." It turns out, um, science is a as
a whole, I think, is a very
well-intentioned endeavor.
>> Um, you get your occasional bad apples,
but I think that, um, this notion of
selfcorrection is it's fundamental, just
like engineering's gotten better. Yeah.
the phone you use now doesn't look
anything like right in terms of
technology or speed of the phone you
used 10 years ago likewise with with any
any technology
>> that's why it's so important that both
when we communicate as scientists to the
public we use terms that are not
trivializing I think very often we're
we're told like you know try to simplify
so that the public understand the public
understands much more than we think
>> you know there are always ways in which
you can explain something without
trivializing it without using a new term
or uh you know some comparison so that
they understand that because very often
an analogies can also be dangerous. Uh
right but I think uh you know I I always
like assume and that has sort of like
been my you know my mantra that you know
somebody really has when you explain
even to the general public that you know
they have zero knowledge and yet you
know infinite intelligence right I think
as as the saying goes in science. So I
think there are always ways of
explaining science very simply but also
communicating that science changes over
time that there are new understandings
that are correcting the science and
we've seen this of course in medicine
we've sadly seen it in psychiatry right
many many times by labeling relabeling
doing treatments that perhaps were like
not the most uh uh you know fortunate
right over time uh but I think it's
important to tell the public that you
know we're you know always trying to
move towards I think most physicians
that I know most psychiatrists that I
know are really motivated by really
trying to make their patient better.
>> So let's play a uh
a game where if I say um if you take two
human cortical neurons
>> Mhm. or three or five or 10 or a
thousand that were you developed from,
you know, one of my fibroblasts and you
put it into a mouse or a non-human
primate like a macac monkey. I think
you've still got a mouse harboring a few
of my neurons or a macac monkey
harboring a few of my neurons. At what
point does that animal no longer uh
become strictly a mouse or strictly a
primate? Um, and then the parallel
example of course is let's say I could
get some neurons from fiberblasts that
were made from you and those were put
into my brain,
>> right?
>> Um, at what point do I become more Sergu
like than uh Andrew like?
>> So, how do you think about those
questions? And it while it might seem
too early to consider those, we've
learned through history that it's never
too early to start thinking about the
ethical implications of of a technology
like this where there's transplantation
involved. No, it is absolutely not too
early. Actually, it's uh the right time
to think about this is as experiments
are actually being planned, not when
experiments have been done. A
>> good point.
>> And that's what we've been that's what
we've been doing. And that's why
actually,
>> you know, all experiments that we do
undergo ethical approval at Stanford. We
uh you know, and I think at most major
institutions, right, and certainly in
the United States, you have to first
propose what you're going to do uh
especially with pluropotent stem cells
and especially with animals. and a
committee you know will decide whether
that is acceptable or not. Now of course
there are experiments that perhaps are
not necessarily legal but you know when
you like try to break a new frontier but
I think what it's important to think
about like this process of transplanting
or transplantation that you take cells
and you put them either in another
individual or another species is that
what really matters a lot we've learned
now is the timing when you actually
transplant those cells. So it turns out
that the brain,
the adult brain is not very permissive
to forming new connections. We don't
form that many. We may form small
connections. There's a lot of plasticity
at the connections, but we don't have,
let's say, in our adult brains, we don't
have cells that are moving now across
the nervous system. We don't have entire
pathways that are being rewired. You
know, you're never going to have a
cortical neuron that just simply regrows
and now connects to a spinal cord
neurons, which is why injury to the
nervous system is so devastating, right?
there's so little recovery because the
cells are usually not um you know not
essentially rejuvenating. There are no
cells that are replenishing them. It's
not just that there are no cells to
actually replace them. It's also that
the cells are just not that eager to
connect with other cells as they are
early in development. And so years ago,
we've discovered that, you know, while
we can keep some of these cultures in
the dish for very long periods of time
and connect them in ever more complex
assembly
like dozens and hundreds of assemblies
that people have made and not just in
the nervous system, actually even
outside of the nervous system because
now there are assemblids of cardiac
assemblids and endometrial assemblids.
And so the concept sort of like took
over and I'm I'm glad to talk about it.
We're going to have the first conference
on assemblies at Cole Spring Harbor this
year which is sort of like to bridge
across fields and try to understand
complex cell set interactions. But even
with this most complex assemblies we
realized that the cells are still
missing cues that are present in vitro.
So a few years ago we were doing an
experiment looking at some of the
neurons that we made in a dish. And uh
you know these neurons in the cortex are
very often called pyramal because they
look like a pyramid. They really have
this beautiful triangular shape and
we're looking at the neuron. It looked
beautiful exact like a pyramal neuron.
And then around that time we got a piece
of tissue that was removed from a child
who underwent surgery for epilepsy. So
when you sometimes have to undergo the
surgeries, intractable epilepsy is
really severe. Uh maybe you talked about
this like previously you have to remove
some tissue and when you remove some of
that tissue you also have to remove some
healthy tissue. And so we got some of
that healthy tissue and of course we're
always like eager to understand how the
cells that were made in a dish are
similar or dissimilar to the ones in the
actual brain. We like need to benchmark
before we use that for a therapy or for
anything else. And we compare one day
some of the cells and we realize to our
amazement and I don't know how we'd
never noticed it or nobody has really
like made a big deal out of it but the
neurons that were making in the dish
were about 10 times smaller than the
ones in the cortex on average. I mean
there are kind like miniature versions
of what was happening and so it was like
of course immediately was like what is
happening in vivo? uh you know is there
something you know as they say in vivo
veritas very often right we know this
has been the case for immunology that
many experiments in vitro have not
always panned once you actually study
them in an actual patient so that's when
we actually started to also use
transplantation meaning we started
thinking could we actually put some of
the cells in an animal and see whether
they acquire new properties or they look
much more like this of course
transplantation has been used for 40
years many of these experiments were
done before I was born especially in
Sweden uh when scientists will actually
take various cells and transplant them
into animals. And so what we did we
started doing is like taking actual
organoids cortical organoids and then
transplanting them into a rat aborn rat
in the in the somato sensory cortex. So
the so like the the part of the brain
that senses uh it receives information
from whiskers
and done that we we've done that in the
first few days after birth and it turns
out that that was key because if you do
it later the cells don't really
integrate that well they integrate but
they don't fully integrate and if you
transplant that organoid into the somato
sensory cortex of the rat and then you
wait for a few months that graph starts
to grow the cells become vascularized by
the rat They will even receive
microglea. The immune cells of the
nervous system of the rat start to
populate. And then when you use look on
an MRI, you now can see that about a
third of one hemisphere of the rat is
now made up of human cells. So you can
see really from on an MRI from the
ventricle to the PR. Now you may think
that that's like an inert piece of
tissue that sits there, but it turns out
that it is quite well connected to the
host. And that happens because the brain
is still eager to connect at that early
stage of development but later on is
not. And so for instance you can do
experiments where you can actually
record the activity of human neurons and
at the same time move the whiskers of
the rat. So if you move the whiskers of
the rat onto the opposite side obviously
because the pathway is crossed then
human neurons now start to respond to
that. And then the I think probably the
most important consequence of that is
that they receive now input. They're now
in an environment that is much more
physiological. So when we now looked at
the cells, it turned out that they're
like six to eight folds larger than when
we were making the dish. They're not yet
identical replica, but they're very very
close. And that for us has actually been
key in started to actually understand
the biology of some of these conditions.
So for instance, for Timothy syndrome,
there is a very dramatic effect in the
size of the neurons. They're almost
twice as smaller than a control neuron
>> in the patient.
>> Well, in the patient, only when you
transplant the cells, we can see that
defect. In a dish, you look at them and
they're identical. And then you
transplant them and some of them grow
really large to control and the patients
fail.
>> And that phenotype can only really be
seen properly in vivo. So that has been
actually essential also as we've been
developing a therapeutic for this
condition. And you start thinking like
how do you test a therapeutic?
um you know if there's no animal model
of the disease you test everything in a
dish you do want to have uh some safety
check first of all for making sure that
there are no adverse effects but also
you want to make sure that it works in
an invivo environment and actually turns
out that this model that we've built was
essential because now we could take
actually the animal
and inject the therapeutic into the
nervous system of the animal but look at
the effect on human neurons in an invivo
context and uh you know so I think
that's one application for this but if
you do the transplantation at an later
stage like for instance in an adult that
integration will probably not happen
>> I see
>> so it's quite dependent on the species
and there's another thing the farther
away the species are the less likely it
is of course that the cells will
integrate
>> so you know think about it takes just a
couple of weeks for the rat to make the
cortex it takes us 20 weeks to make most
of the cortical cells
So the human cells are always behind.
The rat is finishing development very
quickly. The humans are trying but
they're keeping their pace. So the
integration between the two species
happens at some level but is not
perfect. And that's actually not our
goal. Our goal has never really been to
have perfect integration. All we wanted
to do is to have a better system where
we can capture aspect of disease that we
wouldn't be able to see in another way
or test therapeutics that we wouldn't be
able to test in any other way. And so
that's where this actually comes in
handy and it's been very useful.
>> It's so interesting that for most
people, again, I'm making a lot of
assumptions here, but for most people,
the idea of a of a chip of a, you know,
electrode implanted into the brain of a
patient or spinal cord of a patient
isn't that um disturbing to them. I
mean, no one would choose to do that in
the absence of a clinical issue. But um
well there are some people who are
interested in brain augmentation through
the implantation of chips to create
super memory or to be able to um you
know process more bits of information
and whatever whatever capacity. But
typically it's discussed in the
therapeutic context. But as soon as we
hear about for instance um you know a
pig heart or baboon heart was was
transplanted into a human you know all
of a sudden it's it gets to some really
core things about our humanness.
>> Yeah. And then of course uh I can't help
but uh be reminded of all the anecdotes
that you hear where oh you know a
patient died had donated their heart um
to medicine the heart was transferred
and then the person who received it
thought that maybe they had adopted some
features of the person's experience and
there's a you know you can't really do
the control experiment but there's a lot
of interesting questions that that
border on mystical
>> but that um you know given that
experience is mapped into the nervous
system it's not inconceivable that you
would have memory traces at least of
bodily experiences built into the organ
system. Although typically we think of
that stuff as in the brain. So you know
as I hear and learn more about these
incredible assemblids um I'm very
enthusiastic about where this is headed.
Um I also of course think that treatment
of disease is the is like the primary
entry point. this is what you know as
opposed to building
>> you know superhumans which is I think
why that crisper experiment mutating the
HIV receptor was also disparaged there
was this idea that maybe the HIV
receptor in the absence of HIV is
performing other roles related to
learning and memory and so there was
this there were kind of hints of eugenic
type approaches um and that raises a
question for me
>> you mentioned that there are many genes
that are associated with autism
>> I think most parents or parents to be
don't make a test for those genes. Uh
there are companies like Orchid in the
Bay Area now that will do uh deep
sequencing of embryos in IVF. You know,
they'll do depending on how much you
pay, they'll sequence more. This was in
the news a few weeks or months ago. Um
and people people start thinking, oh,
this is like eugenics, right? Um on the
other hand, partner selection, who one
chooses to have children with, is its
own form of genetic selection.
>> Say, oh, you know, uh he's very kind,
she's very kind, she's very smart. you
know that there people are basing their
decisions uh hopefully according to
features that they would like to create
in the offspring. It's not always the
case but so I think sometimes the the
boundary between you know what we call
eugenics
>> and uh mate selection and uh creating
offspring in the purely oldfashioned way
it's a it's blurry. It becomes a
continuum. How far off are we from
genetic testing of parents
>> um as a kind of uh obligatory thing
>> now that we know some of the genes
associated with autism
>> um we test parents for um things like
Tay-SAC cickle cell anemia um congenal
adrenal hyperplasia um things that we
that are almost deterministic
>> yes
>> um
>> down syndrome right tricome um and in
some countries they'll implant embryos
that are uh not as we say uploid um you
know the the proper assortment of
chromosomes but in um in the US
typically that's discouraged.
>> Uh so
>> how do you think about all this? Like it
um I mean you're not responsible for
deciding for everyone but you're right
at the kind of leading edge of of what's
possible and you can kind of sniff
what's going to be possible. I mean how
much information should a person
thinking about having a child have in
order to make the best informed
decisions?
>> So for for some of these conditions you
know it's uh more straightforward than
for others. You know as you were saying
some of them are very deterministic. So
if you have like three 21 chromosomes,
you're going to have Down syndrome and
that's going to be associated with a
very classic presentation, you know, but
for others it turns out and I think
that's where it's much more complicated
than just testing and making a decision
is that the what we call in genetics the
penetrance of the genetic mutations is
variable. meaning that you could have a
genetic mutation
uh that in one patient could cause a
very severe presentation or a phenotype
and in another would be very mild. It's
not the case for tim syndrome where
actually it's quite predictable. Most of
the patients that we know we've never
identified a patient who is nonaffected
and they're very severely affected. Uh
but there are other conditions that are
much more common. I think the classic
one is uh a deletion that is happening
on chromosome 22 the so-called 22q11.2
two deletion syndrome known by many many
names. Velocardioacial syndrome, the jaw
syndrome known by many names because
it's been it's so common. It's actually
the most common microdeion in humans
about one in 3,000 births.
Now the condition is associated with
cardiac issues, immune conditions, you
know, many of which can actually be
addressed medically. But it also comes
with a 30% risk for schizophrenia. 30%.
>> Yeah. So you think the general
population is 1%. So this is about 30
times higher. It also comes with the 30%
risk of autism. But you could also not
have any of this. There are uh
individuals who are carrying the 22q11.2
deletion which is a large deletion by
the way. There's 60 genes that are gone
in the classic deletion and yet still
carry it around and have minimal uh
defects or phenotypes.
>> Do we test for this 22 Q?
>> This is tested generally these days.
Yes, because it's so common. Uh but I
think that the challenge is this problem
of penetrance and in some patients and
we don't know what the context is. Each
of us has a very complex genetic
background. So it could be that you know
the same mutation two different
individuals will have different levels
of severity because one of them perhaps
compensates much better for whatever
reason there's a lot of sarcastic forces
in development and if a cell it's much
faster at opening the other gene you
know like the similar gene that is
unmutated and in the other case it
wasn't and or maybe there are other
environmental factors that are uh you
know interacting but the other
possibility is that the genetic
background that we have is very
different and so we're still like in
early days of truly understanding what
are the effects of the genetic
backgrounds in modulating the severity
of these conditions. But in itself it's
a very interesting question why some
individuals can have you know a massive
deletion right of 60 genes and yet still
move around. So I think that that that's
going to be a lot of interesting biology
to discover uh behind this. And then of
course we know that there are
differences between animals and humans,
right? That that we already know that
very often a mutation that would be very
severe in a human has almost no you know
defect in an animal model partly because
that gene maybe plays a different role
or perhaps the genetic background is
very different.
Speaking of which, what are some of the
other diseases that are being modeled
and studied with assemblids? So timothy
syndrome has sort of like been the first
example because partly because it was
some of the first neurons that were
derived from IPS cells uh and from
patients with neurodedevelopmental
disorders in those early days and also
partly because it's the disease that we
studied so much on all possible angles
first with 2D neurons then with 3D
organo then with these symbols that at
one point
and I like to say that it kind like a
therapy became self-evident so to speak.
I mean we were honestly not I was not
thinking that we would develop a therapy
for Timothy syndrome like not in the
near future. Uh but at one point we just
accumulated enough biological
information that you just look at it and
you say, "Oh, this is exactly what we
need to do." And it turns out that and
this we did about like 5 years ago that
we understood so well how this channel
is process in the cells and what it
causes that at one point we realized
that all we need to do is generate this
tiny piece of nucleic acid that we can
get inside the cells. it will go in
switch the way the channel is actually
processed and rescue or reverse the
phenotypes. And it turns out that every
single defect that we've described over
the past 15 years in the studies can be
rescued by just adding that tiny piece
of nucleic acid. It's almost like a gene
therapy in a way. It just doesn't
involve a virus.
>> And so this is the first disease and
we're preparing for a clinical trial.
The patients are very rare. So I've been
traveling around the world trying to
find most patients with him syndrome.
and try to understand the complexity of
the disease, the severity of the disease
and so we now have a large cohort of the
patients ready and we're preparing for
the first clinical trial. We already
started producing the drug.
>> So it's druggable.
>> We think that is druggable but this will
be the first therapeutic for psychiatric
disease that has been exclusively
developed with human stem cell models
without anything else. You know, I like
to joke about probably you knew very
well lubber drier.
>> He developed the so-called gene ship
early days of evaluating genes in
different cells. He passed away
recently.
>> He passed away sadly. He also um Yeah,
he would bring coffee by
>> he would bring coffee by. He had an
office across our D22, right? So he
would come at 9.
>> Anyone who's ever taken biochemistry,
the big red biochemistry book, Strier,
that's what it is. I mean, he was an
amazing communicator. I think above
anything he was just a larger than life
figure who like be able to like go with
you in a conversation from like a deep
molecular mechanism to what does it
actually mean.
>> Yeah. Very kind person too.
>> So my last conversation with Lubbert
which happened I think a month before he
passed away. He came to my office at
Stanford. We would meet like every few
months. He was just like so interested
about like how this is evolving. And I
remember he was sitting in my office and
then he wanted to know where are you
with Timothy syndrome? the paper was
still under revision at Nature was
coming in the next few months and uh and
then he said like you know like the
saddest thing is like I'm not going to
see this paper published like I want to
see this paper published and I said like
why and he goes do you know what you've
done you know cuz he would usually use
with that intensity and I thought like
oh my god maybe you know he realized
some you know we've made the mistake
somewhere in the paper or like you know
it's going to point out to some flaw and
then he says no you've demystified the
psychiatric disease
I said, "What do you mean?" Said, "Well,
think about psychiatric disorders.
They're so esoteric, so complex, mental
processes in, you know, that are
arising, behavioral changes, and yet you
went all the way down to like a
molecular defect, a point mutation,
figure out the rest, and now you're on a
verge of potentially, you know, perhaps
not reversing, but at least improving
some." So, he was so excited about this.
I think I never kind like think enough
perhaps about it but he was the last one
who s like reminded about like how
important it is actually to focus on
this genetic disorders of which we know
more. Of course this is what just one
form of disease. There are so many more
afterwards but our hope is that just by
understanding and learning from this
we're going to be able to apply to other
disorders. So another one that we're
studying now there are forms of epilepsy
which are very difficult to study. There
are intractable forms of epilepsies.
Patients who have some of these genetic
mutations, whether they're in an iron
channel or in molecules that are
important for cells to stick with each
other, they can cause 60 seizures a day,
right? So, they're really devastating
conditions that are actually causing
impairment just by having those seizures
every single day for 10 15 years. And
so, those are a really big issue uh
right now. So we've been focusing a lot
on trying to build our models for this
epileptic seizures either through in
vitro studies or after we transplant and
then we study more complex networks in
patients and then of course intellectual
disability so severe intellectual
disability uh schizophrenia forms of
schizophrenia. So we've been studying
now for almost 12 13 years 22Q11
deletion syndrome. We think it's so like
an entry point. It's the highest genetic
risk factor that we know of for
schizophrenia. So we think it may give
us some windows into how you know
molecular defects arise. So I think all
you know you can think of most
psychiatric and neurological conditions
that you can study now as long as they
have a strong biological
genetic component. Mhm.
>> So I think those that have a social
component, those that are triggered by
social stress, let's say, right, like
forms of anxiety,
um you know, depression, those are much
more challenging to study because of
course we can mimic that social
environment.
>> Can I make a request please
>> that someone in your lab try to tackle
uh donia?
>> Yes.
>> Uh I had the experience last year of
somebody contacting me. I get contacted
a lot, you know, for requests to help
with hor horribly um sad situations,
right? As one does if you're in the
neuroscience field. Um typically it's
people with visual deficits who've gone
blind or losing their vision. This time
it was a a mother of a a young kid who
had a form of donia where he was
essentially just going from a by all
accounts normal appearing and acting kid
to having basically no ability to move
or do anything. couldn't go to camp,
couldn't go to school, and just it was
just a a very very tragic situation. Um,
he had a neurosurgery. I will know soon
how how he's doing. But I learned that
these doniaas are not super uncommon. I
mean, fortunately, they're they're
uncommon enough, but
>> you just have to witness one of these
stories and and it turns out they're
there is a genetic basis for these.
>> So, um, I'm putting in a vote for donia
for the parent and for the child. It's
it's devastating. Um and we don't hear
from these people very often. Um and
there there sociological reasons for
that. Um certain diseases are under
represented in the public sphere. Autism
we hear a lot about not just because of
the prevalence but because um
>> there's a we have a certain affinity to
uh kids. Um and that explains that a
discussion for another time. But these
doniaas are very hard to witness in a
way that um has made them kind of um uh
veiled.
>> Yeah.
>> To to the public and but they're very
very detrimental and it would be
amazing. I know you already have a lot
on your plate. Um but I'm putting in a
strong vote for
>> we are actually working on on donia
because they are devastating conditions
and there are now genetic mutations that
cause really severe forms of disynesia
and donia. So really uncontrollable
movements in these kids that are really
devastating for social uh functioning
and in general for development
>> and so we do know a little bit about the
biology behind it. We do know that the
basil ganglia this deep structure into
the brain is very important for
movements. You know we very often
stimulate that brain region for
Parkinson's disease or parts you know of
those circuitry. So we know it's very
important. So we've been trying to
rebuild it in a dish. So we now can
build some of the circuits. We call them
loop assemblids where essentially you
can put a cortex and we've made the
>> stridum
>> and then you put parts of the mess
inflon and the midbrain and the phalamus
>> and the cells connect in a loop and now
they have activity. So you can now
induce mutations at various levels of
the circuit and see where is that
mutation most important. So let's say if
you were to develop a gene therapy
>> where would you deliver that gene right
if you were to choose if you can deliver
it in the entire brain. So these are
really so like early days but I think
the it can be applied and I I think in
general
you know you were mentioning this before
about autism right and this you know
even the ability of so like
communicating
uh this disorders or how much awareness
there is right I think when I refer to
autism I generally refer to the severe
forms and profound autism
>> and as we discussed earlier there's
certainly a continuum and there are many
individuals that high functioning,
right? There are um uh they have high
skills. Uh they may lack certain social
skills, but they have other skills.
They're different. They're productive in
society. I am not talking about
discovering or developing a therapeutic
for any of these individuals. We are
talking about the profound forms of
autism. The ones that actually the
parents are still struggling to even
communicate about, right? the kids who
may never go to school may uh never be
able to actually live on their own. The
same is the case for many of these
patients with severe donius. So I think
it's very important because uh I think
in the case of autism partly because
it's been talked about and again because
it is a a spectrum is uh you know it's
also part of the identity right of a
part of the population and that's
absolutely fine. I think perhaps like at
one point having different terms
>> yeah that would be useful. It may be
useful because we were talking before
about terminology which is so important.
Um so perhaps that would be sort of like
useful at one point to define um you
know the border between uh profound
forms of autism and forms of autism that
are are not really a disease.
>> Yeah. as well-meaning as the psychiatric
community is, it's bound by this, you
know, DSM, whatever number it happens to
be on for for understandable reasons,
but I think uh better um nomenclature
would really help that has societal
implications. It has to do with how we
treat people generally. Um
>> actually, just as a quick reflection,
years ago, I sat down with Bob Desimone
who, you know, world-class
neuroscientist as you know, but he was
the head of the National Institutes of
Mental Health at that time. And he said
to me directly, it was over lunch. He
said, "Um, do you know why there's so
much more money spent trying to
understand autism as opposed to
schizophrenia?" At least that was the
case at the time and I think it is still
now. I said, "No." And he said, "Because
the uh strong genetic link in
schizophrenia means that um often times
the parents are struggling as well.
They're not bringing their children in.
And with severe uh nowadays it's not
politically correct to call them
schizophrenics. for people with severe
schizophrenia,
uh it's scary to be around.
>> Yeah,
>> it it's really scary. Whereas with
autism, um even in the profound cases,
these are children and as a human
species, we we naturally have this we
want to care for our young and it just
it just pulls on us. and he said, you
know, so there's been this incredible
lobby uh of the government and therefore
pressure on NIH to um direct funds
towards studying autism far far less for
schizophrenia. It's interesting, you
know, in light of the homeless problem
in California and elsewhere and the huge
amount of mental disease and drug
addiction. I think nowadays there's a
kind of a broader understanding of brain
diseases as diseases that people suffer
from as opposed to
>> cold mothering or something, you know,
like ridiculous theories like that.
>> I definitely want to talk a little bit
about um you um not getting too personal
here, but um I've known you for some
years and um from the first time I met
you, it was clear you were going to work
on something important. you were gonna
figure it out and your your work ethic
is like something to behold. Uh without
inflating numbers, um uh how much time
are are you spending these days either
at the computer working on things
related to your science or in the lab or
thinking about your science? I mean, of
of your waking hours, what percentage?
>> Well, I've never seen this at work. So,
probably all the time. I think about
this all the time. I mean luckily now of
course I have a lab of incredible
scientists and many of them now have
their own labs
>> and uh we've been teaching so many
people around the world now like more
than 350 labs around the world to just
implement this technology very
systematically through courses that we
do at Stanford. So I feel we've like
amplified so much so there's always
something happening uh but I've never
seen it honestly at work. I mean I think
it's it's it's so fun to think about you
know the human brain. It's certainly
fascinating to think about the biology
of these conditions and of course for me
training as a physician. I think seeing
firsthand some of the devastating
effects of of psychiatric disorders was
was a very strong um you know motivation
to actually go into neuroscience.
>> I'll never forget when the or when your
first paper was published as a posttock.
>> Yes.
>> You brought in um a cake for everyone
else. I don't know if you remember that.
>> You brought in cake for everyone else. I
don't remember.
>> And I was like, this is the first time
I've ever observed this. This is
awesome. At the time I was eating cake.
I don't eat cake anymore. With each
successive decade, I I get stricter and
stricter with my eating. I still enjoy
food very much, but um it's really
speaks to your your spirit and your
generosity. I feel so blessed that
someday I'll be able to say I can tell
you stories from way back when D222 when
we took over that room without
permission. I think we just did it.
>> I I think we just took it.
>> Which is the way to which is the way to
do it.
>> It's unincorporated. Well, Ben was the
one who always said, you know, ask for
forgiveness, not permission within the
proper context uh of doing science. Um
he he uh was famous for bringing his
experiments to talks as a postto so he
wouldn't lose time on his experiments.
He and then I think at one point there's
a story where someone called it out him
out and said, "Hey, you know, like why
are you bringing your experiments to
seminars? Everyone else is drinking
coffee and doing stuff." He said, "Cuz I
don't know if your seminar is going to
be any good and I don't want to waste
the time on my experiments." You know,
he had such a an incredible spirit about
just ceaseless pursuit of knowledge. Uh
which clearly you do as well. Um Sergu,
I am so grateful for you taking time out
of your immensely busy schedule to come
here and educate us all on this
incredible technology that you've
developed and that other laboratories
are now using. I realize it's a field um
but clearly a field that you've been
seinal in launching and you know I think
for a lot of people if they were to just
hear about organoids in the news or hear
okay we took these neurons and we were
able to grow them in a dish and they
formed some uh things that resemble
circuits and we're putting them into
mice. They'd say you know this sounds a
lot like a parlor trick or something
that scientists do to keep themselves
busy with our tax dollars. But I just
want to thank you because you've
beautifully illustrated the linear
fashion in which you've gone from human
disease to building up technologies. One
cell type in a dish, two cell types,
circuits in a dish, three synapses,
modeling, using drugs and other
approaches, genetic therapies to figure
out what actually needs to be fixed,
going back into patients, which is super
exciting. I'm absolutely convinced this
is the way science is going to be done
on the brain to cure neurologic and
psychiatric diseases, I'm absolutely
convinced because animal models, while
they have their place, they just can't
recapitulate everything we're interested
in. And we know that as you mentioned,
from other fields. So, uh, whatever we
have to do to keep you going, uh, you
look younger than the last time I saw
you, which was a while ago. So, uh, you
told me before we started, you walk a
lot. How many steps a day are you doing?
>> I do more than 12, 15,000 for sure.
>> So, you're walking to and from work.
>> Yeah. And I walk all the time. I like to
walk especially when I travel. I you
know I visit a lot Europe and parts of
the world and I love to just walk and
>> art is the only other thing that I do.
>> Oh yeah.
>> Other than science I love art. I used to
paint. Right now it's mostly thinking
about art and like what you know I've
seen most museums in Europe at this
point like several times.
>> Whose art is exciting you now? I'm I'm
fascinated by I love art but whose art
are you um intrigued by lately?
>> Well I mean I've my favorites have
always been Impressionist. Uh but then I
go through phases and uh so I I love all
art as an expression and I think that's
sort of like uh you know I walk a lot
museums I think you could you could
probably trace like where I've done most
of the walking and it's probably done in
museums or in California walking at
night and so like discussing science
with students or others.
>> Fantastic. And none of this biohacking
nonsense. You eat one meal a day. That's
how you stay so fit.
>> I generally eat one meal a day. Yeah.
>> How long have you been doing that?
>> Uh years I think. Uh years. I mean I
think in medical school initially as a
necessity because uh uh I grew up in
Romania and I went to medical school
there and there wasn't really dedicated
time for research. So I had no option
but to do my experiments either very
early in the morning or very late at
night.
>> So there would be very little time um to
actually like eat to be honest at that
time. So I felt I was like running all
the time doing experiments or clinical
work. Well, like I said, your your vigor
seems to be just increasing with time.
It's it's really wonderful. Clearly, you
found the the career path for you and
it's going to benefit us all. It already
has. So, please come back and tell us
about your progress um absolutely in
>> 6 months, a year, whenever the the time
is right, we'll have you back. And once
again, thanks for doing everything you
do. You're uh in this time of hearing so
much negative news and like thinking
like science is so, you know, hobbled
and all this stuff. Science needs
support obviously, but um you know
what's that saying you see on the
internet? Uh you know, not all
superheroes wear capes. You're you're
doing God's work. So, thank you.
>> Thank you so much. Thank you.
>> Thank you for joining me for today's
discussion with Dr. Sergu Pasca. To
learn more about his work, please see
the links in the show note captions. If
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you'd like me to consider for the
Huberman Lab podcast, please put those
in the comment section on YouTube. I do
read all the comments. For those of you
that haven't heard, I have a new book
coming out. It's my very first book.
It's entitled Protocols: An Operating
Manual for the Human Body. This is a
book that I've been working on for more
than 5 years, and that's based on more
than 30 years of research and
experience. And it covers protocols for
everything from sleep to exercise to
stress control protocols related to
focus and motivation. And of course, I
provide the scientific substantiation
for the protocols that are included. The
book is now available by pre-sale at
protocolsbook.com.
There you can find links to various
vendors. You can pick the one that you
like best. Again, the book is called
Protocols, an operating manual for the
human body. And if you're not already
following me on social media, I am
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Threads, Facebook, and LinkedIn. And on
all those platforms, I discuss science
and science related tools, some of which
overlaps with the content of the
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is distinct from the information on the
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Hubberman Lab on all social media
platforms. And if you haven't already,
subscribe to our neural network
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summaries as well as what we call
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from how to optimize your sleep, how to
optimize dopamine, deliberate cold
exposure. We have a foundational fitness
protocol that covers cardiovascular
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that is available completely zero cost.
You simply go to hubmanlab.com, go to
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Thank you once again for joining me for
today's discussion with Dr. Sergu Pasca.
And last but certainly not least, thank
you for your interest in science.
[Music]