Kirk is a philosopher, scientist, husband, and a legit Christian. His podcast is mostly about exploring assumptions and questions pertaining to God, philosophy, science and life that he ponders about, hence the name Quest with Kirk Durston.
Kirk wants you to join him on that Quest or perhaps you're on your own quest about such matters and you can explore together.
All right.
Good morning, Kirk.
How are you doing?
Oh, I think I'm doing wonderful, actually.
Sun's shining.
I feel good.
And the topic today is extra interesting.
Right up your alley.
Got a coffee here.
No, where's that?
Yeah, here it is.
Double espresso right there.
How could you not feel good?
Well, your camera, just so everybody knows,
we know that his real
camera isn't working right,
so he's not really going to
be looking at the camera all the time.
Not that there's much to see
when you're looking at me.
Yeah.
Yeah, so how's everything been?
Sorry, everyone,
for not doing last Thursday.
It ran away on me.
I was like triple booked.
And yeah,
and with me doing some traveling
over the next few weeks here,
I didn't want to just skip it.
So we're doing a Monday episode,
which it's Monday.
So who knows what could happen?
Yeah.
Well,
most of the people watch these after
the fact anyway,
so I don't think they'll be
complaining too loudly.
All right.
So we got Serpa here.
Good morning, Serpa.
Hi, Serpa.
All right, and yeah, so don't forget, like,
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KirkDurston.com and you can
read some of his content there.
So today,
we are going to be discussing a
stream that Joe Rogan did
with Brett Weinstein.
Maybe if you can give a bit
of an intro to Brett.
I think everybody knows who Joe Rogan is,
but...
Yeah, well,
Brett Weinstein is an
evolutionary biologist who
co-hosts a podcast called
Dark Horse Podcast,
and it usually focuses on
issues in the area of science.
All right,
and he would be known as an
evolutionary biologist.
Yeah,
he's an evolutionary biologist who
believes that Darwinism,
there's got to be a Darwinian explanation,
but he's really quite
honest about the state of
where it is right now,
and it's not that great.
All right, well,
let's get right into this.
We're going to sort of react
as it happens.
Kirk's seen a little bit of it,
but I caught a few things that I was like,
hey, this is really good,
and I don't think Kirk had seen it yet.
So we will do a little bit
of streaming here,
and don't forget to comment
if you have questions or if
you see something that we don't.
Yeah, leave us a comment.
All right.
So let's add Joe to the stage.
So this is a little bit
earlier in the conversation
than you had a link to for me, but I,
so just backing up a little bit, um,
Tucker had, uh,
somebody on and they were
discussing evolution and Tucker,
basically said, well,
there's no macro evolution going on.
It's all microevolutions,
no macro that we can see.
And so basically Joe Rogan's
asking Brett about that.
Leave an evolution as it's taught.
Yep.
I'm paraphrasing.
Yeah, I went back and listened to it.
What did he exactly say?
He said, well, he said a couple things.
It was a little confusing.
He said that, you know,
we see evidence of adaptation,
but we don't see evidence
of evolution and that we've
really gotten beyond the Darwinian model.
We've essentially come to
understand that it's not right.
This is essentially an
argument for creationism?
It's an argument for intelligent design.
Okay.
I think.
First of all,
I want to clean up a little
bit of what he said,
just so it's... That's an
argument of intelligent design.
It's not the argument.
No, it's not the main one.
I mean, there's intuitive,
there's ones that depends
on our intuitions, our ability to
see things and recognize, whoa,
that looks designed and that doesn't,
but it is subjective.
And because it's regard based on intuition,
it, uh, doesn't carry the same weight,
but, um, that weight has been growing.
I think he's not just
referring to an intuitive
argument for intelligent
design here though.
He's pointing out the failure,
what appears to be the failure of,
of a neo-Darwinian theory of
common descent,
that we've all descended
from a single cell sometime in the past.
He says we can't see it.
Now, immediately somebody might say, well,
of course we can't see it.
This takes tens of millions of years,
hundreds of millions to proceed.
But the reason that it would
take that long is because
it's not guided by an intelligence.
It's just a
is depending on things like genetic drift,
mutations, insertions, deletions,
just basically random processes.
And every once in a while,
those random processes hit
something that looks like, hey,
this would be an advantage.
And because it really is an advantage,
practically speaking,
you can produce more progeny,
more progeny versus
whatever we had before.
But the problem is,
is that when we accelerate this,
and we can,
once you get an intelligent
mind involved in your, say,
selective breeding program
at some university,
you can actually change the
evolutionary process from
what is essentially a random walk.
to something that is guided
and you can speed up that
process of macro evolution
by many orders of magnitude.
In other words,
you're limited only now by
the reproduction rate,
how long the generation is.
So for bacteria,
you might be able to get them,
say in half an hour,
you got your next generation.
And so it's limited only by that.
You're no longer dependent
on random chance anymore.
And you can take that
and run with it.
And every time we do, we hit a wall.
It's not that we ran out of
time for our experiment.
We just hit a wall beyond which it's,
this is going nowhere.
It's either further change will be lethal.
Can't change any further
because further change will
be lethal to the organism.
It just simply hits these
walls and stands there.
And this
is a serious problem for neo
Darwinian theory or let's
just call it Darwinism
because a fundamental
central core prediction of
Darwinism is that the
variation that we observe
within populations and
that's observable and we
observe natural selection
we observe mutation we
observe genetic drift so we
observe all the components
of what we might call
neo-darwinian theory today
we observe all those
components but at the same
time we hit the brick wall
And so this is the, oh yeah,
the fundamental prediction
is that this variation is not limited.
There's no limits to this variation,
which is kind of an obvious prediction.
If you're going to start
with just a simple single
cell with maybe.
Protein coding genes.
And then from that simple cell,
get everything you see in
plant and animal life here today.
Obviously there has to be a lot of, uh,
a real, a real lack of
for variation,
if you're going to get
everything you see today
out of single cells or simple cells.
So if it takes millions of
years to go from one species to the next,
and there's how many stages
of species to get to humans,
according to neo-Darwinism?
Well, first of all,
we have to be careful when we're,
the definition of a species is,
we just made it up.
How many jumps?
How many jumps are we talking here?
Oh, you're talking, like say to go from,
let's say a single cell to a human,
you'll be talking millions
of probably mutations.
I see.
I don't usually think in terms.
How old's the universe
according to humanism?
They would say you got to
start with the planet here
because that's quite a bit
younger than the universe.
But they would say the
planet would be roughly
four and a half billion with, you know,
you got to wait till it cools.
Maybe you got about four
billion years here.
So does even that little
math line up or do they say, well,
sometimes some of these
jumps were like really, really fast?
You would have to, no, it doesn't,
the more science advances,
the more we see that
Charles Darwin's nice quaint story,
and keep in mind he
published that before we
knew virtually anything about genetics.
There was a fellow named
Bendall doing some experiments,
and he became famous.
But that was just,
we didn't know anything about DNA, genes,
protein, nothing about that.
So when we knew nothing about the problem,
it didn't seem that
difficult to create a story
about how one species gradually changes.
now the word for species you
know you could usually
usually refers to something
that's reproductively kind
of isolated from other
organisms so that it'll
only reproduce with its own
kind so to speak
But that is, uh,
assumes a few things about
our knowledge of the limits
of species and so forth.
I wouldn't go so far as to
say one species could not evolve into an,
or vary into another
subspecies that
reproductively they're now isolated,
even though genetically
they might be identical.
I'm aware of one or two cases like that.
However, uh,
when you start getting to get
big changes.
We now know why we hit a wall.
We know why we're hitting that wall.
And every single experiment
to date that falsifies the
central prediction of Darwinism,
which is the variation is not limited.
We know why we're hitting a wall now.
And it's because if you want
to really move on to something different,
a different kind of
organism or one level up,
you're going to need
at the very least,
some novel protein coding genes.
That is a gene that codes
for a protein that has not
yet been used in other life forms.
Okay.
We'll get to this part later
because before we get there,
let's hear what he says
about the state of science
right now in terms of evolution.
Sure.
interpretable.
I don't really think he
means we see the evidence
for adaptation but not evolution.
That's not coherent.
I think what he means is we
see evidence for what we
would call microevolution,
but we don't see evidence
for what we would call macroevolution.
This is a commonly believed
thing in intelligent design circles.
And so microevolution,
we would talk about the way
a creature or a population
of creatures would change
relative to their environment.
If the environment gets drier,
those individuals who are
more drought tolerant will
outcompete the individuals
that require more water.
And so we'll see the
population change over time.
But he's saying we don't see
evidence for macroevolution,
which is the production of
new species from old species.
A monkey becoming a person.
Yeah.
We don't see big changes like that.
Now,
I don't want to bore your audience.
I am concerned that the
right way to address Tucker's challenge,
and as I said the last time
I was on your show,
when I heard him say it the first time,
I reached out to him and I said, you know,
you really ought to let me
talk to you about what's
actually going on here,
and he welcomed it.
We still haven't sat down to do it,
but nonetheless,
he's open to hearing that
he doesn't have it right, to his credit.
But here's the problem.
The correct response to
Tucker I do not believe
involves what most people
want me to do in response
to something like what Tucker said.
What do you think that is?
What do you think most people want?
I think people want the
career evolutionary
biologist to break out a
bunch of examples from
nature that make the case very,
very clear so that they can relax.
Tucker's concern isn't based in science,
and they can go back to
feeling comfortable that, you know,
the Darwinists have it well in hand.
I find this fascinating.
If you don't believe that
there is intelligence design,
if you believe that it's
what Darwin said it was,
And it's starting to crumble a little bit.
Um, what does that mean for your future?
Like I can assume that
people might be freaking
out that wait a second.
Like we need to solve this problem now.
Yeah.
And I'm what I want to point out.
One thing that's also
interesting here is that it, uh,
when you see people wanting, uh,
as Brett Weinstein is pointing out now,
keep in mind, I should clarify here,
Brett Weinstein does.
don't think believes that
intelligent design is the
way to go although we may
see that he's actually it's
it is gaining a lot of
ground so just to be just
to be honest representing
him but what I really
appreciate about him is
that he's he is honest he is
He talks about certain
things that he would not be
comfortable with doing where the average,
say, Darwinist is.
But when you want an answer
before science has delivered that answer,
what that tells you is that
there's some fundamental
underlying philosophical
reasons that are motivating you,
and it's not science.
When you want science to
comply with what you want so that you can,
as he says, remain comfortable...
then you have the
possibility of the corruption of science,
which he is pointing out to
some degree here in what
some of the more popular
Darwinists are doing online.
It's basically
misrepresenting science to
the audience so they can calm down,
remain comfortable in their
belief that everything
happened naturally here.
There's no ultimate, you know, whatever.
It's almost like they need a
lot of faith here, Kirk.
well it is it does boil down
when you start to talk
about philosophical um
philosophical goals and
philosophical beliefs you
faith you could it's almost
it's very difficult to
prove anything a hundred
percent so when you're
cannot prove something a
hundred percent faith
always steps in trust trust
that what you are the
direction you're going is
the right one and for many
people there's some
philosophical underpinnings
here driving them to want
to believe that there's a
natural explanation to this
And that does require that
they put their faith in something.
And in this case,
a lot of times it's science.
But really what they put
their faith in is the
underlying philosophical
viewpoints that they have
that want science to give
them the answer that they're looking for.
Well, it's not even science.
It's the theory that they're
basing their work on.
Because if it's not, like,
science is only a method.
It's not a religion.
It's a...
wait hold on important point
to make here when you said
it's not a religion
actually sheldon uh there
is something called
scientism and scientism is
you might not call it a
religion but you would
certainly call it a
philosophy it has all the
elements of yeah it has all
the elements of faith and
so forth but scientism is
the fundamental
presupposition that science
explains everything
And, you know,
you have to go deeper than
that if you want and say, well,
why would you,
what would motivate you to do this?
Because that itself is not a
scientific conclusion.
Rather, it's a philosophical perspective.
Science would never say we
explain everything.
That would be very bad science.
It's all settled, Kirk.
It's all settled.
Let's continue on this video.
Okay.
That's not where I am.
I could do that,
but I don't feel honorable doing that.
I think as a scientist,
I should not be in the
business of persuading people.
Uh, Kirk, can he do that?
Are there a lot of examples of revolution?
Uh, okay.
So, um,
Couple of things here.
Number one is when people attack evolution,
they need to be a little more specific.
And he kind of points this
out when he distinguished
between micro and macro.
Cause if you're studying genetics,
for example,
evolution is just defined as
variation or the population over time.
And of course that happens,
but he said that he can
prove macro evolution and
there are examples.
He just doesn't want to go there.
Well, OK,
the reason he doesn't want to go
there is because I think
he's going to basically
admit that that constitutes data,
but the data itself is not
sufficient to meet the
expectations of what the people want.
it's kind of for example you
can write you can I've got
our examples of this
article evolutionary
biological articles let's
say in the origin of life
where a lot of what I call
lack of data words are used
like probably presumably is
conceivable and so forth so
that's one way of doing it
and those are rhetorical
methods to persuade people
not scientific the
rhetorical and that's part
of what he's referring to
here he does not want to
He said the data should be
strong enough to persuade
people without me getting
involved using rhetorical methods.
But there's another problem.
It's not just the data that
supports your theory.
even more problematic is the
data that falsifies your theory.
And this is almost never talked about.
Let's say I got a high
school textbook from a local high school.
Kirk,
I'm going to interrupt you because
we're going to finish this video,
but that might be a good future episode.
I want you to be persuaded.
I want you to be persuaded by the facts.
I want them to persuade you,
but I don't think I'm
allowed to persuade you.
I think that it's a, um,
that it's effectively PR when, um,
I attempt to bring people
over to team Darwin further,
as I'm sure I've mentioned to you before,
I'm not happy with the
state of Darwinism as it
has been managed.
Just so you know,
I did speed up his voice here.
I'm kind of annoyed by it.
And I,
Although Tucker, I do not believe,
is right in the end.
There is a reason that the
perspective that he was
giving voice to is catching
on in twenty twenty five.
And it has to do with the fact that,
in my opinion,
the mainstream Darwinists
are telling a kind of lie
about how much we know and
what remains to be understood.
So by reporting that, yes.
Darwinism is true,
and we know how it works,
and people who aren't
compelled by the story are
illiterate or ignorant or whatever,
they are pretending to know
more than they do.
All that being said, let me say,
I think modern Darwinism is broken.
Yes,
I do think I know more or less how to
fix it.
I'm annoyed at my colleagues for, I think,
lying to themselves about
the state of modern Darwinism.
I think I know why that happened.
I think they were concerned
that a creationist
worldview was always a threat,
that it would reassert itself.
And so they pretended that
Darwinism was a more
complete explanation.
Why is that such a concern?
That's a rhetorical question.
Okay.
As it was presented than it ever was.
What is wrong with Darwinism?
Like,
what do you think that Darwinism is
doing itself a disservice by saying?
There are several different
things that are wrong with it.
The key one that I think is
causing folks in
intelligent design circles
to begin to catch up...
is that the story we tell
about how it is that
mutation results in
morphological change is incorrect.
This is a very hard thing to convey,
and I want to point out
that if the explanation for
creatures is Darwinian,
that does not depend on
anybody understanding it,
and it does not depend on
anybody being able to
phrase it in a way that it's intuitive.
So that's important,
and he'll go into a little bit more here.
But I think,
and you can tell me if I'm wrong,
but that's just any fact or any truth.
You don't necessarily need
to be able to explain it or prove it.
If it's true,
it's true regardless of
whether you're able to
explain it or prove it.
yeah I mean like say for
example my laptop computer
here it's got some uh
electronics in here now
I've I've I've studied
electronics but what's in
my laptop here is I can't
explain it I like I would
just be you know I can't
but it does not resistors
yeah of all transistors and
their own microprocessors
all that kind of stuff and
when it gets down to
telling you how much
current is running through
this versus that and when
I, you know, forget it.
I found that bad enough when
I was sitting in a lecture,
trying to solve microprocessor current,
whatever.
However, uh,
that doesn't mean my computer still works,
whether I understand it or not,
it still works.
And I can demonstrate that
the problem with Darwinism is that.
It's looking like when we
try and demonstrate like large scale,
when we want to speed it up by orders,
it's not happening.
It's not working.
It's like saying coming up
with a pizza box,
which is shaped like a
laptop and claiming that
this thing can do, uh, you know,
you can type on it and you can make all,
and then opening the pizza
box because people want a
demonstration and oops, um,
this isn't working very well.
And that's the problem.
All right, back to the video.
I think I can probably do a
decent job on those fronts.
But if you happened onto the Earth,
A hundred million years ago,
you would have found lots
of animals running around,
lots of plants growing.
You would have recognized
where you were and more or
less what was going on.
There's not a single
creature on the planet that
would have any idea what an
abstract thought was.
There would be no creature
that had any inkling that
there was even a question
about where all this had come from.
And Darwinism would still be the answer.
So somehow,
whether Darwinism is the answer
does not depend on anybody
knowing it or being able to explain it.
Okay.
Mm-hmm.
Here's the problem.
Let's say that we went into
the parking lot.
And in one parking space,
there's an excavator.
And in the next parking
space over is a Maserati.
Now,
let's say we took those two machines
and we tore them apart so
that we just had a stack of
the compounds that they were made out of,
right?
The rubber, the vinyl, the various metals,
all that stuff.
There would be differences
between the excavator and the Maserati,
right?
They would just be made of
some different stuff.
And then there'd be a lot of
stuff that they had in common.
And you could look at the
differences in the
materials that they're made out of,
and you could say, well,
the excavator is really
good at lifting materials
and moving them around,
and the Maserati is really
good at going fast on a paved surface.
And those differences are
due to the differences in
materials that they're made out of.
That would be wrong.
Probably,
you could take the list of
materials that an excavator
is made out of,
and you could give it to a
bunch of engineers, and you could say,
I want you to make a Maserati,
but you're limited to these materials.
And they could do it.
Wouldn't be quite as good,
because there'd be some
places where the ideal
material wasn't available
to them anymore.
But there's no reason you
couldn't make a Maserati
out of the stuff.
Or a sports car.
Right.
Yeah.
What that means is there are
chemical differences
between an excavator and a sports car,
but they're not the story
of the differences in what
those two creatures do.
The chemistry differences are incidental.
Now,
when we tell you that the differences
that a bat became a flying
mammal because it had a
shrew-like ancestor,
And that shrew-like ancestor
had a genome spelled out in
three-letter codons.
Those three-letter codons
specify amino acids,
of which there are twenty.
And the difference between
the bat and the shrew is
based in the differences in
the proteins that are
described by the genome.
We talked a lot about this in our...
or was there Rock Rockets
episode a few weeks ago?
Those of you who didn't see that,
go watch that.
Kirk basically shows that I
think what he's talking
about now is pretty much impossible.
But it's nice to hear an
evolutionary biologist from
the other side of the fence
explaining the same thing.
We are essentially saying
the difference between...
You were going to say?
Yeah, except the question is, well,
let's just finish here in a
moment before I say anything.
And the shrew is a chemical difference.
It's not a simple chemical
difference the way it was
when we were talking about
excavators and sports cars.
But nonetheless,
it's a biochemical difference, right?
The difference in the
spelling of its proteins
and structural proteins and
enzymes and all that stuff.
I don't believe that
mechanism is nearly
powerful enough to explain
how a shrew-like ancestor became a bat.
So what do you think is missing?
There's a whole layer.
Okay, is this something, like,
as he goes into this layer, I don't know,
did you see this part yet, Kirk?
I didn't see that part,
but you told me a little
bit about it ahead of time,
and I really like what you said.
Going up to this part where
he's saying he doesn't
think it's powerful enough.
No.
Is that a science?
Is that commonly understood in science?
This is not powerful enough.
There needs to be something more?
Or is this what his issue is
with the modern Darwinists?
That's part of his issue
with the modern Darwinists.
And I wouldn't say it's such
a big issue in biology
departments because most of
the time they're not really
doing experiments and
focusing on common descent or Darwinism.
But it is a problem that an
engineer picks up very rapidly.
And his example of an
excavator versus a Maserati
is an engineer grasps that, hey,
they've got the same raw materials here.
But we're going to have to reconstitute,
restructure.
We're going to have a plan.
That's the problem.
We've got to have a plan so
that we wind up with a
Maserati instead of an excavator.
And there's this higher
layer of design space where
you need some sort of an advanced plan.
But it gets way worse than this.
We'll just see what else he says here.
That is missing.
That allows...
evolution to explore design
space much more efficiently
than the mechanism that we invoke.
And the mechanism we invoke
is natural selection, adaptation,
mutation?
That's the one.
The mechanism that we invoke
is random mutation, which I believe in.
Random mutation happens.
Selection,
which chooses those variants
that are produced by
mutation and collects the
ones that give the creature an advantage.
There's nothing wrong with that story.
That story is true.
Okay.
Random mutations happen.
Selection collects the ones that are good.
And those collected
advantageous mutations
accumulate in the genome.
All of that is true.
What I'm arguing against is
the idea that that
transforms a shrew into a bat.
What you need to get a shrew
turned into a bat is a much
less crude mechanism.
Okay.
So what he's saying there is
microevolution can depend
on the random mutations.
Yep.
Yeah,
and I think it's unfortunate that
even the term evolution is
used for variation.
To me, it's just a rhetorical move,
but it's been made for
decades and decades to support Darwinism,
when in fact variation
would have been a more
accurate word to use there.
But there was an assumption
that variation led to macroevolution,
and therefore they thought
it was legit to use that
Now we're saying, wait a sec,
it doesn't seem legit at
all to call that evolution,
which is just horizontal variation,
when in fact there's the
vertical problem that
doesn't seem to be reproducible at all.
Whereby selection,
which is ancient at the
point that you have shrews,
explores design space
looking for ways to be that
are yet undiscovered more
systematically than random chance.
Okay, so there's nothing.
Tell me if I'm wrong.
I'm probably wrong.
There's nothing in the tests
and the research that's
been done to say that there
is a design space, is there?
Well,
you've got to kind of define design
space because it really
depends what it is.
There's different levels of design space.
So there'd be a design space of, let's say,
what sort of
three-dimensional proteins
are there out there that we can use?
They're kind of like very
complex Lego blocks to build stuff with.
That's one level.
And that might be the level
of the excavator when
you're looking at
standardized parts between
the Maserati and the excavator,
like nuts and bolts.
But there's another higher
level of design space,
and that is we want an
excavator or we want a Maserati.
We don't want an excavator.
So how do we go from this to that?
And you have to have some sort of normally,
in fact,
all the empirical evidence
supports the idea that
you're going to have to
have a team of engineers on this problem,
intelligent engineers, very intelligent.
to go from an excavator to
Maserati or vice versa.
And this is the, this is this, this,
what he called design space, this plan.
We have to know where we're going.
We can't just randomly start
assembling parts.
If we just randomly throw
parts together and raw
materials and stuff,
you will never get a
Maserati or anything resembling even,
you probably won't even get
the excavator back out of
that pile of stuff.
So that's the problem.
But let me just give you one
specific example.
Explain my garage.
Yeah,
your garage and mine is an example of
what happens when you don't have a
you know, a plan in force that's made fun,
but let me give you one example here.
So, uh,
we're all built out of what we call
proteins and there's
thousands of different protein families,
and you can essentially
define a protein family as some,
as a group of proteins that
all basically have the three same,
same three-dimensional structure.
And that structure is
determined by the sequence
of the amino acids that he
mentioned there.
And that sequence is, in turn,
determined by the
information encoded in the
genome or the DNA for that
particular gene.
Now, let's back up a bit.
This isn't a matter of fortuitously,
after the fact, say, hey,
we got these proteins.
But if we started there,
we'd have different proteins.
We still have something that works.
Amazing.
No, that's not how it works.
this keep in mind that this
three-dimensional structure
is determined by the
sequence and that is
determined the structure is
determined by physics the
laws of physics so the
moment the universe comes
into existence that moment
you also have the laws of
physics coming into
existence and at that
moment long before from an
evolutionary perspective
here long before you ever
have the first life form
all the sequences that will
code for stable
three-dimensional proteins are determined
And so you have this design
space of three-dimensional proteins.
Just imagine an ocean with
islands sticking up here and there.
And that's determined the
instant the universe and
the laws of physics come into existence.
Would Brett argue that too?
or would he yeah okay oh
yeah it's a it's one of the
um uh doc what did you call
it dogmas of our central
teachings of protein
science is that sequence
determines structure uh
anthonson was the scientist
who basically discovered
that that's your
fundamental sequence
determined structure and
the sequence there's only
twenty different uh let's
call them symbols twenty
different amino acids
So basically it's,
this is what you got to work with.
Twenty different amino acids,
special kind.
They, they all,
but we don't get too technical here,
but twenty and it's
depending on how they're organized.
that'll determine the
physical forces between them,
which in turn determine
their stable three-dimensional structure.
And most sequences will not give you that.
To be an example here, you will find,
and this was my area of
specialty when I did my PhD
in biophysics.
I looked at protein structure.
How do we measure the information?
How do we estimate that?
What does it do in
terms of three-dimensional
structure here's the here's
the with the numbers I was
getting and since then
that's been confirmed by
two other scientific teams
using different methods
we're all converging on the
same rough ballpark figure
here but by and large these
physics determines which
sequences will give you
these three-dimensional
structures on on average
for an average protein
When he talks about searching design space,
if you're going to do an
evolutionary search,
you've got to find an island that,
let's say, was one meter square.
You would have to sift
through an ocean that's the
size of ten with
thirty-four zeros after it,
number of universes before
you found another island.
That's how rare sequences
that give you a stable
three-dimensional fold are.
In other words, most sequences, almost
Almost all of them will be junk.
They won't give you any fitness advantage.
They'll be lethal, actually,
because you'll get
misfolded proteins clumping together.
They're so rare that you will never, ever,
ever find a protein by the
best supercomputers we have today,
unless you cheat, of course.
And that is you start
feeding the supercomputers
information about the laws
of physics and chemistry.
and then they can start
building their own.
But that's an example of
intelligent design in action.
So the design space is enormous.
The evolutionary processes
are far too slow.
It's kind of like a computer
that only does one process,
let's say in the case of E. coli bacteria,
every thirty minutes.
Can you imagine if you had a
computer running so you
don't measure it in
megahertz or gigahertz or tera,
you're measuring it in
terms of one operation
every thirty minutes.
And that's basically a
generation of bacteria.
You're talking about like
sending a bunch of
chimpanzees with and saying
and hoping they find they
play around in that pile of
rubble and build a Maserati
That's not a,
that actually is an overly
optimistic scenario,
vastly over optimistic.
So this design space,
this plan for how to put
together the amino acids.
That's the lower level design space.
And then what you've got
these three-dimensional Lego blocks,
so to speak,
how to build yourself a
Maserati or an excavator.
That's even a higher level plan.
And as an engineer who was
involved in experimental test engine,
aircraft engines.
There's an enormous amount.
There's millions of dollars spent.
And dozens of engineers
spent just to get the plan figured out,
the bugs ironed out.
And a part of the problem,
which we haven't really looked at it.
Here's these mutations,
which he says basically is
the driving force to help for change.
But most mutations,
at least in the protein
coding areas are going to be damaging.
They're going to be negative.
They're going to be deleterious.
In fact, I got some numbers here.
What was it?
Roughly what?
And the estimates vary,
but for the protein coding regions here,
let me just take a wee peek.
It's going to be something
like seventy five to eighty
five percent of mutations
will be harmful.
That's in protein coding genes.
Ten to fifty percent.
You'll see there's overlap
here and these estimates will be neutral.
and less than one percent
are beneficial so somehow
you've got to go from an
excavator to a maserati and
you got this plan you want
to build the maserati but
there's somebody messing
things up and they mess it
up let's say seventy
percent of the time they
just randomly do something
that messes you back but
only less than one percent
of the time are you able to
catch that mistake and so
the the percentage of
errors building up to get
that maserati or anything
else at use is is
is increasing by at least
one order of magnitude.
So what I'm hearing is this
explains politics.
It's just a mess.
I think for politics,
you've got to start
bringing in human nature,
not intelligence necessarily.
Well, that's what I mean.
It's the negative part of
all the problems.
Okay,
let's go back to Brett here for a
little bit more.
And what would be that?
What is that force?
It's not a force.
What is that desire?
I believe there's a kind of
information stored in
genomes that is not in triplet codon form,
that is much more of a type
that would be familiar to a designer,
either of machines or a programmer.
What we did was we took the
random mutation model and
We recognized that it was Darwinian,
which it is,
and we therefore assumed that
it would explain anything
that we could see that was
clearly the product of
Darwinian forces on the
basis of those random mutations,
and we skipped the layer in
between in which selection
has a different kind of
information stored in the
genome that is not triplet
codon in nature.
So there's an information
stored in the genome that
is motivating it to seek new forms?
Nope, not motivating, allowing it.
Allowing it.
Allowing it.
So what's the motivation to
seek new forms?
Oh, the motivation was there.
It's primordial.
So the point is, let me try by analogy.
Okay.
Darwinists will tell you
that evolution cannot look forward.
It can only look backward.
And there's a way in which
that's just simply true.
On the other hand,
a Darwinist will also tell
you that you are a product
of evolution and you can look forward.
right?
So if evolution can't look forward,
but it can build a creature that can,
then can evolution look forward?
I think it effectively can.
So my point is that random
mutation mechanism is in a
race to produce new forms
that are better adapted to
the world than their ancestors.
Um,
Is there a brain behind or
mind behind this?
Like he's saying it's in a race.
It's like, well,
why what's assuming what
he's saying is true.
Why would there be a race?
Well, I can't hear you to Kirk.
You're oh, you're muted.
uh okay I found my cursor
that's the problem with
having too many screens you
forget where what screen is
my cursor on um yeah there
essentially there there are
different types of racist
going on here one simple
example to understand would
be a scientist in the us
that will knock out a gene
uh with maybe just one
mutation and then see how
long it takes to just by
random mutation selection to
get back into operation
again they don't knock two
out in the same gene and so
forth but what he finds is
that when I when I
mentioned there's damaging
mutations so let's say you
knock out two you you you
take two amino acids in a
particular gene remember
that's what you've done is
you've changed the
information note that he's
using the term information here
Just as an aside,
there is only one thing
that science has ever
observed in a repeatable,
reproducible way that can
create significant levels of information.
and that is intelligence.
That's all science has,
that's actually
reproducible and testable and so forth.
But in this case, in the experiment,
we're not using
intelligence when that
scientist mutates one amino acid,
the gene no longer works,
and he finds that after a
certain number of generations,
it's back up running again,
because that one there,
where the mistake was,
accidentally got mutated
back to what it should be.
And that happened before the
damaging mutations damaged
the gene so badly that even
if you mutated that one back,
there's now three other errors to fix.
So what he found is that you get two,
virtually impossible for it
to get fixed before the
damage incurred elsewhere
is so great that even if
you do fix those two mutations,
there's now five or six
other ones that are now, in other words,
the rate of damages is increasing faster
than the repairs.
And the only way around that
is have enough going on
that one accidentally gets
repaired before it gets so
badly damaged it won't work anymore.
And the moment it works,
it cuts in and it confers a
real good fitness advantage
to the organism because it
really needed that gene
that got temporarily shut down.
And then it can replenish the population.
So there is a race in that sense.
I am not sure that's the kind...
Well, let's,
I'm not sure what else you'd
be talking about a race.
There's basically damage
that's happening faster
than re than beneficial
mutations way faster.
Probably fifty to sixty times faster.
It can enhance its own ability to search,
right?
If you lose your keys,
you don't search randomly, right?
You go through a systematic
process of search,
and that systematic process
of search results in you
finding your keys sooner
than you would otherwise.
Okay, so I'm sorry to stop it on this one,
but it's like, because my mind is logic.
That's an intelligent way to
find your keys.
You don't do it randomly.
You do it systematically.
The only like the main
resource that Darwinists
would appeal to for a
non-random process here.
is when is basically natural
selection or the fitness advantage.
That's so strong that it
begins to occupy more than
its share of the population
and therefore pass its
genes on more often than
the other competitors
within the population.
So that's where it becomes the, the, the,
the direction it's going to
go is non-random.
In other words,
if there is a real fitness
advantage over here,
let's say you repair that gene.
then it's definitely going
to go in that direction.
That's not going to be.
But the problem is the mutation itself,
the methodology there is random.
You're just going to have to
wait until that gene is
repaired accidentally
before the damage where
it's getting destroyed
accidentally is too far
gone to actual repair.
It's kind of like trying to
repair a Maserati.
while three other guys are
working on it with sledgehammers.
And you've got to hurry up
with your repair because
they don't stop the
sledgehammers until you've
got the repair done.
But thank goodness if you
have a hundred million
Maseratis and you've got
teams working on all of them,
one of them might get
repaired before the
three-team sledgehammer
crew renders the thing so badly damaged,
even the repair is not
going to help anymore.
And then obviously that
Maserati will take over all
of the other millions that
have... It'll beat them in a race,
that's for sure.
And if that's the defining factor,
the other ones are just
going to keep sitting there.
So the one that gets
repaired... There's all
these other ones in the way.
All right, let's keep going.
We should expect evolution
to find every trick it can
access to increase the rate
at which it discovers forms
that would be useful in the habitat.
Why?
Why can we expect that?
well I mean one thing I
don't like about what he's
saying here what it's in
its best interest like well
you see he's using design
language here and that is a
problem in darwinism is
that it appears so
obviously designed and some
darwinists will say yeah we
use this design language
way too much and it
actually confuses the
discussion here like when
he says evolution will find
basically uh you just gotta
look at evolution let's call it variation
and selection and mutation
stuff you just got to look
at as a physical system
that's mindless and it's
not going to necessarily
find every trick in the
book it's not and
especially if those tricks
are so rare that you need
ten to the thirty-fifth
power of universes to find
one just one so I I think
Basically,
you can model it using a genetic
algorithm where there might
be a lot of solutions.
And in a simple problem,
you might find all of the
more impressive solutions.
You might find that.
And where the intelligent
design comes in there is in
your fitness function
within that program.
You've got to carefully
write your program so it's
actually going to find
whatever it is you want it to find.
And so there's a certain amount of
You call it cheating,
but it's not really cheating.
It's just design,
intelligent design in your
genetic algorithms.
Okay.
And this is simply that.
I'm not really saying
anything that extraordinary, right?
If I say, you know,
do you know that computers,
all they do is binary?
Well, that's true.
But if you then imagine that
that means that the people
who program computers do it in binary,
well,
there was a time when that was true.
But it's not true anymore.
It's not how you do it.
There's a much more
efficient way to program a computer,
and it involves a programming language,
which a computer itself can't understand.
But you can build a computer
that can either interpret
the language in real time,
or you can build a computer
that can accept the code as
it's spit out by a computer.
Can we stop there?
Mechanisms to radically... Okay, again,
there's an awful lot... Let
me say one thing.
There was a paper published
by Trevor and Ables back
around early two thousands
that showed that the kind of...
information they didn't call
it information they called
it functional complexity we
only find that in three
places and I happen to know
one of those authors is an
atheist and not a proponent
of intelligent design but
he also believes darwinism
is a failed theory but in
that paper they showed that
basically there's only
three places we find
functional complexity or information
And that is human languages,
programming languages,
and the information encoded in DNA.
And so we know that the first two.
And so what he,
all of the things he's
talking about is computer
analogy is examples of
intelligent sign in, in action,
all this computer stuff and
how we program that's intelligent.
Does that all is mind driven.
Nobody writes computer code
by just generating random things.
Now, that being said,
you can write carefully
designed genetic algorithms,
computer code to write code.
But that again is a
challenge of design and
action with the production.
But bottom line is the
question is this third stuff,
this information encoded in DNA.
The first two we know come from minds.
The third looks awful look like it.
In fact, this information,
the DNA is far superior,
far more advanced.
than anything humans have
ever been able to design yet.
And so if anything, it is even further,
it needs a super intelligence,
let's put it that way.
Yeah, as he's talking about, okay,
humans can write,
I'm a computer programmer,
I understand how that works.
But in evolution, if you get it wrong,
it explodes, right?
Well, if you have enough samples,
enough kicks at the can, so to speak.
Don't forget, it all started with one.
Yeah,
well that that that one thing is so
wildly improbable there's
another evolutionary
biologist by Eugene Kuhn
and he says you will need
And he's definitely against
intelligent design he in his paper.
They actually discussed.
There's already only two
options here Definitely we
don't want ID and you'll
see that he closes his
thing with that but a
solution is an infinite
number of universes and
And you know,
there's a problem when you
start appealing to an
infinite number of unseen,
untestable entities in
order to avoid one kind of
there's a mind behind the universe.
Just one mind or an infinite
number of unseen.
And that doesn't even solve
the problem because you've
got to then focus on, well,
where does this infinite
number of universes come from?
Because we know there's a different topic,
but we know from properties
of countable infinite sets
that that has a beginning too,
if in fact there's a
sequence that has to unfold
between parent universes and whatever.
Let's go a little bit more
with him and then I'm going
to wrap it up here.
increase the effectiveness of a program.
But it all comes out binary
anyway in the end.
That's really what I'm
arguing is that there's the
initial layer of Darwinian stuff,
the random mutation layer
that it looks like what we teach people.
There's another layer,
which we're not well familiar with,
and it results in a much
more powerful capacity to
adapt than we can explain
with that first mechanism,
which is why guys like
Tucker think there's just something.
These Darwinists,
they keep telling me that
the shrew becomes a bat,
and then they go on this
rant about the random
mutations and the triplet
codons and the mutations
that actually turn out to be good.
It's just not powerful enough,
and they're not wrong.
They're detecting something real.
And frankly, you know,
Tucker is the layperson example of this.
You've had Stephen Meyer on, you know,
he's actually,
he's a scientist who's quite good.
And he's spotted that the
mechanism in question isn't
powerful enough to explain
the phenomena that we swear it explains.
And so he's catching up,
but that's really on the
Darwinists for not
admitting what they can't
yet explain and pursuing it,
which is what they should be doing.
What do you think that force is?
It's not a force.
It can't be a force because
then we have to explain that.
I have to laugh when he says
the scientists who are
favoring ID are catching up.
no it's the other way around
what I really appreciate
about brett weinstein here
is that he's actually
thinking through this issue
he sees there's another
layer that's needed there
and the other layer he
refers to is what stephen
meyer talks about and that is information
There's information encoded
in the genomes that tells
you when to turn certain
genes on and off and so forth,
such that you can build these organisms.
And that's the higher level information.
And he's seen this,
Weinstein has seen this,
but the problem is,
Where do you what produces information?
What is it out there that can do this?
And as he points out,
it's not mutation and
genetic drift and stuff.
If you want to accidentally
produce this information,
you've got the ten to the
thirty fifth universe
problem or in Kunin's case
to get RNA replication.
You've got an infinite
number of universes required.
And that is not scientific.
Okay.
But let's say, let's give them the,
there was an infinite
number of universes.
Let's just give them that.
Yeah.
Okay.
We're on this one.
So on this one,
what had to happen was big
bang on this one, right?
Okay.
So there's a big bang on this universe.
that has the laws of physics
that have written into the
genes some information to say,
here's how you evolve.
And that would have to be on
every strand of proteins that happen to
be able to be perfectly
matched to create life,
which we looked at a few weeks ago,
that has to then end up in
the perfect swamp.
Yeah.
Because it has to be the
perfect temperature, perfect everything.
That then has to breed immediately.
Otherwise,
it has to start over in another
swamp somewhere.
Another one just has to
breed perfectly and split.
And then you've got two.
Yeah.
And those then immediately
need to split again.
Yeah.
Otherwise... But not perfectly.
You want mistakes introduced,
according to Darwinism,
so that you can
accidentally start getting variation.
But if you only have two,
they have to be perfect, or one will die.
Well, yeah,
they have to be good enough to reproduce.
Yeah.
And that's another problem
we didn't even talk about
is that as the mutational
load builds up in a population,
the percentage of progeny
that will actually survive
becomes lower and lower and
lower until extinction.
And so there's this constant
relentless force.
We call it evolution because
often they'll talk about
mutation or what do you call it?
Speed of mutation, mutation rate.
They will refer to that as
evolution in a lot of papers.
And so you can talk about
that actually destroys biological life.
It doesn't create it because
for the simple fact that it
introduces more mistakes
than it improvements.
And many of the improvements,
if you look those up,
if you actually say get on chat, GPT,
you start asking for where
examples of beneficial
mutations are actually
examples where information is destroyed.
A certain gene is shut down, for example.
That was causing a problem
or in that environment was
consuming too much of
whatever there was very limited.
So it's, it's.
It's a nightmare situation.
And I think Brett Weinstein
is starting to appreciate
this higher level, but not to the,
not the degree of difficulty.
Maybe he secretly is.
I've had many biology
professors tell me in the
privacy of their own office.
Uh,
in various ways that they think
Darwinism is a failed
theory because it just does
not explain bottom line,
the digital information
encoded in DNA that seems
to know what the lucky
sequences are that were
established at the moment
of the big bang and origin,
the laws of physics, whatever.
It already knows those
things as programmed.
There's nothing in nature.
In fact,
physics works against you because
physics wants to produce,
do the same thing all the time.
The laws of physics don't change.
So they want to produce
repeatable patterns, not random patterns.
And random patterns don't help you either.
It's just gibberish.
So somewhere you've got to
have a mix of randomness in
order to encode information
for proteins and then how
to build the Maserati.
So I just want to wrap my
mind around this.
They're saying now that, okay,
there is this physical side
of the gene where the
twenty proteins need to
line up perfectly.
Right?
Amino acids, yeah.
Amino acids to create one single protein.
How many proteins in that
single cell organism?
Oh,
they're thinking of maybe two hundred
and eighty proteins for a minimal genome.
Two hundred and eighty.
And those two hundred and
eighty are different, right?
They're not.
Oh, yeah.
They're different ones.
Yeah.
So you have to win the lottery.
Well, you have to win a lot.
You have to basically create the lottery.
So you create this single
cell organism that has to
land in the perfect spot
all at the exact same time.
Yep.
And
So where is the information
needed to know to split?
Well,
that has to be already built or
designed into the genome so
it does have a splitting reproduction.
It would need to be built into all of them,
right?
Yeah.
So it's kind of a chicken
and the egg problem.
And then you have to have the,
not only do we need to keep splitting,
right?
But for what Brett is saying
is there's now a design
space not only to split but to improve.
Yeah, see,
splitting just reproduces the
same thing again,
let's say for a single cell.
But the design space is kind of like, well,
where could we go with this?
Except, of course, nature doesn't think.
It's not thinking.
But there does seem to be...
a plan required to build any
particular organism.
I'm going to interrupt again,
because there needs to be
an IKEA manual for the
genomes that cannot think
at this point to do something.
And that needs to happen
millions and millions of times.
Yeah.
Where's the next manual coming from?
It's really quite
interesting because they're
literally purely natural.
Yeah, it is supposed to be designed space.
And you've only got two
hundred and eighty genomes
or two hundred and eighty protein genes.
Yeah.
In in this simple, simple organism.
And there's enough
information in there
magically to tell it to
split and improve.
Mm hmm.
how did you create a human
in this we're in the design
space well that's the
problem I mean that's the
problem when you actually
start thinking about this
you start to realize that
this is getting beyond
ridiculous normally science
doesn't you doesn't work
with probable events that
have probabilities such as
you're going to require an
infinite number of
universes or even ten to
the thirty-fifth power
universe science does re
And normally in science,
that's equated to zero.
There's zero chance of
getting light end of discussion,
but the big philosophical
underpinning is scientism
and people for whatever reason,
desperately want they're
not to be a designer behind
the origin of nature itself.
And then life they, they at all costs,
they were,
they will be prepared to do this.
And I think Brett Weinstein
is at least calling that out.
He's saying they're effectively lying.
telling a lie.
Uh, the Darwinists are,
even though he would say he's,
but he's at least pointing
this out and he's
acknowledging there's a
higher level plan.
What he doesn't really explain yet.
And to be fair, maybe he didn't have time.
but just how improbable this
plan is going to be.
Cause that's the real problem.
I'm prepared for this in
many arguments and discussions.
I'm prepared to grant the
existence of amino acids,
which is they're even still
trying to figure that out.
It's kind of like you've got
this information to build a
Maserati and it's all on the CD.
But first of all,
you've got to come up with
a natural explanation is
how you got the CD and
that's how it's read.
And the reader and the reader.
Yeah.
You've gotten the ribosome
that translates the, um, the RNA strand,
which is transcribed from
the information coded in the gene.
That ribosome is at a,
is a machine molecular
nanomachine that is jaw dropping.
It makes anything humans have engineered.
look crude, caveman-ish by comparison.
It has to read this string
and it goes through very
quickly and assembles the
protein in the basis of the
information encoded in the
RNA strand that's being fed
through this machine.
And the machine itself is
made out of quite a few
different proteins.
Ribosomal S, you know, ribosomal seven,
ten, you know,
there's a bunch of proteins,
think of the complex,
that have to be assembled just to read
what the information coded in DNA.
And those, unfortunately,
you need those before the
DNA is even going to do anything.
So it is an enormous problem,
but I'm prepared to grant that.
I would say,
even if we grant the first life form,
just take it as a freebie.
You will never get anything
beyond what you initially start off with.
You'll get a lot of variation.
And I think the Lenski
experiment demonstrated
that because they want to
see where's this going to go.
We'll evolve it over sixty
thousand generations.
But it didn't go anywhere.
In fact,
it lost information compared to
what it had when it started.
So that's the problem.
Basically, we're at what Serpa is saying.
Creation and evolution both require faith.
Evolution has never been seen or proven.
The world prefers evolution,
so they do not have to
respond to a righteous and just God.
Well, that,
I think that's the
philosophical underpinning
behind a motivation.
And I,
that we just want the freedom to do
whatever we want without
any moral accountability.
I suspect that's it.
No, I'm,
I'm quite sure Brett Weinstein
would beg to differ and
he'd come up with some other reason why,
but it's still closely
related to scientism.
I wanted to show one thing
cause it made me laugh.
Um, uh, where are we here?
So in building the thumbnail,
I went over to,
I have a paid version of MedJourney.
So AI image generator, one of the best.
And I fed it a prompt.
So this is using the world's information.
I want an illustration of
evolution from a single cell to a human.
And I just, I made it easy in four stages.
This is what it gave me.
That's all you asked was just.
So I was expecting like a little,
a little dot on one corner
and then maybe like a bird
and a monkey and a human, right?
So I get this.
So we got half a brain that
looks like it's coming out of a,
looks like there's some tree there.
It looks like that's a wooden person.
Even AI can't figure this out.
Well,
that is actually quite interesting
from a philosophical perspective.
I know that some of the
Darwinists will be screaming,
but I think the Darwinists
who are screaming really
need to pay attention to
what Brett is saying and
need to start thinking deeply,
more deeply about this.
And if AI comes up with that explanation,
This is a made version of AI.
Yeah, and believe me, there's a lot more,
let's say,
design built into mid-journey
than there is into nature.
Well,
I would say into the laws of physics.
Laws of physics are simple.
They just do simple things.
They just keep things under control.
They don't build complex things there.
They don't produce a massive anomalies.
That's what a light life form is,
is a massive anomaly in the
natural physical system.
Some totally it's so improbable.
You'll need an infinite
number of universes to
explain that anomaly or an
intelligent mind.
One of the two Occam's razor says,
go with an intelligent mind
behind nature and the
origin and diversity of life.
All right, well, thank you, Kirk,
for helping me understand
what Brett's been saying here.
And, yeah,
don't forget to like and subscribe,
hit the bell to be notified.
And those of you who are
watching this after and you have – no,
you guys are completely wrong.
I probably am.
I am not trained in this at all.
But Kirk is actually,
what's the thing again?
PhD in biophysics,
specializing in protein
structure and the
information required to encode proteins.
And this is not at a Bible school, right?
You got this.
No, and I didn't purchase it,
a mail order from Russia either.
From Russia.
No, I actually, no,
it's from the University of Guelph.
And I chose that area
because I was specifically interested
really interested in this
problem that brett
weinstein is talking about
it's gotta you you've gotta
isolate it you reduce your
problem down let's just
worry about proteins right
there you've run up against
a massive wall that would
require minimum ten to the
thirty five universes or an
infinite number depending
on whether you want eugene
coonan's approach or
whatever it's and then you
get more where the universes come from
Well, and there's that too,
or you can say there's an
intelligence behind the
protein and the kind of
information you need is the
level we can produce all the time.
We do it every time we write
a one page essay or email.
That level of information is
what's required to properly
sequence amino acids.
Although knowing the
sequence that's right now still, uh,
we're working,
it's reverse engineering project,
a giant reverse engineering project,
just to understand this
well enough to be able to
write sequences.
But obviously,
a Big Bang would allow that
to be written into...
You're obviously speaking,
what do you call it, sarcastically,
because it's not a chance.
Maybe.
There's problems with that, too.
Maybe we'll have to discuss that sometime.
I'm just into, like,
how do we just keep
remembering to breathe?
Thank goodness.
That, to me...
That's a brain,
and that itself is a
massive interesting thing.
Where did that come from?
What told the brain in those
initial things,
you need to do this by instinct.
From an engineering perspective, Sheldon,
if all the evolutionary
biologists got a degree in
engineering first,
Darwinism would have been a
dustbin of pseudoscience decades ago.
And replaced with
Well, I hate to say it,
but the fingerprints of an
intelligent mind are all
over the genomes of life in
terms of the level of
information encoded in there.
It takes a mind to write code.
We already know that.
It takes a mind to write code.
We're just reluctant to admit that.
And that goes back to what Serpa said.
Again, head over to KirkDurston.com.
He's got lots of stuff on there.
If you have anything you'd
like us to talk about, react to, whatever,
just hit that in the
comments or let Kirk know.
I'm gone for a few weeks here,
going to a little country
overseas called Japan.
And I'll enjoy that for a
few minutes and then back
down to our very hostile
neighbors to the south, those Americans.
Prepare to pay some tariffs
when you get back.
Hopefully we'll be able to.
We're imposing on them.
That's a whole other subject.
Why punish me by charging
for the stuff we import?
But that's...
Okay.
We'll talk to you later, Kirk.
Bye everyone.