Its Time for Intelligent Design

[Music]

i’m an engineer

and one of the first examples of

engineering i can think of

something that happened in high school a

group of students including me

were asked to build a bridge between two

tables

using some saran wrap some newspaper and

some tape and not

a lot else we thought about it for like

five seconds

and we decided we were going to build a

bridge based on

newspaper triangles because we thought

those were very strong

and what we ended up making looked like

this as i think you can imagine

this paper bridge was not very good it

didn’t work at all

what i learned from this experience was

two things first off

making something that’s a good idea

making it robust

requires some thought secondly don’t

build bridges out of paper

it’s not the right choice and won’t work

well

fast forward to the present day i just

finished my phd at mit

in biological engineering so i don’t

build bridges

i build bacteria that work differently

and have

new functions often when i tell people

this

like my uber driver or my dentist

i get the response aren’t you playing

god

this is a really good question and i

often brush it off so

today i want to set the record straight

and i want to actually give an answer to

this question

biology is really beautiful and

wonderful and it’s inspirational

and it’s also imperfect like the paper

bridge

that i built badly in high school

biology isn’t robust

and it could be composed of better

materials

we can and we should make biology better

the first thing to know about

engineering living systems

is that it feels super different than

engineering anything else

biological engineering is like

discovering that a

super messy alien spaceship has like

crash landed on earth

and we need to go through every

component and backwards engineer it

so that we can understand like the

tiniest bit about how it works

and have some chance at managing to

change

what it does biological systems are so

foreign

so alien they work and are structured in

ways that are so completely different

than the way human engineered systems

are built

that it feels a lot like an alien

spaceship

and in fact that’s because biological

systems weren’t made by humans

organisms are absolutely the most

sophisticated machines we know of

and they came about after four billion

years

of random chance no humans

and it shows right in addition to the

beauty and wonder of biology

it’s also unfinished and imperfect

and today i want to talk about two types

of imperfection

in biological systems that are the same

as the problems with that bridge

i made in high school first biological

systems

are not always very robust and second

they could be composed of much more

suitable materials

so first i want to give you an example

of a

really really dumb mistake in the human

genome

that gives people cancer normal healthy

cells

have lots of little molecular machines

called proteins

that they use to do all the normal

things that cells need to do to be alive

there are proteins that replicate your

dna um there’s proteins in your eyes

that sense light

proteins in plants that help them absorb

sunlight

proteins they basically do all the

chemical heavy lifting

in in living systems proteins are

physically composed of a bunch of

building blocks which are called amino

acids

so to make a protein you string the

building blocks together

and that string will fold up into like

the functional version of the protein

that performs some sort of function

these molecular machines are so central

to having a happy healthy cell

that it’s super important that your body

is able to manufacture

them correctly and also pass on

instructions

for how to do that to your descendants

and

in fact your genome is composed of those

instructions each gene in your genome

encodes instructions

for how to make a protein when you go

out in the sun you get a sunburn

it will physically damage your dna

which sometimes will mess up the

instructions for how to make one of

these proteins

and and here’s where the problem comes

in one of the most

important types of proteins that

protects you from cancer are proteins

that basically do quality control

they double check to make sure the cell

is operating right

and protect you from cancer so mistakes

in the dna

for how to make those proteins those

mistakes are especially bad and

especially likely to cause you cancer so

over here on chromosome 9 of the human

genome there’s two proteins

both of them are essential quality

control proteins both of them protect

you from cancer

and there’s something like fishy about

how

their the instructions are written down

which is that the instructions are

written down like

on top of each other but offset by just

a little bit

using like physically the same piece of

dna

and that means that any mutation in that

part of chromosome 9 is super likely to

mess up

either one or both of these super

essential quality control proteins

in fact mutations in this area of

chromosome 9

cause lymphoma and carcinoma which are

both types of cancer

from an engineering perspective this is

just an infuriatingly bad mistake

just scooch one of the proteins over

like they don’t have to be encoded on

top of each other

in a genome that’s three billion bases

of dna long how can you possibly not

have space

to encode these two essential qc

proteins separately

to me this area of the human genome is

like

painfully embarrassing over billions of

years of evolution genomes will

accumulate these errors

it’s just heartbreaking because any

human engineer would catch this

no one would engineer this deliberately

it sucks because

this mistake has caused there to be a

ticking bomb

in the genome of everyone watching this

a ticking bomb that nature left us

as a present to discover and i think

this would be a note

i would thus put on the human genome

report card mostly good but also

gigantic mistakes

it’s quite a paradox there’s so much

beauty and

so many fantastically elegant solutions

that

nature has presented us but they come

alongside huge mistakes

things nature didn’t get around to

fixing and i think we

tend to hesitate to criticize biology

because of its beauty on the whole that

does us all a disservice

because we let our awe

of living systems prevent us from

recognizing that there are

fixable problems that we could improve

upon

and i think when people think about

human genome editing

they get really carried away in

contemplating the morality

of like parents editing their children

to be tall and blonde and good at

basketball

and that’s not what’s going to happen

human genome editing is going to be used

to correct

egregious issues with the human genome

that arose because

our genome is the result of 4 billion

years of random chance

in the history of the universe no one

has ever sat down

and been like how should this work what

would work well

let’s engineer this in a way that makes

sense and is a good idea

no one has ever done that and that’s the

person i want to be

i want to be the person who engineers

nice clean robust genomes and i want to

do it with some rigor

and really careful thought i want to add

some

intelligent design if you will into how

living organisms are built

so in fact during my phd i worked on

making biological systems better

i wanted to make a systematic change

that would allow biology to be more

extensible

one of the big limitations of biology

are the basic building blocks themselves

so there are only 20 different types of

amino acids and when you look at the

amino acids

chemically speaking they’re actually

kind of boring

like one very easy way to see this is to

look at them on a periodic table

out of all this good stuff only five

chemical elements

appear in proteins this would be like

if the alien biology spaceship landed on

earth and we find that it’s entirely

made out of

paper it’s perhaps amazing and

inspirational that they managed to get

so far

light years with so little but at the

same time like

maybe we could get some heavy metals up

here because they’re like good for

things

so in grad school i worked on genetic

code expansion

which is where we’re trying to expand

biology to include

more interesting building blocks that

have new properties i

told you before that genes write down

instructions for how to create proteins

and the way these instructions are

written is actually very simple

the gene is just composed of a list of

three-letter names or codons

for each amino acid in the order that

they should be added to the string which

will fold up into your protein

what i worked on during my phd is

creating bacteria that have

both a very simple and also like very

fundamental change

they use longer names to refer to

building blocks

so they use four base codons rather than

three base codons

longer names means more possible names

and thus more possible amino acids and

that would be amazing

do you want to make proteins that break

down plastic bottles

use new amino acids proteins that are

next generation versions

of therapeutics like insulin or

interferon

those can be improved again with new

amino acids

if you want to make new types of cancer

therapeutics

that aren’t possible today you have to

use new amino acids

expanding biology to be more chemically

sophisticated

this is the future and so to answer the

question i posed at the beginning

aren’t you playing god the answer is yes

we’ve been gifted with an amazing

starting point a natural world

that’s full of plants and animals and

people and now we can take it from here

we can take these systems and smooth out

the sharp edges

that nature didn’t get around to fixing

and we can make our own genome more

robust

in order to prevent cancer we can expand

the fundamental chemical basis of life

so that we can use biology to build

better stuff we can

and we should finally intelligently

design

life

[音乐]

我是一名工程师

,也是最早的工程学示例之一,

我能想到

高中发生的一些事情,

包括我在内的一群学生

被要求在两张桌子之间架起一座桥梁,

使用一些保鲜膜、一些报纸和

一些胶带 并

没有太多其他我们考虑了大约

五秒钟

,我们决定我们要建立一个

基于

报纸三角形的桥梁,因为我们认为

它们非常坚固

,我们最终制作的东西看起来像

这样,因为我认为你可以想象

这个 纸桥不是很好,它

根本不起作用

我从这次经历中学到的

两件事首先

是制作一个好主意

使它变得健壮

需要一些思考其次不要

用纸建造桥梁

这不是正确的选择 并且不会很好地工作

到今天我刚刚

在麻省理工学院完成了我

的生物工程博士学位,所以我不

建造桥梁

我建造了工作方式不同

并且

经常具有新功能的细菌 当我

像我的优步司机或牙医这样告诉别人时,

我得到的回应是你不是在玩上帝吗,

这是一个非常好的问题,我

经常不理会它,所以

今天我想澄清事实

,我想真正给予 这个问题的答案

生物学真的很美,很

精彩,很鼓舞人心

,也很不完美

关于工程生命系统,首先要知道的

是,它感觉与

工程任何其他东西都非常不同,

生物工程就像

发现一艘

超级凌乱的外星飞船

坠毁在地球上

,我们需要检查每个

组件并对其进行反向工程,

以便 我们可以

稍微了解它的工作原理,

并有机会设法

改变它的作用生物系统是如此

陌生,

所以 外星人它们的工作方式和结构

与人类工程系统

的构建

方式完全不同,感觉很像外星

飞船

,事实上这是因为生物

系统不是由人类制造的,

生物体绝对是最

复杂的机器 我们知道

,它们是在 40 亿

随机机会之后出现的

就像我在高中时做的那座桥的问题一样,

首先生物

系统

并不总是很健壮,其次

它们可能由更

合适的材料组成,

所以首先我想给你举个例子

说明人类的一个非常愚蠢的错误

让人们患癌的基因组 正常的健康

细胞

有很多叫做蛋白质的小分子机器

,它们用来做所有的事情

细胞为了活着需要做的正常事情

有蛋白质可以复制你的

DNA你眼睛中有蛋白质

可以感知

植物中的光蛋白质帮助它们吸收

阳光

蛋白质它们基本上完成了生命系统中所有

化学繁重的工作

蛋白质是

物理上由一堆

称为氨基酸的构建块

组成,

因此要制造蛋白质,您将

构建块

串在一起,该串将折叠成

蛋白质的功能版本

,执行某种功能,

这些分子机器非常重要

为了拥有一个快乐健康的细胞

,你的身体能够

正确地制造它们并且将

如何做到这一点的指令传递给你的后代

,事实上你的基因组是由这些指令组成的

,你基因组中的每个基因都

编码

指令 当

你在阳光下晒伤时如何制造蛋白质你会晒伤

它会物理损坏你的 DNA

这有时会弄乱

有关如何制造其中一种

蛋白质

的说明,这就是问题所在

保护您免受癌症侵害的最重要的蛋白质类型之一

是基本上进行质量控制的蛋白质,

他们会仔细检查以确保

细胞运行正常

,可以保护你免受癌症的侵害,所以

DNA 中的错误

如何制造这些蛋白质这些

错误特别糟糕,

特别可能导致你癌症所以

在人类基因组的第 9 号染色体上,

有两种蛋白质

它们都是必不可少的 质量

控制蛋白质它们都可以保护

您免受癌症侵害,

并且

它们的说明如何写下来有点可疑

,即这些说明是

像在彼此之上一样写下来的

,但是

使用物理上的同一块来抵消一点点 dna

,这意味着

9 号染色体那部分的任何突变都极有可能

弄乱

t 中的一个或两个 事实上,这些超级

重要的质量控制蛋白

在 9 号染色体的这个区域发生突变

会导致淋巴瘤和癌,

从工程学的角度来看,

这两种癌症

都是癌症类型

在一个有 30 亿个 dna 碱基长的基因组中相互

重叠编码,在我看来,你怎么可能

没有空间

分别编码这两种重要的 qc

蛋白

基因组会

累积这些错误,

这令人心碎,因为任何

人类工程师都会发现这一点,

没有人会故意设计

它。这很糟糕,因为

这个错误导致

每个人的基因组中都有一颗定时炸弹,每个人都在看着

这个定时炸弹,大自然留给

我们的 现在去发现,我认为

这将是

我将因此放在人类基因组

报告卡上的一个注释,主要是粘稠的 d 但也有

巨大的错误

这是一个悖论 大自然向我们展示了如此多的

美丽和

非常优雅的解决

方案,

但它们

伴随着巨大的错误,这些错误是

大自然

无法解决的,我认为我们

倾向于犹豫批评生物学,

因为 总体而言,它的美丽对

我们所有人都是一种伤害,

因为我们让我们

对生命系统的敬畏阻止我们

认识到

存在我们可以改进的可解决问题

,我认为当人们想到

人类基因组编辑时,

他们真的会被带走

考虑

像父母一样将他们的孩子编辑

成高大金发和擅长

篮球的道德

,这不会发生

人类基因组编辑将

用于纠正

人类基因组出现的严重问题,

因为

我们的基因组是 40亿

的宇宙历史上的随机机会,从来没有人

坐过,怎么会这样 努力工作

让我们以一种有意义的方式来设计它,这

是一个好主意,

从来没有人这样做过,这就是

我想成为的

人 它有一些严谨

和非常仔细的想法我想添加

一些

智能设计如果你想了解

如何构建生物体

所以事实上在我的博士学位期间我致力于

让生物系统变得更好

我想做一个系统性的改变

,让生物学成为 更具

可扩展

性 生物学的一大限制

是基本构建块本身,

所以只有 20 种不同类型的

氨基酸,当你从化学上看

氨基酸时,

它们实际上

有点无聊,

就像一种非常简单的方法来看待这个 就是

在元素周期表上看它们

在所有这些好东西中 只有五种

化学元素

出现在蛋白质中 这

就像外星生物飞船降落在

地球上并且我们发现 t 它

完全是

用纸做的,也许是令人惊奇和

鼓舞人心的,他们用这么少的东西设法走了

这么远的

光年,但

与此同时,

也许我们可以在这里得到一些重金属,

因为它们对事物有好处,

所以在毕业时 学校我从事遗传

密码扩展

,这是我们试图扩展

生物学的地方,以包括

更有趣的构建块,这些构建块

具有新的特性,我

告诉过你,基因写下

如何创建

蛋白质的指令,这些指令的

编写方式实际上是 非常

简单,基因只是由每个氨基酸的

三个字母名称或密码子的列表组成

它们应该按顺序添加到字符串中,这

将折叠成你的蛋白质

我在博士期间所做的工作是

创造细菌

有一个非常简单和非常

基本的变化

他们使用更长的名称来指代

构建块,

因此他们使用四个碱基密码子而不是

三个碱基密码子

更长 名称意味着更多可能的名称

,因此更多可能的氨基酸,

这将是惊人的

你想制造分解塑料瓶的蛋白质吗?

使用新的氨基酸蛋白质是

下一代治疗方法,如胰岛素或

干扰素

氨基酸

如果你想制造

今天不可能的新型癌症治疗剂,你必须

使用新的氨基酸来

扩展生物学,使其在化学上更加

复杂,

这是未来,所以

回答我一开始提出的问题

不是 你在扮演上帝 答案是肯定的

我们被赋予了一个惊人的

起点 一个

充满动植物和

人类的自然世界 现在我们可以从这里取走它

我们可以取走这些系统并

消除自然没有的锋利边缘 不要到处去修复

,我们可以使我们自己的基因组更加

健壮

,以预防癌症,我们可以扩展

生命的基本化学基础,

这样我们就可以 用生物学来建造

更好的东西

,我们最终应该聪明地

设计

生活