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斯坦福发现人脑由两个独立器官演化而来

Human brain is two separate organs, Stanford Medicine-led research finds

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颠覆传统认知的里程碑式基础生物学发现,不仅重塑了我们对大脑发育的理解,更直接解决了困扰学界数十年的后脑神经元体外培养难题,对神经退行性疾病研究具有重大实用价值。

For centuries, scientists have thought of the brain as a single, unified organ. But new research led by Stanford Medicine reveals that what we call the brain is two distinct organs that evolved independently over hundreds of millions of years.

几个世纪以来,科学家们一直将大脑视为一个单一、统一的器官。但斯坦福大学医学院领导的新研究表明,我们所谓的大脑实际上是两个独立进化了数亿年的不同器官。

The discovery overturns a prevailing model of brain development. For decades researchers have subscribed to the theory that there is a single progenitor cell early in development that gives rise to the entire brain. This model suggested all parts of the brain shared a common developmental origin.

这一发现颠覆了关于大脑发育的主流模型。几十年来,研究人员一直信奉一种理论,即发育早期存在一种单一的祖细胞,它能产生整个大脑。该模型认为,大脑的所有部分都共享相同的发育起源。

The new research finding shows that the human brain consists of two ancient nervous systems cleverly packaged together — a more primitive part that regulates our hearts’ beating, our breathing and other functions, and another that makes us distinctly human, capable of poetry, mathematics and wondering about our own origins.

这项新研究发现表明,人类大脑由两个古老的神经系统巧妙组合而成——一个更原始的部分负责调节心跳、呼吸和其他功能;另一个部分则使我们成为独特的人类,能够创作诗歌、进行数学运算并思考自身的起源。

The discovery could help explain why scientists have struggled for decades to grow certain types of brain cells in the laboratory — and it opens new avenues for studying devastating diseases that affect the brain stem, such as spinal muscular atrophy (also known as SMA) and amyotrophic lateral sclerosis (also known as ALS or Lou Gehrig’s disease).

这一发现有助于解释为何科学家数十年来在实验室中难以培育出某些类型的大脑细胞——同时也为研究影响脑干的毁灭性疾病(如脊髓性肌萎缩症(也称为SMA)和肌萎缩侧索硬化症(也称为ALS或卢·格里克病))开辟了新的途径。

Kyle Loh

Kyle Loh

“We’ve shown for the first time that the front of the brain arises from a totally different progenitor cell than the back of the brain,” said Kyle Loh, PhD, associate professor of developmental biology. “Our discovery means that we can now grow neurons from the back of the brain, the hindbrain, in a petri dish and study their functions.”

"我们首次证明,大脑前部源于与大脑后部完全不同的祖细胞,"发育生物学副教授Kyle Loh博士说。"我们的发现意味着我们现在可以在培养皿中培养来自大脑后部、即后脑的神经元,并研究它们的功能。"

The findings were published in Nature Neuroscience Sept. 18. Loh is the senior author. Graduate students Carolyn Dundes and Rayyan Jokhai are co-first authors of the research.

研究成果于9月18日发表在《自然·神经科学》(Nature Neuroscience)上。Loh是资深作者。研究生Carolyn Dundes和Rayyan Jokhai是该研究的共同第一作者。

Two brains

两个大脑

The adult brain has three main regions: the forebrain, midbrain and hindbrain. The forebrain handles higher-level thinking — language, consciousness and abstract reasoning. In contrast, the hindbrain, located at the back of the skull and often called the brain stem, controls essential, automatic functions that keep us alive: breathing, sleeping, and regulating our heartbeat and hunger urges. The hindbrain neurons also control the muscles of the face, tongue and throat, which affect speech and swallowing.

成年大脑有三个主要区域:前脑、中脑和后脑。前脑负责高级思维活动,如语言、意识和抽象推理。相比之下,位于颅骨后方、常被称为脑干的后脑,控制着维持生命所必需的基本自动功能:呼吸、睡眠以及调节心率和饥饿感。后脑神经元还控制面部、舌头和喉咙的肌肉,这些肌肉影响说话和吞咽。

Despite the critical importance of the hindbrain, scientists have struggled for decades to generate human hindbrain neurons in the laboratory. This gap has hampered research into devastating diseases affecting the brain stem, including spinal muscular atrophy and amyotrophic lateral sclerosis.

尽管后脑具有至关重要的地位,但数十年来,科学家们一直在实验室中难以培育出人类后脑神经元。这一空白阻碍了对影响脑干的毁灭性疾病的深入研究,包括脊髓性肌萎缩症和肌萎缩侧索硬化症。

SMA is a leading genetic cause of death in children under 1 year of age. ALS, which is often diagnosed between the ages of 40 and 70, affects both the forebrain and the hindbrain. In both disorders, certain hindbrain neurons gradually cease to function, and the patient loses the ability to swallow, which can cause pneumonia when food or liquid is inhaled into the lungs; eventually, patients lose the ability to breathe.

脊髓性肌萎缩症(SMA)是1岁以下儿童死亡的主要遗传原因。肌萎缩侧索硬化症(ALS)通常在40至70岁之间确诊,会影响前脑和后脑。在这两种疾病中,某些后脑神经元逐渐停止功能,患者失去吞咽能力,当食物或液体吸入肺部时会导致肺炎;最终,患者会丧失呼吸能力。

The researchers’ breakthrough came from studying the earliest moments of embryonic development, during a stage called gastrulation when the body first takes shape. Jokhai and Dundes discovered that the hindbrain follows a separate developmental path, running in parallel to — rather than branching off from — the pathway that creates the forebrain and midbrain.

研究人员的突破来自于对胚胎发育最早阶段的观察,即在原肠胚形成阶段,此时身体首次成形。Jokhai和Dundes发现,后脑遵循一条独立的发展路径,它与形成前脑和中脑的路径平行运行,而非从中分支出来。

The researchers learned this from examining developing mouse embryos. They identified two different brain progenitor cells. One, which expresses a gene called Otx2, is destined to become the forebrain and midbrain. The other, which expresses a gene called Gbx2, is committed to forming the hindbrain. They showed that these two cell populations never overlap; they are mutually exclusive from the earliest stages of development.

研究人员通过检查发育中的小鼠胚胎得知这一点。他们鉴定出两种不同的脑祖细胞。一种表达名为Otx2的基因,注定成为前脑和中脑;另一种表达名为Gbx2的基因,则致力于形成后脑。他们表明,这两类细胞群从不重叠;在发育的最早期阶段,它们就是相互排斥的。

The team then examined the DNA packaging, or chromatin, in these cells. Chromatin is a way cells determine which genes can be easily accessed and which are bundled away out of reach. What they found was striking: The anterior neural ectoderm (future forebrain and midbrain) and posterior neural ectoderm (future hindbrain) have fundamentally different chromatin configurations. These differences essentially locked each progenitor cell into its respective fate, like travelers on parallel tracks that never cross.

随后,团队检查了这些细胞中的DNA包装,即染色质。染色质是细胞决定哪些基因易于访问、哪些被打包隔离在外的一种机制。他们的发现令人震惊:前神经外胚层(未来的前脑和中脑)和后神经外胚层(未来的后脑)具有根本不同的染色质构型。这些差异本质上将每种祖细胞锁定在其各自的命运中,就像在平行轨道上运行且永不交汇的旅客。

“Previous attempts to make hindbrain neurons likely tried to coax forebrain and midbrain progenitors into hindbrain cells, which our study shows is not possible,” Jokhai said.

“此前制造后脑神经元的尝试可能试图诱导前脑和中脑祖细胞转化为后脑细胞,而我们的研究表明这是不可能的,”Jokhai说。

This revelation explained decades of frustration in the field — scientists had been trying to turn one type of progenitor cell into another that it is fundamentally incapable of becoming.

这一发现解释了该领域数十年的挫败感——科学家们一直试图将一种类型的祖细胞转化为另一种它从根本上无法成为的细胞。

“In stem cell biology, people are always fixated with creating the end cell type, like the neuron,” Jokhai said. “But it’s important to begin at the earliest stages of embryonic development. Our careful attention to that early time point allowed us to find this fundamental split in brain development.”

“在干细胞生物学中,人们总是执着于创造最终的细胞类型,比如神经元,”Jokhai说。“但重要的是要从胚胎发育的最早期阶段开始。我们对这一早期时间点的仔细关注使我们发现了大脑发育中的这一根本性分裂。”

Growing hindbrain neurons

生长后脑神经元

Armed with this knowledge, the researchers for the first time successfully coaxed human pluripotent stem cells (a kind of cell that can create any cell in the human body) to become functional hindbrain motor neurons in the laboratory. These lab-grown neurons displayed all the hallmarks of authentic hindbrain cells: They exhibited waves of electrical activity called action potentials and made proteins that identify the segments of the hindbrain that control facial and swallowing muscles.

凭借这些知识,研究人员首次成功地将人类多能干细胞(一种能够产生人体内任何细胞的细胞)诱导成为功能性后脑运动神经元。这些实验室培养的神经元表现出真实后脑细胞的所有特征:它们表现出称为动作电位的电活动波,并制造出识别控制面部和吞咽肌肉的后脑节段的蛋白质。

Finally, the researchers looked back over 550 million years of evolutionary time. They found the same two-origin brain pattern in chickens; zebrafish; and, remarkably, in acorn worms, tiny creatures living on the ocean floor that share a distant common ancestor with humans. Jellyfish, which diverged from humans about 600 to 700 million years ago, have two nervous systems at different ends of their body.

最后,研究人员回顾了5.5亿年的进化时间。他们在鸡、斑马鱼以及令人惊讶的是在橡虫蠕虫中都发现了同样的双起源大脑模式。橡虫蠕虫是生活在海底的微小生物,与人类拥有遥远的共同祖先。水母大约在6亿到7亿年前与人类分道扬镳,它们的身体两端有两个不同的神经系统。

“Our research suggests that evolution took two existing neural systems and pushed them together spatially,” Loh said. “Having the brain as one organ would probably be more efficient, but we rely on this primordial way to make the brain as two separate pieces.”

“我们的研究表明,进化将两个现有的神经系统在空间上推到一起,”Loh说。“拥有一个单一的大脑器官可能效率更高,但我们依赖于这种原始的方式,将大脑分成两个独立的部分。”

“I was surprised at our findings because the word ‘brain’ implies a contiguous organ that likely has a singular origin,” Jokhai said. “But even 500 million years ago, there were these separate neural systems, which now almost operate as one, which is very cool.”

“我对我们的发现感到惊讶,因为‘大脑’这个词暗示了一个可能具有单一来源的连续器官,”Jokhai说。“但即使在5亿年前,就存在这些独立的神经系统,现在它们几乎作为一个整体运作,这非常酷。”

The research also has implications for investigating treatments for SMA, ALS and other conditions affecting the brain stem. Until now, studying these diseases has been nearly impossible because scientists cannot obtain brain stem tissue from living patients. The ability to grow these neurons in a dish opens new possibilities for understanding what goes wrong. There’s even an unexpected connection to obesity treatment: The hindbrain contains circuits that regulate hunger — which is precisely how weight-loss drugs like semaglutide work.

这项研究还对调查影响脑干的脊髓性肌萎缩症(SMA)、肌萎缩侧索硬化症(ALS)和其他疾病的治疗方法产生影响。直到现在,研究这些疾病几乎是不可能的,因为科学家无法从活体患者身上获得脑干组织。能够在培养皿中培养这些神经元为理解出错的原因开辟了新的可能性。甚至还有一个与肥胖治疗相关的意外联系:后脑包含调节饥饿感的回路——这正是司美格鲁肽等减肥药物的作用方式。

The researchers would like to extend their studies to determine the developmental origins of the spinal cord and to learn exactly how SMA and ALS compromise the function of hindbrain neurons.

研究人员希望扩展他们的研究,以确定脊髓的发育起源,并确切了解SMA和ALS如何损害后脑神经元的功能。

“Now we have a model to better understand these devastating diseases, and work toward regenerative therapies for them,” Jokhai said. “This is a very exciting new frontier in brain research.”

“现在,我们有了一个模型来更好地理解这些毁灭性的疾病,并为之开展再生疗法研究,”Jokhai说。“这是脑研究领域一个非常令人兴奋的新前沿。”

Researchers from the California Institute of Technology and the University of California, San Francisco contributed to the study.

加州理工学院和旧金山加利福尼亚大学的研究人员为该研究做出了贡献。

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