From the article: [...] [...] [...] Paper is here.
From the article:
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.
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.
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.
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.
[...]
“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.
[...]
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.
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.
[...]
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.
This sounds like a genuinely major breakthrough? I think that fairly often when seeing headlines and articles, and then comments will say that it's actually not THAT big. But the avenues of...
This sounds like a genuinely major breakthrough? I think that fairly often when seeing headlines and articles, and then comments will say that it's actually not THAT big. But the avenues of research this opens up, and how this will impact our overall understanding of how our bodies work and relate to the brain, seems monumental to me.
Yeah, I Am Not A Neuroscientist, etc, etc, but I had a similarly skeptical reaction - I literally sent it to a friend and said "This feels like possibly one of the least-accurate headlines I've...
Yeah, I Am Not A Neuroscientist, etc, etc, but I had a similarly skeptical reaction - I literally sent it to a friend and said "This feels like possibly one of the least-accurate headlines I've ever seen on a science article and I haven't even read the body yet". Then I read it, and... yeah it sounds pretty legit?
From the article:
[...]
[...]
[...]
Paper is here.
This sounds like a genuinely major breakthrough? I think that fairly often when seeing headlines and articles, and then comments will say that it's actually not THAT big. But the avenues of research this opens up, and how this will impact our overall understanding of how our bodies work and relate to the brain, seems monumental to me.
Yeah, I Am Not A Neuroscientist, etc, etc, but I had a similarly skeptical reaction - I literally sent it to a friend and said "This feels like possibly one of the least-accurate headlines I've ever seen on a science article and I haven't even read the body yet". Then I read it, and... yeah it sounds pretty legit?