【2h】

How the embryonic chick brain twists

机译:雏鸡的大脑如何扭曲

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摘要

During early development, the tubular embryonic chick brain undergoes a combination of progressive ventral bending and rightward torsion, one of the earliest organ-level left–right asymmetry events in development. Existing evidence suggests that bending is caused by differential growth, but the mechanism for the predominantly rightward torsion of the embryonic brain tube remains poorly understood. Here, we show through a combination of in vitro experiments, a physical model of the embryonic morphology and mechanics analysis that the vitelline membrane (VM) exerts an external load on the brain that drives torsion. Our theoretical analysis showed that the force is of the order of 10 micronewtons. We also designed an experiment to use fluid surface tension to replace the mechanical role of the VM, and the estimated magnitude of the force owing to surface tension was shown to be consistent with the above theoretical analysis. We further discovered that the asymmetry of the looping heart determines the chirality of the twisted brain via physical mechanisms, demonstrating the mechanical transfer of left–right asymmetry between organs. Our experiments also implied that brain flexure is a necessary condition for torsion. Our work clarifies the mechanical origin of torsion and the development of left–right asymmetry in the early embryonic brain.
机译:在早期发育过程中,肾小管胚鸡的大脑经历了进行性腹侧弯曲和向右扭转,这是发育中最早的器官水平左右不对称事件之一。现有证据表明弯曲是由差异性生长引起的,但对胚胎脑管主要向右扭转的机制仍知之甚少。在这里,我们通过结合体外实验,胚胎形态学的物理模型和力学分析表明,卵黄膜(VM)在驱动扭转的大脑上施加了外部负荷。我们的理论分析表明,力约为10微牛顿。我们还设计了一个实验来使用流体表面张力来代替VM的机械作用,并且表明由表面张力引起的力的估计大小与上述理论分析一致。我们进一步发现,循环心脏的不对称性通过物理机制决定了扭曲的大脑的手性,证明了器官之间左右不对称性的机械传递。我们的实验还暗示,大脑弯曲是扭转的必要条件。我们的工作阐明了早期胚胎大脑中扭转的机械起源和左右不对称的发展。

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