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Fluid-dynamical basis of the embryonic development of left-right asymmetry in vertebrates

机译:脊椎动物左右不对称胚胎发育的流体动力学基础

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摘要

Experimental work in developmental biology has recently shown in mice that fluid flow driven by rotating cilia in the node, a structure present in the early stages of growth of vertebrate embryos, is responsible for determining the normal development of the left-right axis, with the heart on the left of the body, the liver on the right, and so on. The role of physics, in particular, of fluid dynamics, in the process is one of the important questions that remain to be answered. We show with an analysis of the fluid dynamics of the nodal flow in the developing embryo that the leftward flow that has been experimentally observed may be produced by the monocilia driving it being tilted toward the posterior. We propose a model for morphogen transport and mixing in the nodal flow and discuss how the development of left-right asymmetry might be initiated.
机译:发育生物学的实验工作最近在小鼠中显示,结节中旋转纤毛驱动的流体流动是脊椎动物胚胎生长早期的一种结构,负责确定左右轴的正常发育,其中心脏在身体的左侧,肝脏在右侧,依此类推。在此过程中,物理学尤其是流体动力学的作用是有待解决的重要问题之一。通过对正在发育的胚胎中的节流的流体动力学进行分析,我们发现,实验观察到的向左流动可能是由单纤毛驱动其向后倾斜产生的。我们提出了一种在结节流中形态发生子运输和混合的模型,并讨论了如何启动左右不对称性。

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