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使用弹性壳理论对上皮细胞的顶端缢缩进行建模。

Modelling apical constriction in epithelia using elastic shell theory.

机构信息

Oxford Centre for Industrial and Applied Mathematics, Mathematical Institute, Oxford, UK.

出版信息

Biomech Model Mechanobiol. 2010 Jun;9(3):247-61. doi: 10.1007/s10237-009-0174-1. Epub 2009 Oct 27.

Abstract

Apical constriction is one of the fundamental mechanisms by which embryonic tissue is deformed, giving rise to the shape and form of the fully-developed organism. The mechanism involves a contraction of fibres embedded in the apical side of epithelial tissues, leading to an invagination or folding of the cell sheet. In this article the phenomenon is modelled mechanically by describing the epithelial sheet as an elastic shell, which contains a surface representing the continuous mesh formed from the embedded fibres. Allowing this mesh to contract, an enhanced shell theory is developed in which the stiffness and bending tensors of the shell are modified to include the fibres' stiffness, and in which the active effects of the contraction appear as body forces in the shell equilibrium equations. Numerical examples are presented at the end, including the bending of a plate and a cylindrical shell (modelling neurulation) and the invagination of a spherical shell (modelling simple gastrulation).

摘要

顶端紧缩是胚胎组织变形的基本机制之一,它导致了完全发育的生物体的形状和形式。该机制涉及嵌入在上皮组织顶端侧的纤维的收缩,导致细胞片的内陷或折叠。在本文中,通过将上皮片描述为一个弹性壳,其中包含一个表面,该表面表示由嵌入的纤维形成的连续网格,来对该现象进行力学建模。允许这个网格收缩,一个增强的壳理论被发展,其中壳的刚度和弯曲张量被修改以包括纤维的刚度,并且收缩的主动效应作为壳平衡方程中的体力出现。最后给出了数值例子,包括板和圆柱壳的弯曲(模拟神经管形成)以及球壳的内陷(模拟简单的原肠胚形成)。

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