Laboratory for Epithelial Morphogenesis, RIKEN Center for Biosystems Dynamics Research, Kobe, Hyogo 650-0047, Japan.
Semin Cell Dev Biol. 2021 Dec;120:94-107. doi: 10.1016/j.semcdb.2021.05.027. Epub 2021 May 29.
Epithelial tissues are sheet-like tissue structures that line the inner and outer surfaces of animal bodies and organs. Their remarkable ability to actively produce, or passively adapt to, complex surface geometries has fascinated physicists and biologists alike for centuries. The most simple and yet versatile process of epithelial deformation is epithelial folding, through which curved shapes, tissue convolutions and internal structures are produced. The advent of quantitative live imaging, combined with experimental manipulation and computational modeling, has rapidly advanced our understanding of epithelial folding. In particular, a set of mechanical principles has emerged to illustrate how forces are generated and dissipated to instigate curvature transitions in a variety of developmental contexts. Folding a tissue requires that mechanical loads or geometric changes be non-uniform. Given that polarity is the most distinct and fundamental feature of epithelia, understanding epithelial folding mechanics hinges crucially on how forces become polarized and how polarized differential deformation arises, for which I coin the term 'mechanical polarity'. In this review, five typical modules of mechanical processes are distilled from a diverse array of epithelial folding events. Their mechanical underpinnings with regard to how forces and polarity intersect are analyzed to accentuate the importance of mechanical polarity in the understanding of epithelial folding.
上皮组织是一种片状组织结构,排列在动物体和器官的内外表面。它们能够主动产生或被动适应复杂表面几何形状的非凡能力,让物理学家和生物学家着迷了几个世纪。上皮细胞变形最简单但最通用的过程是上皮细胞折叠,通过这种折叠可以产生弯曲的形状、组织褶皱和内部结构。定量活体成像的出现,结合实验操作和计算模型,极大地促进了我们对上皮细胞折叠的理解。特别是,一组力学原理已经出现,说明了在各种发育环境中,力是如何产生和耗散以引发曲率转变的。折叠组织需要机械载荷或几何形状的变化是非均匀的。鉴于极性是上皮组织最显著和最基本的特征,因此理解上皮细胞折叠力学的关键在于力如何极化以及极化的差异变形是如何产生的,为此我创造了“力学极性”一词。在这篇综述中,从各种上皮细胞折叠事件中提取了五个典型的力学过程模块。分析了它们在力和极性相互作用方面的力学基础,以强调力学极性在理解上皮细胞折叠中的重要性。