Lintilhac Philip M
Department of Plant Biology, The University of Vermont, 63 Carrigan Drive, Burlington, VT, 05405, USA,
Protoplasma. 2014 Jan;251(1):25-36. doi: 10.1007/s00709-013-0522-y. Epub 2013 Jul 12.
The relative simplicity of plant developmental systems, having evolved within the universal constraints imposed by the plant cell wall, may allow us to outline a consistent developmental narrative that is not currently possible in the animal kingdom. In this article, I discuss three aspects of the development of the mature form in plants, approaching them in terms of the role played by the biophysics and mechanics of the cell wall during growth. First, I discuss axis extension in terms of a loss of stability-based model of cell wall stress relaxation and I introduce the possibility that cell wall stress relaxation can be modeled as a binary switch. Second, I consider meristem shape and surface conformation as a controlling element in the morphogenetic circuitry of plant organogenesis at the apex. Third, I approach the issue of reproductive differentiation and propose that the multicellular sporangium, a universal feature of land plants, acts as a stress-mechanical lens, focusing growth-induced stresses to create a geometrically precise mechanical singularity that can serve as an inducing developmental signal triggering the initiation of reproductive differentiation. Lastly, I offer these three examples of biophysically integrated control processes as entry points into a narrative that provides an independent, nongenetic context for understanding the evolution of the apoplast and the morphogenetic ontogeny of multicellular land plants.
植物发育系统相对简单,它是在植物细胞壁所施加的普遍限制条件下进化而来的,这或许能让我们勾勒出一个连贯的发育历程,而这在动物界目前是无法做到的。在本文中,我将探讨植物成熟形态发育的三个方面,从细胞壁的生物物理学和力学在生长过程中所起的作用来进行分析。首先,我依据基于稳定性丧失的细胞壁应力松弛模型来讨论轴的延伸,并介绍将细胞壁应力松弛建模为二元开关的可能性。其次,我将分生组织的形状和表面构象视为植物顶端器官发生形态发生回路中的一个控制要素。第三,我探讨生殖分化问题,并提出多细胞孢子囊作为陆地植物的一个普遍特征,起着应力 - 机械透镜的作用,聚焦生长诱导的应力以形成一个几何精确的机械奇点,该奇点可作为触发生殖分化起始的诱导发育信号。最后,我给出这三个生物物理整合控制过程的例子,作为进入一个叙述的切入点,该叙述为理解质外体的进化和多细胞陆地植物的形态发生个体发育提供了一个独立的、非遗传的背景。