How to shape a cylinder: pollen tube as a model system for the generation of complex cellular geometry.

Sexual Plant Reproduction Pub Date : 2010-03-01 Epub Date: 2009-11-18 DOI:10.1007/s00497-009-0121-4
Anja Geitmann
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引用次数: 69

Abstract

Expansive growth in plant cells is a formidable problem for biophysical studies, and the mechanical principles governing the generation of complex cellular geometries are still poorly understood. Pollen, the male gametophyte stage of the flowering plants, is an excellent model system for the investigation of the mechanics of complex growth processes. The initiation of pollen tube growth requires first of all, the spatially confined formation of a protuberance. This process must be controlled by the mechanical properties of the cell wall, since turgor is a non-vectorial force. In the elongating tube, cell wall expansion is confined to the apex of the cell, requiring the tubular region to be stabilized against turgor-induced tensile stress. Tip focused surface expansion must be coordinated with the supply of cell wall material to this region requiring the precise, logistical control of intracellular transport processes. The advantage of such a demanding mechanism is the high efficiency it confers on the pollen tube in leading an invasive way of life.

如何形成一个圆柱体:花粉管作为一个模型系统生成复杂的细胞几何。
植物细胞的膨胀生长是生物物理研究中的一个棘手问题,而控制复杂细胞几何形状产生的机械原理仍然知之甚少。花粉是开花植物的雄性配子体阶段,是研究复杂生长过程机制的一个很好的模式系统。花粉管生长的起始首先需要一个空间受限的突起形成。这个过程必须由细胞壁的机械特性来控制,因为膨胀是一种非矢量力。在细长管中,细胞壁的膨胀被限制在细胞的顶端,这就要求管状区域在抗膨胀引起的拉应力下保持稳定。尖端聚焦的表面膨胀必须与细胞壁材料向该区域的供应相协调,这需要对细胞内运输过程进行精确的后勤控制。这种苛刻的机制的优势在于,它赋予花粉管以一种侵入性的生活方式的高效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Sexual Plant Reproduction
Sexual Plant Reproduction 生物-生殖生物学
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