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花粉管中的极性生长与细胞力学特性的空间受限动态变化有关。

Polar growth in pollen tubes is associated with spatially confined dynamic changes in cell mechanical properties.

作者信息

Zerzour Rabah, Kroeger Jens, Geitmann Anja

机构信息

Institut de recherche en biologie végétale, Département de sciences biologiques, Université de Montréal, 4101 rue Sherbrooke est, Montréal Québec, Canada H1X 2B2.

出版信息

Dev Biol. 2009 Oct 15;334(2):437-46. doi: 10.1016/j.ydbio.2009.07.044. Epub 2009 Aug 8.

Abstract

Cellular morphogenesis involves changes to cellular size and shape which in the case of walled cells implies the mechanical deformation of the extracellular matrix. So far, technical challenges have made quantitative mechanical measurements of this process at subcellular scale impossible. We used micro-indentation to investigate the dynamic changes in the cellular mechanical properties during the onset of spatially confined growth activities in plant cells. Pollen tubes are cellular protuberances that have a strictly unidirectional growth pattern. Micro-indentation of these cells revealed that the initial formation of a cylindrical protuberance is preceded by a local reduction in cellular stiffness. Similar cellular softening was observed before the onset of a rapid growth phase in cells with oscillating growth pattern. These findings provide the first quantitative cytomechanical data that confirm the important role of the mechanical properties of the cell wall for local cellular growth processes. They are consistent with a conceptual model that explains pollen tube oscillatory growth based on the relationship between turgor pressure and tensile resistance in the apical cell wall. To further confirm the significance of cell mechanics, we artificially manipulated the mechanical cell wall properties as well as the turgor pressure. We observed that these changes affected the oscillation profile and were able to induce oscillatory behavior in steadily growing tubes.

摘要

细胞形态发生涉及细胞大小和形状的变化,对于有细胞壁的细胞而言,这意味着细胞外基质的机械变形。到目前为止,技术挑战使得在亚细胞尺度对这一过程进行定量力学测量成为不可能。我们利用微压痕技术研究了植物细胞在空间受限生长活动开始期间细胞力学特性的动态变化。花粉管是具有严格单向生长模式的细胞突起。对这些细胞的微压痕显示,圆柱形突起的初始形成之前细胞硬度会局部降低。在具有振荡生长模式的细胞快速生长阶段开始之前也观察到了类似的细胞软化现象。这些发现提供了首批定量细胞力学数据,证实了细胞壁力学特性在局部细胞生长过程中的重要作用。它们与一个概念模型一致,该模型基于顶端细胞壁膨压与抗张阻力之间的关系解释花粉管的振荡生长。为了进一步证实细胞力学的重要性,我们人工操控了细胞壁的力学特性以及膨压。我们观察到这些变化影响了振荡曲线,并且能够在稳定生长的花粉管中诱导振荡行为。

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