烟叶细胞壁和细胞骨架在单细胞生物力学中的作用。

Leah Ginsberg, Robin McDonald, Qinchen Lin, Rodinde Hendrickx, Giada Spigolon, Guruswami Ravichandran, Chiara Daraio, Eleftheria Roumeli
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引用次数: 0

摘要

对植物细胞力学的研究通常集中在了解胀压对细胞壁特性的影响。虽然已经研究了潜在细胞骨架的功能作用,但它对细胞力学特性的贡献程度尚未阐明。在此,我们研究了CW、微管(MTs)和肌动蛋白丝(AFs)在烟草细胞力学性能中的作用。我们使用由原子力显微镜和微压痕组成的多尺度生物力学分析,在溶液中(i)去除mt和af, (ii)改变细胞中的渗透压。为了比较两个机械测试获得的测量结果,我们开发了两个生成统计模型来描述使用一个或两个数据集的细胞行为。我们的研究结果表明,MTs和AFs对细胞刚度和耗散能量有显著贡献,同时证实了胀压的主导作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cell wall and cytoskeletal contributions in single cell biomechanics of <i>Nicotiana tabacum</i>.

Cell wall and cytoskeletal contributions in single cell biomechanics of <i>Nicotiana tabacum</i>.

Cell wall and cytoskeletal contributions in single cell biomechanics of <i>Nicotiana tabacum</i>.

Cell wall and cytoskeletal contributions in single cell biomechanics of Nicotiana tabacum.

Studies on the mechanics of plant cells usually focus on understanding the effects of turgor pressure and properties of the cell wall (CW). While the functional roles of the underlying cytoskeleton have been studied, the extent to which it contributes to the mechanical properties of cells is not elucidated. Here, we study the contributions of the CW, microtubules (MTs) and actin filaments (AFs), in the mechanical properties of Nicotiana tabacum cells. We use a multiscale biomechanical assay comprised of atomic force microscopy and micro-indentation in solutions that (i) remove MTs and AFs and (ii) alter osmotic pressures in the cells. To compare measurements obtained by the two mechanical tests, we develop two generative statistical models to describe the cell's behaviour using one or both datasets. Our results illustrate that MTs and AFs contribute significantly to cell stiffness and dissipated energy, while confirming the dominant role of turgor pressure.

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