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细胞骨架的重构和收缩性对单细胞剪切阻力的影响:计算与实验研究。

The effect of remodelling and contractility of the actin cytoskeleton on the shear resistance of single cells: a computational and experimental investigation.

机构信息

Mechanical and Biomedical Engineering, National University of Ireland, University Road, Galway, Republic of Ireland.

出版信息

J R Soc Interface. 2012 Dec 7;9(77):3469-79. doi: 10.1098/rsif.2012.0428. Epub 2012 Jul 18.

Abstract

The biomechanisms that govern the response of chondrocytes to mechanical stimuli are poorly understood. In this study, a series of in vitro tests are performed, in which single chondrocytes are subjected to shear deformation by a horizontally moving probe. Dramatically different probe force-indentation curves are obtained for untreated cells and for cells in which the actin cytoskeleton has been disrupted. Untreated cells exhibit a rapid increase in force upon probe contact followed by yielding behaviour. Cells in which the contractile actin cytoskeleton was removed exhibit a linear force-indentation response. In order to investigate the mechanisms underlying this behaviour, a three-dimensional active modelling framework incorporating stress fibre (SF) remodelling and contractility is used to simulate the in vitro tests. Simulations reveal that the characteristic force-indentation curve observed for untreated chondrocytes occurs as a result of two factors: (i) yielding of SFs due to stretching of the cytoplasm near the probe and (ii) dissociation of SFs due to reduced cytoplasm tension at the front of the cell. In contrast, a passive hyperelastic model predicts a linear force-indentation curve similar to that observed for cells in which the actin cytoskeleton has been disrupted. This combined modelling-experimental study offers a novel insight into the role of the active contractility and remodelling of the actin cytoskeleton in the response of chondrocytes to mechanical loading.

摘要

软骨细胞对机械刺激的反应的生物力学机制尚不清楚。在这项研究中,进行了一系列体外测试,其中单个软骨细胞通过水平移动的探针受到剪切变形。未经处理的细胞和肌动球蛋白细胞骨架被破坏的细胞的探针力-压痕曲线有明显不同。未经处理的细胞在探针接触时表现出快速的力增加,随后表现出屈服行为。去除收缩性肌动球蛋白细胞骨架的细胞表现出线性力-压痕响应。为了研究这种行为的机制,使用包含应力纤维 (SF) 重塑和收缩性的三维主动建模框架来模拟体外测试。模拟表明,未经处理的软骨细胞观察到的特征力-压痕曲线是由于两个因素造成的:(i) 探针附近细胞质的拉伸导致 SF 屈服,以及 (ii) 细胞前缘细胞质张力降低导致 SF 解离。相比之下,被动超弹性模型预测了类似于观察到的肌动球蛋白细胞骨架被破坏的细胞的线性力-压痕曲线。这项组合的建模-实验研究提供了一个新的视角,了解肌动球蛋白细胞骨架的主动收缩性和重塑在软骨细胞对机械加载的反应中的作用。

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