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重力矢量作用下正常大小哺乳动物细胞的机械重塑

Mechanical remodeling of normally sized mammalian cells under a gravity vector.

作者信息

Zhang Chen, Zhou Lüwen, Zhang Fan, Lü Dongyuan, Li Ning, Zheng Lu, Xu Yanhong, Li Zhan, Sun Shujin, Long Mian

机构信息

Center for Biomechanics and Bioengineering, Key Laboratory of Microgravity (National Microgravity Laboratory), and Beijing Key Laboratory of Engineered Construction and Mechanobiology, Institute of Mechanics, Chinese Academy of Sciences, Beijing, China.

Center for Biomechanics and Bioengineering, Key Laboratory of Microgravity (National Microgravity Laboratory), and Beijing Key Laboratory of Engineered Construction and Mechanobiology, Institute of Mechanics, Chinese Academy of Sciences, Beijing, China

出版信息

FASEB J. 2017 Feb;31(2):802-813. doi: 10.1096/fj.201600897RR. Epub 2016 Nov 8.

Abstract

Translocation of the dense nucleus along a gravity vector initiates mechanical remodeling of a cell, but the underlying mechanisms of cytoskeletal network and focal adhesion complex (FAC) reorganization in a mammalian cell remain unclear. We quantified the remodeling of an MC3T3-E1 cell placed in upward-, downward-, or edge-on-orientated substrate. Nucleus longitudinal translocation presents a high value in downward orientation at 24 h or in edge-on orientation at 72 h, which is consistent with orientation-dependent distribution of perinuclear actin stress fibers and vimentin cords. Redistribution of total FAC area and fractionized super mature adhesion number coordinates this dependence at short duration. This orientation-dependent remodeling is associated with nucleus flattering and lamin A/C phosphorylation. Actin depolymerization or Rho-associated protein kinase signaling inhibition abolishes the orientation dependence of nucleus translocation, whereas tubulin polymerization inhibition or vimentin disruption reserves the dependence. A biomechanical model is therefore proposed for integrating the mechanosensing of nucleus translocation with cytoskeletal remodeling and FAC reorganization induced by a gravity vector.-Zhang, C., Zhou, L., Zhang, F., Lü, D., Li, N., Zheng, L., Xu, Y., Li, Z., Sun, S., Long, M. Mechanical remodeling of normally sized mammalian cells under a gravity vector.

摘要

致密细胞核沿重力向量的易位启动了细胞的机械重塑,但哺乳动物细胞中细胞骨架网络和粘着斑复合体(FAC)重组的潜在机制仍不清楚。我们对置于向上、向下或边缘取向底物上的MC3T3-E1细胞的重塑进行了量化。细胞核纵向易位在24小时的向下取向或72小时的边缘取向时呈现高值,这与核周肌动蛋白应力纤维和波形蛋白索的取向依赖性分布一致。总FAC面积的重新分布和分级超成熟粘附数在短时间内协调了这种依赖性。这种取向依赖性重塑与细胞核变扁和平层A/C磷酸化有关。肌动蛋白解聚或Rho相关蛋白激酶信号抑制消除了细胞核易位的取向依赖性,而微管蛋白聚合抑制或波形蛋白破坏则保留了这种依赖性。因此,提出了一个生物力学模型,用于整合细胞核易位的机械传感与重力向量诱导的细胞骨架重塑和FAC重组。-张,C.,周,L.,张,F.,吕,D.,李,N.,郑,L.,徐,Y.,李,Z.,孙,S.,龙,M.重力向量作用下正常大小哺乳动物细胞的机械重塑。

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