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细胞核、细胞骨架与细胞外基质之间的主动力学耦合及其对核周肌动球蛋白组织的影响。

Active mechanical coupling between the nucleus, cytoskeleton and the extracellular matrix, and the implications for perinuclear actomyosin organization.

作者信息

Zemel Assaf

机构信息

Institute of Dental Sciences and Fritz Haber Center for Molecular Dynamics, Hebrew University of Jerusalem, 91120, Israel.

出版信息

Soft Matter. 2015 Mar 28;11(12):2353-63. doi: 10.1039/c4sm02425g.

Abstract

Experimental and theoretical studies have demonstrated that the polarization of actomyosin forces in the cytoskeleton of adherent cells is governed by local elastic stresses. Based on this phenomenon, and the established observation that the nucleus is mechanically connected to the extracellular matrix (ECM) via the cytoskeleton, we theoretically analyze here the active mechanical coupling between the nucleus, cytoskeleton and the ECM. The cell is modeled as an active spherical inclusion, containing a round nucleus at its center, and embedded in a 3D elastic matrix. We investigate three sources of cellular stress: spreading-induced stress, actomyosin contractility and chromatin entropic forces. Formulating the coupling of actomyosin contractility to the local stress we predict the consequences that the nucleus, cytoskeleton and ECM mechanical properties may have on the overall force-balance in the cell and the perinuclear acto-myosin polarization. We demonstrate that the presence of the nucleus induces symmetry breaking of the elastic stress that, we predict, elastically tends to orient actomyosin alignment tangentially around the nucleus; the softer the nucleus or the matrix, the stronger is the preference for tangential alignment. Spreading induced stresses may induce radial actomyosin alignment near stiff nuclei. In addition, we show that in regions of high actomyosin density myosin motors have an elastic tendency to orient tangentially as often occurs near the cell periphery. These conclusions highlight the role of the nucleus in the regulation of cytoskeleton organization and may provide new insight into the mechanics of stem cell differentiation involving few fold increase in nucleus stiffness.

摘要

实验和理论研究表明,贴壁细胞细胞骨架中肌动球蛋白力的极化受局部弹性应力支配。基于这一现象,以及已确定的观察结果,即细胞核通过细胞骨架与细胞外基质(ECM)机械连接,我们在此从理论上分析细胞核、细胞骨架和ECM之间的主动机械耦合。细胞被建模为一个活性球形内含物,其中心包含一个圆形细胞核,并嵌入三维弹性基质中。我们研究了细胞应力的三个来源:铺展诱导应力、肌动球蛋白收缩力和染色质熵力。通过建立肌动球蛋白收缩力与局部应力的耦合关系,我们预测了细胞核、细胞骨架和ECM的力学性质可能对细胞整体力平衡和核周肌动球蛋白极化产生的影响。我们证明,细胞核的存在会导致弹性应力的对称性破缺,我们预测,这种弹性应力会倾向于使肌动球蛋白在细胞核周围切向排列;细胞核或基质越软,切向排列的倾向就越强。铺展诱导应力可能会在硬细胞核附近诱导肌动球蛋白径向排列。此外,我们还表明,在肌动球蛋白密度高的区域,肌球蛋白马达有弹性切向排列的趋势,这在细胞周边附近经常发生。这些结论突出了细胞核在细胞骨架组织调节中的作用,并可能为涉及细胞核硬度增加几倍的干细胞分化力学提供新的见解。

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