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核力学和细胞外基质微结构如何影响单细胞和多细胞聚集体的侵袭。

How Nucleus Mechanics and ECM Microstructure Influence the Invasion of Single Cells and Multicellular Aggregates.

机构信息

Istituto Nazionale di Alta Matematica "F. Severi", Città Universitaria, P.le Aldo Moro 5, 00185, Rome, Italy.

Department of Mathematical Sciences, Politecnico di Torino, Corso Duca degli Abruzzi 24, 10129, Turin, Italy.

出版信息

Bull Math Biol. 2018 May;80(5):1017-1045. doi: 10.1007/s11538-017-0262-9. Epub 2017 Apr 13.

Abstract

In order to move in a three-dimensional extracellular matrix, the nucleus of a cell must squeeze through the narrow spacing among the fibers and, by adhering to them, the cell needs to exert sufficiently strong traction forces. If the nucleus is too stiff, the spacing too narrow, or traction forces too weak, the cell is not able to penetrate the network. In this article, we formulate a mathematical model based on an energetic approach, for cells entering cylindrical channels composed of extracellular matrix fibers. Treating the nucleus as an elastic body covered by an elastic membrane, the energetic balance leads to the definition of a necessary criterion for cells to pass through the regular network of fibers, depending on the traction forces exerted by the cells (or possibly passive stresses), the stretchability of the nuclear membrane, the stiffness of the nucleus, and the ratio of the pore size within the extracellular matrix with respect to the nucleus diameter. The results obtained highlight the importance of the interplay between mechanical properties of the cell and microscopic geometric characteristics of the extracellular matrix and give an estimate for a critical value of the pore size that represents the physical limit of migration and can be used in tumor growth models to predict their invasive potential in thick regions of ECM.

摘要

为了在三维细胞外基质中移动,细胞核必须通过纤维之间的狭窄间隙挤压,并通过黏附在纤维上来施加足够强的牵引力。如果细胞核太硬,间隙太窄,或者牵引力太弱,细胞就无法穿透网络。在本文中,我们基于能量方法为进入由细胞外基质纤维组成的圆柱形通道的细胞建立了一个数学模型。将细胞核视为覆盖有弹性膜的弹性体,能量平衡导致了细胞通过纤维的规则网络的必要条件的定义,这取决于细胞施加的牵引力(或可能的被动应力)、核膜的可拉伸性、细胞核的刚度以及细胞外基质内的孔大小与细胞核直径的比值。所得到的结果强调了细胞力学特性和细胞外基质微观几何特征之间相互作用的重要性,并给出了一个代表迁移物理极限的临界孔尺寸的估计值,可用于肿瘤生长模型来预测它们在 ECM 厚区域的侵袭潜力。

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