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Remodeling of Fibrous Extracellular Matrices by Contractile Cells: Predictions from Discrete Fiber Network Simulations

机译:收缩细胞对纤维细胞外基质的重塑:离散纤维网络模拟的预测。

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摘要

Contractile forces exerted on the surrounding extracellular matrix (ECM) lead to the alignment and stretching of constituent fibers within the vicinity of cells. As a consequence, the matrix reorganizes to form thick bundles of aligned fibers that enable force transmission over distances larger than the size of the cells. Contractile force-mediated remodeling of ECM fibers has bearing on a number of physiologic and pathophysiologic phenomena. In this work, we present a computational model to capture cell-mediated remodeling within fibrous matrices using finite element–based discrete fiber network simulations. The model is shown to accurately capture collagen alignment, heterogeneous deformations, and long-range force transmission observed experimentally. The zone of mechanical influence surrounding a single contractile cell and the interaction between two cells are predicted from the strain-induced alignment of fibers. Through parametric studies, the effect of cell contractility and cell shape anisotropy on matrix remodeling and force transmission are quantified and summarized in a phase diagram. For highly contractile and elongated cells, we find a sensing distance that is ten times the cell size, in agreement with experimental observations.
机译:施加在周围细胞外基质(ECM)上的收缩力导致细胞附近的组成纤维排列和拉伸。结果,基质重组以形成较粗的排列纤维束,该纤维束使得力能够在大于细胞尺寸的距离上传递。收缩力介导的ECM纤维重塑与许多生理和病理生理现象有关。在这项工作中,我们提出了一个计算模型,可以使用基于有限元的离散光纤网络模拟来捕获纤维基质内的细胞介导的重塑。该模型显示可准确捕获实验观察到的胶原蛋白排列,异质变形和远距离力传递。从应变诱导的纤维排列预测了单个收缩细胞周围以及两个细胞之间相互作用的机械影响区域。通过参数研究,量化了细胞收缩性和细胞形状各向异性对基质重塑和力传递的影响,并在相图中进行了总结。对于高度收缩和伸长的细胞,我们发现其感应距离是细胞大小的十倍,与实验观察结果一致。

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