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Continuum modeling of mechano-dependent reactions in tissues composed of mechanically active cells

机译:机械活性细胞组织组织组织中的机械依赖反应的连续性建模

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Mechanical forces and interactions participate in ontogenesis at all scale levels: intracellular, cellular, and supra cellular, the latter including tissue level. This concept, now almost trivial, was finding its way with difficulties, and the works of L.V. Beloussov have played a decisive role in its establishment. The continuum approach presented in this study makes it possible to take at the tissue level into account both relative motion of cells and forces that control this motion. The characteristics which allow us to take into account general active properties of the cell medium are described, possible mechanisms represented by these characteristics are discussed, and a concise review of our results obtained to date is presented. In the strain rate tensor, two separate components are distinguished, one of them being related to deformation of individual cells and the other to cell rearrangement. A separate phase (submedium) that corresponds to active subcellular elements associated with rearrangement controlling active stresses is also introduced. Within this general approach two specific models are considered. The first made it possible to establish general mechanisms whose account enabled us to satisfactorily describe the experimental results of L.V. Beloussov and collaborators, concerning mechano-dependent reactions of embryonic epithelium explants. On the assumptions that the active stress responds to cell shape deviations and the rearrangement strain rate component depends on the active stresses developed by pseudopodia, the cell shape and tissue stress evolution observed experimentally in stretched explants, as well as their post-release deformation, are reproduced. The second particular model considers self-organization in a conglomerate of loosely connected cells in the presence of a fluid phase. In this case, the active stress was assumed to nonlocally depend on the density of cells and the rearrangement strain rate on the active and passive stresses.
机译:机械力和相互作用在所有规模水平上参与了组织化:细胞内,细胞和同上细胞,后者包括组织水平。这个概念现在几乎微不足道,正在寻找困难的方式,以及L.V的作品。 BELOUSSOV在其建立中发挥了决定性作用。本研究中呈现的连续方法使得可以考虑控制该运动的细胞和力的两个相对运动。允许我们考虑细胞介质的一般有效性质的特性,讨论了这些特征所示的可能机制,并提出了对日期获得的结果的简明审查。在应变速率张量中,区分两个单独的部件,其中一个与单个细胞的变形有关,另一个部件与另一个细胞重新排列有关。还介绍了与控制有源应力相关的反重排列相关的有源亚细胞元件的单独阶段(子内容)。在这种通用方法中,考虑了两种特定模型。首先使得建立一般机制,其账户使我们能够令人满意地描述L.V的实验结果。 Beloussov和合作者,关于胚胎上皮外植体的机械依赖性反应。在主动应力响应细胞形状偏差的假设和重排应变率分量取决于假透视症开发的有源应力,在拉伸的外植体实验观察到的细胞形状和组织应力演进,以及它们的后释变形转载。第二特定模型在存在流体相的存在下,将自组织实施在松散连接的细胞中。在这种情况下,假设有源应力非透明地依赖于电池的密度和反排压应变率对主动和被动应力。

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