模拟细胞在变形软组织表面和内部的机械敏感性集体迁移。

IF 3 3区 医学 Q2 BIOPHYSICS
Jaemin Kim, Mahmut Selman Sakar, Nikolaos Bouklas
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引用次数: 0

摘要

细胞收缩性、迁移和细胞外基质(ECM)力学对于胚胎发育、伤口愈合、组织形态发生和再生等一系列生物过程至关重要。尽管以前曾在充满细胞的微组织中观察到靠近组织外围的细胞的独特反应,包括更快的动力学和更突出的细胞-ECM 相互作用,但目前还没有模型能完全结合表面和体积的耦合力学和动力学来再现这些构建物的形态发生反应。Mailand 等人(《生物物理学杂志》117(5):975-986, 2019 年)已经证明了活性弹力毛细管在充满细胞的微组织中的重要性,但迄今为止,特别是在存在活性弹力毛细管效应的情况下,还无法模拟细胞在高度变形组织的外围和内部的不同力学敏感迁移。本文提出了一个框架,用于理解动态变形软组织中细胞收缩性、迁移和 ECM 力学之间的相互作用,并考虑了组织体积和表面不同的细胞反应。这种方法的主要新颖之处在于,它能模拟组织表面和组织体中细胞的不同迁移和收缩反应,同时变形软组织在细胞收缩力的驱动下发生大变形。此外,模拟结果还能捕捉到受伤和完整微组织的形状和细胞浓度变化,从而有助于解释实验数据。该数值程序考虑了机械敏感应力的产生、大变形、块体中的扩散迁移以及变形表面上扩散迁移的独特机制,其灵感来自于最近关于涉及弹性毛细管效应的水凝胶块体和表面孔弹性的研究,但在这项研究中,提出了一种两场弱形式,能够缓解在使用三场混合有限元公式的原始方法中观察到的数值不稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Modeling the mechanosensitive collective migration of cells on the surface and the interior of morphing soft tissues

Modeling the mechanosensitive collective migration of cells on the surface and the interior of morphing soft tissues

Cellular contractility, migration, and extracellular matrix (ECM) mechanics are critical for a wide range of biological processes including embryonic development, wound healing, tissue morphogenesis, and regeneration. Even though the distinct response of cells near the tissue periphery has been previously observed in cell-laden microtissues, including faster kinetics and more prominent cell-ECM interactions, there are currently no models that can fully combine coupled surface and bulk mechanics and kinetics to recapitulate the morphogenic response of these constructs. Mailand et al. (Biophys J 117(5):975–986, 2019) had shown the importance of active elastocapillarity in cell-laden microtissues, but modeling the distinct mechanosensitive migration of cells on the periphery and the interior of highly deforming tissues has not been possible thus far, especially in the presence of active elastocapillary effects. This paper presents a framework for understanding the interplay between cellular contractility, migration, and ECM mechanics in dynamically morphing soft tissues accounting for distinct cellular responses in the bulk and the surface of tissues. The major novelty of this approach is that it enables modeling the distinct migratory and contractile response of cells residing on the tissue surface and the bulk, where concurrently the morphing soft tissues undergo large deformations driven by cell contractility. Additionally, the simulation results capture the changes in shape and cell concentration for wounded and intact microtissues, enabling the interpretation of experimental data. The numerical procedure that accounts for mechanosensitive stress generation, large deformations, diffusive migration in the bulk and a distinct mechanism for diffusive migration on deforming surfaces is inspired from recent work on bulk and surface poroelasticity of hydrogels involving elastocapillary effects, but in this work, a two-field weak form is proposed and is able to alleviate numerical instabilities that were observed in the original method that utilized a three-field mixed finite element formulation.

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来源期刊
Biomechanics and Modeling in Mechanobiology
Biomechanics and Modeling in Mechanobiology 工程技术-工程:生物医学
CiteScore
7.10
自引率
8.60%
发文量
119
审稿时长
6 months
期刊介绍: Mechanics regulates biological processes at the molecular, cellular, tissue, organ, and organism levels. A goal of this journal is to promote basic and applied research that integrates the expanding knowledge-bases in the allied fields of biomechanics and mechanobiology. Approaches may be experimental, theoretical, or computational; they may address phenomena at the nano, micro, or macrolevels. Of particular interest are investigations that (1) quantify the mechanical environment in which cells and matrix function in health, disease, or injury, (2) identify and quantify mechanosensitive responses and their mechanisms, (3) detail inter-relations between mechanics and biological processes such as growth, remodeling, adaptation, and repair, and (4) report discoveries that advance therapeutic and diagnostic procedures. Especially encouraged are analytical and computational models based on solid mechanics, fluid mechanics, or thermomechanics, and their interactions; also encouraged are reports of new experimental methods that expand measurement capabilities and new mathematical methods that facilitate analysis.
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