细胞感应和迁移的生物力学模型

IF 1.7 4区 医学 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Arnaud Chauvière, Ian Manifacier, Claude Verdier, Grégory Chagnon, Ibrahim Cheddadi, Nicolas Glade, Angélique Stéphanou
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引用次数: 0

摘要

我们开发了一个细胞变形和迁移的原创计算模型,该模型能够解释细胞对环境的敏感性及其适当的适应性。这一细胞模型最终将用于解决组织形态发生问题。因此,它的设计符合四项要求:(1)细胞应能探测和感知环境并做出相应反应;(2)模型应易于参数化,以适应不同的细胞类型;(3)模型应能扩展到三维情况;(4)模拟应足够快,以整合许多相互作用的细胞。模拟主要集中在两个方面:第一,实验观察到的细胞在均质基底上的一般行为,以验证模型。这使我们能够破译细胞迁移的机制,突出粘附寿命的影响及其对牵引力的敏感性;第二,它预测了细胞对各向异性图案基底的敏感性,这与最近发表的实验结果一致。结果表明,该模型模拟的机械传感器可以根据基底各向异性产生的迁移偏差重现此类实验。在此,该模型再次为这种现象提供了一种生物力学解释,它取决于细胞与基质的相互作用和粘附成熟率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A biomechanical model for cell sensing and migration.

We developed an original computational model for cell deformation and migration capable of accounting for the cell sensitivity to the environment and its appropriate adaptation. This cell model is ultimately intended to be used to address tissue morphogenesis. Hence it has been designed to comply with four requirements: (1) the cell should be able to probe and sense its environment and respond accordingly; (2) the model should be easy to parametrize to adapt to different cell types; (3) the model should be able to extend to 3D cases; (4) simulations should be fast enough to integrate many interacting cells. The simulations carried out focused on two aspects: first, the general behaviour of the cell on a homogeneous substrate, as observed experimentally, for model validation. This enabled us to decipher the mechanisms by which the cell can migrate, highlighting respective influences of the adhesions lifetimes and their sensitivity to traction; second, it predicts the sensitivity of the cell to an anisotropic patterned substrate, in agreement with recently published experiments. The results show that mechanosensors simulated by the model make it possible to reproduce such experiments in terms of migration bias generated by the substrate anisotropy. Here again, the model provides a biomechanical explanation of this phenomenon, depending on cell-matrix interactions and adhesion maturation rate.

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来源期刊
CiteScore
4.10
自引率
6.20%
发文量
179
审稿时长
4-8 weeks
期刊介绍: The primary aims of Computer Methods in Biomechanics and Biomedical Engineering are to provide a means of communicating the advances being made in the areas of biomechanics and biomedical engineering and to stimulate interest in the continually emerging computer based technologies which are being applied in these multidisciplinary subjects. Computer Methods in Biomechanics and Biomedical Engineering will also provide a focus for the importance of integrating the disciplines of engineering with medical technology and clinical expertise. Such integration will have a major impact on health care in the future.
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