Dyson R J, Green J E F, Whiteley J P, Byrne H M
School of Mathematics, University of Birmingham, The Watson Building, Edgbaston, Birmingham, B15 2TT, UK.
School of Mathematical Sciences, University of Adelaide, Adelaide, SA, 5005, Australia.
J Math Biol. 2016 Jun;72(7):1775-809. doi: 10.1007/s00285-015-0927-7. Epub 2015 Sep 2.
Mechanical interactions between cells and the fibrous extracellular matrix (ECM) in which they reside play a key role in tissue development. Mechanical cues from the environment (such as stress, strain and fibre orientation) regulate a range of cell behaviours, including proliferation, differentiation and motility. In turn, the ECM structure is affected by cells exerting forces on the matrix which result in deformation and fibre realignment. In this paper we develop a mathematical model to investigate this mechanical feedback between cells and the ECM. We consider a three-phase mixture of collagen, culture medium and cells, and formulate a system of partial differential equations which represents conservation of mass and momentum for each phase. This modelling framework takes into account the anisotropic mechanical properties of the collagen gel arising from its fibrous microstructure. We also propose a cell-collagen interaction force which depends upon fibre orientation and collagen density. We use a combination of numerical and analytical techniques to study the influence of cell-ECM interactions on pattern formation in tissues. Our results illustrate the wide range of structures which may be formed, and how those that emerge depend upon the importance of cell-ECM interactions.
细胞与其所处的纤维状细胞外基质(ECM)之间的机械相互作用在组织发育中起着关键作用。来自环境的机械信号(如应力、应变和纤维取向)调节一系列细胞行为,包括增殖、分化和迁移。反过来,ECM结构会受到细胞对基质施加力的影响,这些力会导致变形和纤维重新排列。在本文中,我们开发了一个数学模型来研究细胞与ECM之间的这种机械反馈。我们考虑胶原蛋白、培养基和细胞的三相混合物,并制定了一个偏微分方程组,该方程组表示各相的质量和动量守恒。这个建模框架考虑了由其纤维微观结构产生的胶原蛋白凝胶的各向异性力学性能。我们还提出了一种依赖于纤维取向和胶原蛋白密度的细胞 - 胶原蛋白相互作用力。我们使用数值和分析技术相结合的方法来研究细胞 - ECM相互作用对组织中模式形成的影响。我们的结果说明了可能形成的广泛结构,以及那些出现的结构如何依赖于细胞 - ECM相互作用的重要性。