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AN AGENT-BASED MODEL FOR ELASTO-PLASTIC MECHANICAL INTERACTIONS BETWEEN CELLS BASEMENT MEMBRANE AND EXTRACELLULAR MATRIX

机译:一种基于代理的细胞基底膜和细胞外基质的弹性塑料机械相互作用模型

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摘要

The basement membrane (BM) and extracellular matrix (ECM) play critical roles in developmental and cancer biology, and are of great interest in biomathematics. We introduce a model of mechanical cell-BM-ECM interactions that extends current (visco)elastic models (e.g. [, ]), and connects to recent agent-based cell models (e.g. [, , , ]). We model the BM as a linked series of Hookean springs, each with time-varying length, thickness, and spring constant. Each BM spring node exchanges adhesive and repulsive forces with the cell agents using potential functions. We model elastic BM-ECM interactions with analogous ECM springs. We introduce a new model of plastic BM and ECM reorganization in response to prolonged strains, and new constitutive relations that incorporate molecular-scale effects of plasticity into the spring constants. We find that varying the balance of BM and ECM elasticity alters the node spacing along cell boundaries, yielding a nonuniform BM thickness. Uneven node spacing generates stresses that are relieved by plasticity over long times. We find that elasto-viscoplastic cell shape response is critical to relieving uneven stresses in the BM. Our modeling advances and results highlight the importance of rigorously modeling of cell-BM-ECM interactions in clinically important conditions with significant membrane deformations and time-varying membrane properties, such as aneurysms and progression from in situ to invasive carcinoma.
机译:基底膜(BM)和细胞外基质(ECM)在发育和癌症生物学中起着关键作用,并且在生物数学中引起了极大兴趣。我们介绍了一种机械细胞-BM-ECM相互作用的模型,该模型扩展了当前的(粘滞)弹性模型(例如[,]),并连接到最近的基于代理的细胞模型(例如[,,,])。我们将BM建模为一系列链接的Hookean弹簧,每个弹簧具有随时间变化的长度,厚度和弹簧常数。每个BM弹簧节点都使用潜在功能与细胞代理交换粘附力和排斥力。我们模拟与类似ECM弹簧的弹性BM-ECM相互作用。我们引入了一种新的塑性BM和ECM重组模型,以应对延长的应变,并引入了将塑性的分子尺度效应纳入弹簧常数的新的本构关系。我们发现,改变BM和ECM弹性的平衡会改变沿单元边界的节点间距,从而产生不均匀的BM厚度。节点间距不均匀会产生应力,该应力可通过长时间的塑性缓解。我们发现,弹黏塑性细胞形状反应对于缓解BM中的应力不均至关重要。我们的建模进展和结果突显了在具有重要膜变形和时变膜特性(例如动脉瘤和从原位到浸润性癌进展)的临床重要条件下,严格建模细胞-BM-ECM相互作用的重要性。

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