Delft Institute of Applied Mathematics, Delft University of Technology, Delft, The Netherlands.
Faculty of Biomedical Engineering, Technion-Israel Institute of Technology, 3200003, Haifa, Israel.
Biomech Model Mechanobiol. 2018 Apr;17(2):367-386. doi: 10.1007/s10237-017-0966-7. Epub 2017 Oct 9.
Cell migration, known as an orchestrated movement of cells, is crucially important for wound healing, tumor growth, immune response as well as other biomedical processes. This paper presents a cell-based model to describe cell migration in non-isotropic fibrin networks around pancreatic tumor islets. This migration is determined by the mechanical strain energy density as well as cytokines-driven chemotaxis. Cell displacement is modeled by solving a large system of ordinary stochastic differential equations where the stochastic parts result from random walk. The stochastic differential equations are solved by the use of the classical Euler-Maruyama method. In this paper, the influence of anisotropic stromal extracellular matrix in pancreatic tumor islets on T-lymphocytes migration in different immune systems is investigated. As a result, tumor peripheral stromal extracellular matrix impedes the immune response of T-lymphocytes through changing direction of their migration.
细胞迁移,即细胞的协调运动,对于创伤愈合、肿瘤生长、免疫反应以及其他生物医学过程至关重要。本文提出了一种基于细胞的模型,用于描述围绕胰腺肿瘤胰岛的非各向同性纤维蛋白网络中的细胞迁移。这种迁移由机械应变能量密度以及细胞因子驱动的趋化性决定。通过求解一个由普通随机微分方程组成的大型系统来模拟细胞位移,其中随机部分是由随机游走产生的。随机微分方程通过使用经典的 Euler-Maruyama 方法来求解。在本文中,研究了胰腺肿瘤胰岛中各向异性基质细胞外基质对不同免疫系统中 T 淋巴细胞迁移的影响。结果表明,肿瘤外周基质细胞外基质通过改变 T 淋巴细胞迁移的方向来阻碍免疫反应。