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A Dynamic Biochemomechanical Model of Geometry-Confined Cell Spreading

机译:几何限制细胞扩散的动态生化力学模型

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摘要

Cell spreading is involved in many physiological and pathological processes. The spreading behavior of a cell significantly depends on its microenvironment, but the biochemomechanical mechanisms of geometry-confined cell spreading remain unclear. A dynamic model is here established to investigate the spreading of cells confined in a finite region with different geometries, e.g., rectangle, ellipse, triangle, and L-shape. This model incorporates both biophysical and biochemical mechanisms, including actin polymerization, integrin-mediated binding, plasma viscoelasticity, and the elasticity of membranes and microtubules. We simulate the dynamic configurational evolution of a cell under different geometric microenvironments, including the angular distribution of microtubule forces and the deformation of the nucleus. The results indicate that the positioning of the cell-division plane is affected by its boundary confinement: a cell divides in a plane perpendicular to its minimal principal axis of inertia of area. In addition, the effects of such physical factors as the adhesive bond density, membrane tension, and microtubule number are examined on the cell spreading dynamics. The theoretical predictions show a good agreement with relevant experimental results. This work sheds light on the geometry-confined spreading dynamics of cells and holds potential applications in regulating cell division and designing cell-based sensors.
机译:细胞扩散涉及许多生理和病理过程。细胞的扩散行为在很大程度上取决于其微环境,但是几何受限的细胞扩散的生物化学力学机制仍不清楚。在此建立动态模型以研究限制在具有不同几何形状(例如矩形,椭圆形,三角形和L形)的有限区域中的细胞的扩散。该模型结合了生物物理和生化机制,包括肌动蛋白聚合,整联蛋白介导的结合,血浆粘弹性以及膜和微管的弹性。我们模拟了在不同几何微环境下细胞的动态构型演化,包括微管力的角分布和核的变形。结果表明,单元格划分平面的位置受其边界限制的影响:单元格在垂直于其最小区域惯性主轴的平面内划分。另外,检查了诸如粘合剂粘合密度,膜张力和微管数量等物理因素对细胞扩散动力学的影响。理论预测与相关实验结果吻合良好。这项工作揭示了受几何限制的细胞扩散动力学,并在调节细胞分裂和设计基于细胞的传感器方面具有潜在的应用前景。

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