School of Mechanical Engineering, Faculty of Engineering, Tel Aviv University, Tel Aviv, Israel.
J R Soc Interface. 2019 Oct 31;16(159):20190348. doi: 10.1098/rsif.2019.0348. Epub 2019 Oct 30.
Force chains (FCs) are a key determinant of the micromechanical properties and behaviour of heterogeneous materials, such as granular systems. However, less is known about FCs in fibrous materials, such as the networks composing the extracellular matrix (ECM) of biological systems. Using a finite-element computational model, we simulated the contraction of a single cell and two nearby cells embedded in two-dimensional fibrous elastic networks and analysed the tensile FCs that developed in the ECM. The role of ECM nonlinear elasticity on FC formation was evaluated by considering linear and nonlinear, i.e. exhibiting 'buckling' and/or 'strain-stiffening', stress-strain curves. The effect of the degree of cell contraction and network coordination value was assessed. We found that nonlinear elasticity of the ECM fibres influenced the structure of the FCs, facilitating the transition towards more distinct chains that were less branched and more radially oriented than the chains formed in linear elastic networks. When two neighbouring cells contract, a larger number of FCs bridged between the cells in nonlinear networks, and these chains had a larger effective rigidity than the chains that did not reach a neighbouring cell. These results suggest that FCs function as a route for mechanical communication between distant cells and highlight the contribution of ECM fibre nonlinear elasticity to the formation of FCs.
力链(FCs)是决定多相材料(如颗粒系统)微观力学性能和行为的关键因素。然而,人们对纤维材料(如生物系统细胞外基质(ECM)的网络)中的 FCs 知之甚少。使用有限元计算模型,我们模拟了单个细胞和两个相邻细胞在二维纤维弹性网络中的收缩,并分析了 ECM 中形成的拉伸 FCs。通过考虑线性和非线性(即表现出“屈曲”和/或“应变硬化”)的应力-应变曲线,评估了 ECM 非线性弹性对 FC 形成的作用。评估了细胞收缩程度和网络协调值的影响。我们发现,ECM 纤维的非线性弹性影响了 FC 的结构,有利于向更明显的链过渡,这些链比在线性弹性网络中形成的链分支更少,径向取向更多。当两个相邻的细胞收缩时,非线性网络中在细胞之间形成了更多的 FCs,这些链的有效刚性比没有到达相邻细胞的链大。这些结果表明,FCs 作为远距离细胞之间机械通讯的途径发挥作用,并强调了 ECM 纤维非线性弹性对 FC 形成的贡献。