论文标题
细胞外矩阵的局部非线性弹性响应
Local Nonlinear Elastic Response of Extracellular Matrices
论文作者
论文摘要
非线性僵化是构成细胞外基质(ECM)的主要类型的生物聚合物的无处不在特性,包括胶原蛋白,纤维蛋白和基底膜。在ECM中,已知许多类型的细胞(例如成纤维细胞和癌细胞)在机械上伸展其周围环境,从而在局部稳固基质。尽管对这些生物聚合物网络的批量非线性弹性行为进行了充分的研究,但它们的局部机械响应仍然很差。在这里,为了了解活细胞如何感觉到ECM的非线性机械耐药性,我们使用光学镊子模仿细胞施加的局部力量。我们报告,高度非线性ECM中的局部僵硬反应明显弱于批量流变学中的响应,自从僵硬开始以来,局部施加力的两个数量级。使用最小的模型,我们表明局部点力施加可以诱导矩阵中的僵硬区域,该区域随着点力的幅度升高而扩展。此外,我们表明该僵硬的区域在局部负载时表现为有效探针。局部非线性弹性响应可以归因于该有效探针的非线性生长,该探针线性变形了矩阵的增加。
Nonlinear stiffening is a ubiquitous property of major types of biopolymers that make up the extracellular matrices (ECM) including collagen, fibrin and basement membrane. Within the ECM, many types of cells such as fibroblasts and cancer cells are known to mechanically stretch their surroundings that locally stiffens the matrix. Although the bulk nonlinear elastic behaviors of these biopolymer networks are well studied, their local mechanical responses remain poorly characterized. Here, to understand how a living cell feels the nonlinear mechanical resistance from the ECM, we mimic the cell-applied local force using optical tweezers; we report that the local stiffening responses in highly nonlinear ECM are significantly weaker than responses found in bulk rheology, across two orders of magnitude of the locally applied force since the onset of stiffening. With a minimal model, we show that a local point force application can induce a stiffened region in the matrix, which expands with increasing magnitude of the point force. Furthermore, we show that this stiffened region behaves as an effective probe upon local loading. The local nonlinear elastic response can be attributed to the nonlinear growth of this effective probe that linearly deforms an increasing portion of the matrix.