Matoz-Fernandez D A, Agoritsas Elisabeth, Barrat Jean-Louis, Bertin Eric, Martens Kirsten
Université Grenoble Alpes & CNRS, LIPHY, F-38000 Grenoble, France.
Laboratoire de Physique Théorique, ENS & PSL University, UPMC & Sorbonne Universités, F- 75005 Paris, France.
Phys Rev Lett. 2017 Apr 14;118(15):158105. doi: 10.1103/PhysRevLett.118.158105.
The rheological response of dense active matter is a topic of fundamental importance for many processes in nature such as the mechanics of biological tissues. One prominent way to probe mechanical properties of tissues is to study their response to externally applied forces. Using a particle-based model featuring random apoptosis and environment-dependent division rates, we evidence a crossover from linear flow to a shear-thinning regime with an increasing shear rate. To rationalize this nonlinear flow we derive a theoretical mean-field scenario that accounts for the interplay of mechanical and active noise in local stresses. These noises are, respectively, generated by the elastic response of the cell matrix to cell rearrangements and by the internal activity.
致密活性物质的流变学响应是自然界中许多过程(如生物组织力学)的一个至关重要的基础课题。探究组织力学特性的一个显著方法是研究它们对外加力的响应。通过使用一个具有随机凋亡和环境依赖分裂速率的基于粒子的模型,我们证明了随着剪切速率的增加,从线性流动到剪切变稀 regime 的转变。为了合理化这种非线性流动,我们推导了一个理论平均场情景,该情景考虑了局部应力中机械噪声和活性噪声的相互作用。这些噪声分别由细胞基质对细胞重排的弹性响应和内部活性产生。