Ben-Isaac E, Fodor É, Visco P, van Wijland F, Gov Nir S
Department of Chemical Physics, Weizmann Institute of Science, Rehovot 76100, Israel.
Laboratoire Matière et Systèmes Complexes, UMR 7057 CNRS/P7, Université Paris Diderot, 10 rue Alice Domon et Léonie Duquet, 75205 Paris cedex 13, France.
Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Jul;92(1):012716. doi: 10.1103/PhysRevE.92.012716. Epub 2015 Jul 22.
The internal dynamics of active gels both in artificial (in vitro) model systems and inside the cytoskeleton of living cells has been extensively studied with experiments of recent years. These dynamics are probed using tracer particles embedded in the network of biopolymers together with molecular motors, and distinct nonthermal behavior is observed. We present a theoretical model of the dynamics of a trapped active particle, which allows us to quantify the deviations from equilibrium behavior, using both analytic and numerical calculations. We map the different regimes of dynamics in this system and highlight the different manifestations of activity: breakdown of the virial theorem and equipartition, different elasticity-dependent "effective temperatures," and distinct non-Gaussian distributions. Our results shed light on puzzling observations in active gel experiments and provide physical interpretation of existing observations, as well as predictions for future studies.
近年来,通过实验对人工(体外)模型系统以及活细胞细胞骨架内活性凝胶的内部动力学进行了广泛研究。利用嵌入生物聚合物网络中的示踪粒子以及分子马达来探测这些动力学,并观察到了明显的非热行为。我们提出了一个捕获活性粒子动力学的理论模型,通过解析计算和数值计算,该模型使我们能够量化与平衡行为的偏差。我们描绘了该系统中不同的动力学区域,并突出了活性的不同表现形式:维里定理和能量均分的破坏、不同的弹性相关“有效温度”以及独特的非高斯分布。我们的结果揭示了活性凝胶实验中令人困惑的观察结果,为现有观察提供了物理解释,并对未来研究做出了预测。