论文标题
粘弹性环境中的活性物质
Active matter in a viscoelastic environment
论文作者
论文摘要
真核细胞和细菌等活性物质系统不断地将化学能转化为运动。因此,生活系统会在其居住的复杂环境上施加积极的压力。这种复杂性的一个反复出现的方面是周围生活系统介质的粘弹性:细菌分泌自己的粘弹性细胞外基质,细胞在胶原蛋白的粘弹性网络中不断变形,增殖和自动性。因此,必须了解主动物质的修饰,并通过粘弹性流体进行修饰。在这里,我们提出了一个有源列神经物质的两相模型,该模型与被动粘弹性聚合物相动态相互作用,并在两个维度上执行数值模拟以说明其适用性。在最近的实验中,我们首先研究了细胞周围的粘弹性介质对细胞分裂的抑制。我们进一步表明,模型角膜细胞细胞的自我作用是通过周围粘弹性流体的聚合物松弛以不均匀的方式来改变的,发现增加聚合物粘度会有效地抑制细胞运动性。最后,我们通过模拟聚合液中的活动条纹的动力学来探讨粘弹性培养基对活动性命名的通用流体动力学不稳定性的阻碍影响。此处介绍的模型可以提供一个框架来研究更复杂的动态,例如多细胞生长系统与粘弹性环境的相互作用。
Active matter systems such as eukaryotic cells and bacteria continuously transform chemical energy to motion. Hence living systems exert active stresses on the complex environments in which they reside. One recurring aspect of this complexity is the viscoelasticity of the medium surrounding living systems: bacteria secrete their own viscoelastic extracellular matrix, and cells constantly deform, proliferate, and self-propel within viscoelastic networks of collagen. It is therefore imperative to understand how active matter modifies, and gets modified by, viscoelastic fluids. Here, we present a two-phase model of active nematic matter that dynamically interacts with a passive viscoelastic polymeric phase and perform numerical simulations in two dimensions to illustrate its applicability. Motivated by recent experiments we first study the suppression of cell division by a viscoelastic medium surrounding the cell. We further show that the self-propulsion of a model keratocyte cell is modified by the polymer relaxation of the surrounding viscoelastic fluid in a non-uniform manner and find that increasing polymer viscosity effectively suppresses the cell motility. Lastly, we explore the hampering impact of the viscoelastic medium on the generic hydrodynamic instabilities of active nematics by simulating the dynamics of an active stripe within a polymeric fluid. The model presented here can provide a framework for investigating more complex dynamics such as the interaction of multicellular growing systems with viscoelastic environments.