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Order-Disorder Phase Transition in Heterogeneous Populations of Self-propelled Particles

机译:自推进粒子非均质粒子的有序无序相变

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摘要

Biological systems are typically heterogeneous as individuals vary in their characteristics, their response to the external environment and to each other. For example, cell diversity plays a crucial role in the successful survival of many biological systems. Phenotypic heterogeneity is associated with cellular response to intercellular communications, the response to external environmental cues, motility modes, and proliferation rates. Here we study the effect of phenotypic diversity on the properties of collective motion in the context of the scalar noise model of collective migration. For simplicity, we study a population that is composed of two sub-populations, each with different sensitivities to external noise. We find that the two sub-populations interact non-additively: Within a large range of parameters, the dynamics of the system can be described by an equivalent homogeneous system with an effective temperature that depends on the average circular mean of the phenotypes. However, if one of the sub-populations is sufficiently "cold", it dominates the dynamics of the group as a whole.
机译:生物系统通常是异质的,因为个体的特征,对外部环境以及彼此的反应各不相同。例如,细胞多样性在许多生物系统的成功存活中起着至关重要的作用。表型异质性与细胞对细胞间通讯的反应,对外部环境线索,运动模式和增殖率的反应有关。在这里,我们研究了在集体迁移的标量噪声模型的背景下,表型多样性对集体运动特性的影响。为简单起见,我们研究了一个由两个亚种群组成的种群,每个亚种群对外部噪声的敏感性不同。我们发现这两个子群体是非加性相互作用的:在很大的参数范围内,系统的动力学可以由等效均质系统描述,等效系统的有效温度取决于表型的平均圆均值。但是,如果其中一个子群体足够“冷”,则它将主导整个群体的动态。

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