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两极波动导致融合组织中具有扩展性向列型行为。

Polar Fluctuations Lead to Extensile Nematic Behavior in Confluent Tissues.

机构信息

Department of Bioengineering, Imperial College London, South Kensington Campus, London SW7 2AZ, United Kingdom.

Department of Mathematics, Imperial College London, South Kensington Campus, London SW7 2AZ, United Kingdom.

出版信息

Phys Rev Lett. 2022 Feb 18;128(7):078001. doi: 10.1103/PhysRevLett.128.078001.

Abstract

How can a collection of motile cells, each generating contractile nematic stresses in isolation, become an extensile nematic at the tissue level? Understanding this seemingly contradictory experimental observation, which occurs irrespective of whether the tissue is in the liquid or solid states, is not only crucial to our understanding of diverse biological processes, but is also of fundamental interest to soft matter and many-body physics. Here, we resolve this cellular to tissue level disconnect in the small fluctuation regime by using analytical theories based on hydrodynamic descriptions of confluent tissues, in both liquid and solid states. Specifically, we show that a collection of microscopic constituents with no inherently nematic extensile forces can exhibit active extensile nematic behavior when subject to polar fluctuating forces. We further support our findings by performing cell level simulations of minimal models of confluent tissues.

摘要

一群能够独立产生收缩向列应力的游动细胞,如何在组织水平上成为伸展向列的?理解这一看似矛盾的实验观察结果至关重要,它不仅发生在组织处于液体或固体状态,而且对于软物质和多体物理也具有根本的兴趣。在这里,我们通过使用基于融合组织的流体描述的分析理论,在液体和固体状态下,解决了小波动状态下细胞到组织水平的不连续性问题。具体来说,我们表明,当受到极性波动力时,即使没有固有向列伸展力的微观成分集合也可以表现出主动伸展向列行为。我们通过对融合组织的最小模型进行细胞水平模拟进一步支持了我们的发现。

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