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活性接触力驱动膜泡的非平衡涨落。

Active Contact Forces Drive Nonequilibrium Fluctuations in Membrane Vesicles.

机构信息

Department of Chemical Engineering, University of California, Santa Barbara, California 93106, USA.

Department of Chemical and Biomolecular Engineering, University of California, Berkeley, California 94720, USA.

出版信息

Phys Rev Lett. 2020 Apr 17;124(15):158102. doi: 10.1103/PhysRevLett.124.158102.

Abstract

We analyze the nonequilibrium shape fluctuations of giant unilamellar vesicles encapsulating motile bacteria. Owing to bacteria-membrane collisions, we experimentally observe a significant increase in the magnitude of membrane fluctuations at low wave numbers, compared to the well-known thermal fluctuation spectrum. We interrogate these results by numerically simulating membrane height fluctuations via a modified Langevin equation, which includes bacteria-membrane contact forces. Taking advantage of the lengthscale and timescale separation of these contact forces and thermal noise, we further corroborate our results with an approximate theoretical solution to the dynamical membrane equations. Our theory and simulations demonstrate excellent agreement with nonequilibrium fluctuations observed in experiments. Moreover, our theory reveals that the fluctuation-dissipation theorem is not broken by the bacteria; rather, membrane fluctuations can be decomposed into thermal and active components.

摘要

我们分析了封装游动细菌的巨型单层囊泡的非平衡形状涨落。由于细菌-膜的碰撞,与众所周知的热波动谱相比,我们在实验中观察到在低波数下膜波动幅度显著增加。我们通过一个包含细菌-膜接触力的修正朗之万方程来数值模拟膜高度波动,从而检验这些结果。利用这些接触力和热噪声的长度尺度和时间尺度的分离,我们还通过对动态膜方程的近似理论解进一步证实了我们的结果。我们的理论和模拟与实验中观察到的非平衡波动非常吻合。此外,我们的理论表明,涨落耗散定理没有被细菌打破;相反,膜波动可以分解为热和主动成分。

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