Renormalized mechanics and stochastic thermodynamics of growing vesicles.

ArXiv Pub Date : 2025-05-28
Jordan L Shivers, Michael Nguyen, Aaron R Dinner, Petia M Vlahovska, Suriyanarayanan Vaikuntanathan
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Abstract

Uncovering the rules governing the nonequilibrium dynamics of the membranes that define biological cells is of central importance to understanding the physics of living systems. We theoretically and computationally investigate the behavior of flexible quasispherical vesicles that exchange membrane constituents, internal volume, and heat with an external reservoir. The excess chemical potential and osmotic pressure difference imposed by the reservoir act as generalized thermodynamic driving forces that modulate vesicle morphology. We show that the renormalization of membrane mechanical properties by nonequilibrium driving gives rise to a morphological transition between a weakly driven regime, in which growing vesicles remain quasispherical, and a strongly driven regime, in which vesicles accommodate rapid membrane uptake by developing surface wrinkles. Additionally, we propose a minimal vesicle growth-shape law, derived using insights from stochastic thermodynamics, that robustly describes vesicle growth dynamics even in strongly driven, far-from-equilibrium regimes.

生长模型原细胞的重整力学和随机热力学。
揭开定义生物细胞的膜的非平衡动力学的规则,对于理解生命系统的物理学至关重要。我们从理论上和计算上研究了模型原始细胞的行为-柔性准球形囊泡-与外部储层交换膜成分,内部体积和热量。储层施加的过量化学势和渗透压差作为调节囊泡形态的广义热力学驱动力。我们确定了在弱驱动状态和强驱动状态之间的相关非平衡形态转变,在弱驱动状态下,生长的囊泡保持准球形,在强驱动状态下,囊泡通过形成表面皱纹来适应快速的膜摄取。这种转变是由于非平衡驱动使膜的力学性能重正态化而产生的。此外,利用随机热力学的见解,我们提出了一个最小的囊泡生长形状定律,即使在强烈驱动的、远离平衡的制度下,它仍然是稳健的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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