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Unveiling the Active Nature of Living-Membrane Fluctuations and Mechanics

机译:揭示起膜波动和力学的活跃性质

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Soft-condensed matter physics has provided, in the past decades, many of the relevant concepts and methods allowing successful description of living cells and biological tissues. This recent quantitative physical description of biological systems has profoundly advanced our understanding of life, which is shifting from a descriptive to a predictive level. Like other active materials investigated in condensed matter physics, biological materials still pose great challenges to modern physics as they form a specific class of nonequilibrium systems. Actively driven membranes have been studied for more than two decades, taking advantage of rapid progress in membrane physics and in the experimental development of reconstituted active membranes. The physical description of activity within living biological membranes remains, however, a key challenge that animates a dynamic research community, bringing together physicists and biologists. Here, we first review the past two decades of experimental and theoretical advances that enabled the characterization of mechanical properties and nonequilibrium fluctuations in active membranes. We distinguish active processes originating from membrane proteins or from external interactions, such as cytoskeletal forces. Then, we focus on the emblematic case of red blood cell flickering, the active origin of which has been debated for decades until recently.We finally close this review by discussing future challenges in this ever more interdisciplinary field.
机译:在过去的几十年里,提供了软浓缩物理物理学,许多相关概念和方法允许成功描述活细胞和生物组织。这种最近的生物系统的定量物理描述已经深刻地推进了我们对生命的理解,这从对预测水平的描述性移位。与在冷凝物质中调查的其他活性材料一样,生物材料仍然对现代物理学构成了巨大的挑战,因为它们形成了一类特定的非核状系统。已经研究了二十多年的积极驱动的膜,利用膜物理学的快速进展以及重构活性膜的实验开发。然而,生物膜内的活动的物理描述仍然是动态研究界的关键挑战,使物理学家和生物学家汇集在一起​​。在这里,我们首先审查了过去二十年的实验和理论前进,使能源膜中的机械性能和非醌波动的表征能够表征。我们区分源自膜蛋白的活性过程或来自外部相互作用,例如细胞骨骼力。然后,我们专注于红细胞闪烁的标志性案例,这是几十年来争论的积极起源,直到最近。我们终于通过讨论了这个更有跨学科领域的未来挑战来审查。

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