Department of Mechanical and Aerospace Engineering, Princeton University, Princeton, NJ 08544, United States of America. Department of Materials Science and Engineering, University of Pennsylvania, Philadelphia, PA 19104, United States of America.
Rep Prog Phys. 2018 Apr;81(4):046601. doi: 10.1088/1361-6633/aaa61e. Epub 2018 Jan 9.
Exciting recent developments suggest that phase transitions represent an important and ubiquitous mechanism underlying intracellular organization. We describe key experimental findings in this area of study, as well as the application of classical theoretical approaches for quantitatively understanding these data. We also discuss the way in which equilibrium thermodynamic driving forces may interface with the fundamentally out-of-equilibrium nature of living cells. In particular, time and/or space-dependent concentration profiles may modulate the phase behavior of biomolecules in living cells. We suggest future directions for both theoretical and experimental work that will shed light on the way in which biological activity modulates the assembly, properties, and function of viscoelastic states of living matter.
激动人心的最新发展表明,相变代表了细胞内组织的一个重要且普遍的机制。我们描述了该研究领域的关键实验结果,以及应用经典理论方法定量理解这些数据的方法。我们还讨论了平衡热力学驱动力与活细胞基本非平衡性质的接口方式。特别是,时间和/或空间依赖的浓度分布可能会调节活细胞中生物分子的相行为。我们为理论和实验工作提出了未来的方向,这将有助于阐明生物活性如何调节生物物质粘弹性状态的组装、性质和功能。