Center for the Physics of Biological Function, Princeton University, Princeton, United States.
Department of Physics, Princeton University, Princeton, United States.
Elife. 2021 Mar 11;10:e62403. doi: 10.7554/eLife.62403.
Cells possess a multiplicity of non-membrane-bound compartments, which form via liquid-liquid phase separation. These condensates assemble and dissolve as needed to enable central cellular functions. One important class of condensates is those composed of two associating polymer species that form one-to-one specific bonds. What are the physical principles that underlie phase separation in such systems? To address this question, we employed coarse-grained molecular dynamics simulations to examine how the phase boundaries depend on polymer valence, stoichiometry, and binding strength. We discovered a striking phenomenon - for sufficiently strong binding, phase separation is suppressed at rational polymer stoichiometries, which we termed the magic-ratio effect. We further developed an analytical dimer-gel theory that confirmed the magic-ratio effect and disentangled the individual roles of polymer properties in shaping the phase diagram. Our work provides new insights into the factors controlling the phase diagrams of biomolecular condensates, with implications for natural and synthetic systems.
细胞拥有多种非膜结合的隔室,这些隔室通过液-液相分离形成。这些凝聚体根据需要组装和解离,以实现核心细胞功能。一类重要的凝聚体是由两种缔合聚合物组成的,它们形成一对一的特定键。那么,这种系统中相分离的物理原理是什么呢?为了解决这个问题,我们采用粗粒化分子动力学模拟来研究相界如何依赖于聚合物价数、化学计量和结合强度。我们发现了一个惊人的现象——对于足够强的结合,在合理的聚合物化学计量下,相分离会受到抑制,我们称之为“魔术比效应”。我们进一步发展了一种分析二聚体凝胶理论,该理论证实了魔术比效应,并阐明了聚合物性质在形成相图中的各自作用。我们的工作为控制生物分子凝聚体相图的因素提供了新的见解,对自然和合成系统都具有重要意义。