Sealy Center for Structural Biology and Molecular Biophysics, University of Texas Medical Branch, Galveston, Texas 77555-0304, United States.
J Phys Chem B. 2022 Dec 15;126(49):10510-10518. doi: 10.1021/acs.jpcb.2c06458. Epub 2022 Nov 30.
Liquid-liquid phase separation of proteins preferentially involves intrinsically disordered proteins or disordered regions. Understanding the solution chemistry of these phase separations is key to learning how to quantify and manipulate systems that involve such processes. Here, we investigate the effect of cyclization on the liquid-liquid phase separation of short polyglycine peptides. We simulated separate aqueous systems of supersaturated cyclic and linear GGGGG and observed spontaneous liquid-liquid phase separation in each of the solutions. The cyclic GGGGG phase separates less robustly than linear GGGGG and has a higher aqueous solubility, even though linear GGGGG has a more favorable single molecule solvation free energy. The versatile and abundant interpeptide contacts formed by the linear GGGGG stabilize the condensed droplet phase, driving the phase separation in this system. In particular, we find that van der Waals close contact interactions are enriched in the droplet phase as opposed to electrostatic interactions. An analysis of the change in backbone conformational entropy that accompanies the phase transition revealed that cyclic peptides lose significantly less entropy in this process as expected. However, we find that the enhanced interaction enthalpy of linear GGGGG in the droplet phase is enough to compensate for a larger decrease in conformational entropy.
蛋白质的液-液相分离优先涉及固有无序蛋白或无序区域。了解这些相分离的溶液化学性质是学习如何量化和操纵涉及此类过程的系统的关键。在这里,我们研究了环化对短聚甘氨酸肽液-液相分离的影响。我们模拟了超饱和环状和线性 GGGG 的单独水相体系,并观察到每个溶液中都自发地发生了液-液相分离。与线性 GGGG 相比,环状 GGGG 的相分离不那么稳健,并且具有更高的水溶解度,尽管线性 GGGG 具有更有利的单分子溶剂化自由能。线性 GGGG 形成的灵活且丰富的肽间接触稳定了凝聚液滴相,驱动了该体系中的相分离。特别是,我们发现范德华近距离接触相互作用在液滴相中富集,而不是静电相互作用。对伴随相变的骨架构象熵变化的分析表明,环状肽在这个过程中失去的熵明显较少,这是意料之中的。然而,我们发现线性 GGGG 在液滴相中的增强的相互作用焓足以补偿更大的构象熵下降。