论文标题

与短空间范围相互作用的蛋白样杂聚物的序列特异性相分离的分析公式和现场理论模拟

Analytical Formulation and Field-Theoretic Simulation of Sequence-Specific Phase Separation of Proteinlike Heteropolymers with Short- and Long-Spatial-Range Interactions

论文作者

Wessén, Jonas, Das, Suman, Pal, Tanmoy, Chan, Hue Sun

论文摘要

在生物分子冷凝物研究中,通过扩展与空间远程相互作用的近距离相互作用的相互作用,通过扩展随机相位近似(RPA)和杂聚体相互作用,通过扩展随机相位近似(RPA)和近聚体的效果来表达固有无序蛋白(IDP)的序列相关液态液相分离(LLP)的理论。为此,短距离效应是由Yukawa相互作用建模的,是由多个非电压电荷之间的相互作用,这些电荷是由成对残留物残留物接触能的特征值分解得出的。链排除的体积由不可压缩的限制提供。平均场近似导致有效的弗洛里$χ$参数,该参数与RPA结合使用了氨基酸组成的接触性交互作用以及IDP LLP中远程静电的序列效果,而基于FTS的FTS中,FTS基于FORMAUTION提供了完整的序列依赖性依赖性和长距离相互作用。此处通过在几种不同的氨基酸相互作用方案以及一组不同模型的疏水层序列的背景下,通过应用于天然IDP的变体的应用来说明这种通用方法。方法的有效性通过粗粒链链分子动力学模拟来验证。

A theory for sequence dependent liquid-liquid phase separation (LLPS) of intrinsically disordered proteins (IDPs) in the study of biomolecular condensates is formulated by extending the random phase approximation (RPA) and field-theoretic simulation (FTS) of heteropolymers with spatially long-range Coulomb interactions to include the fundamental effects of short-range, hydrophobic-like interactions between amino acid residues. To this end, short-range effects are modeled by Yukawa interactions between multiple nonelectrostatic charges derived from an eigenvalue decomposition of pairwise residue-residue contact energies. Chain excluded volume is afforded by incompressibility constraints. A mean-field approximation leads to an effective Flory $χ$ parameter, which, in conjunction with RPA, accounts for the contact-interaction effects of amino acid composition and the sequence-pattern effects of long-range electrostatics in IDP LLPS, whereas FTS based on the formulation provides full sequence dependence for both short- and long-range interactions. This general approach is illustrated here by applications to variants of a natural IDP in the context of several different amino-acid interaction schemes as well as a set of different model hydrophobic-polar sequences sharing the same composition. Effectiveness of the methodology is verified by coarse-grained explicit-chain molecular dynamics simulations.

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