Nakasone Yusuke, Terazima Masahide
Department of Chemistry, Graduate School of Science, Kyoto University, Kyoto, Japan.
Front Genet. 2021 Jun 30;12:691010. doi: 10.3389/fgene.2021.691010. eCollection 2021.
Biological liquid-liquid phase separation (LLPS) is driven by dynamic and multivalent interactions, which involves conformational changes and intermolecular assembly/disassembly processes of various biomolecules. To understand the molecular mechanisms of LLPS, kinetic measurements of the intra- and intermolecular reactions are essential. In this review, a time-resolved diffusion technique which has a potential to detect molecular events associated with LLPS is presented. This technique can detect changes in protein conformation and intermolecular interaction (oligomer formation, protein-DNA interaction, and protein-lipid interaction) in time domain, which are difficult to obtain by other methods. After the principle and methods for signal analyses are described in detail, studies on photoreactive molecules (intermolecular interaction between light sensor proteins and its target DNA) and a non-photoreactive molecule (binding and folding reaction of α-synuclein upon mixing with SDS micelle) are presented as typical examples of applications of this unique technique.
生物液-液相分离(LLPS)由动态多价相互作用驱动,涉及各种生物分子的构象变化和分子间组装/拆卸过程。要理解LLPS的分子机制,分子内和分子间反应的动力学测量至关重要。在本综述中,介绍了一种具有检测与LLPS相关分子事件潜力的时间分辨扩散技术。该技术可在时域中检测蛋白质构象和分子间相互作用(寡聚体形成、蛋白质-DNA相互作用和蛋白质-脂质相互作用)的变化,而这些变化是其他方法难以获得的。在详细描述信号分析的原理和方法后,介绍了对光反应性分子(光传感器蛋白与其靶DNA之间的分子间相互作用)和非光反应性分子(α-突触核蛋白与SDS胶束混合后的结合和折叠反应)的研究,作为这种独特技术应用的典型例子。