Liquid-Liquid Phase Separation Modifies the Dynamic Properties of Intrinsically Disordered Proteins

被引:23
|
作者
Guseva, Serafima [1 ,2 ]
Schnapka, Vincent [1 ]
Adamski, Wiktor [1 ,3 ]
Maurin, Damien [1 ]
Ruigrok, Rob W. H. [1 ]
Salvi, Nicola [1 ,4 ]
Blackledge, Martin [1 ]
机构
[1] Univ Grenoble Alpes, Inst Biol Struct, CEA, CNRS, F-38000 Grenoble, France
[2] Columbia Univ, Dept Biochem & Mol Biophys, New York, NY 10032 USA
[3] Univ Lille, Inst Pasteur Lille, Equipe Biol Struct Integrat EMR 9002, CNRS,Risk factors & Mol Determinants Aging Related, Campus CNRS Haute Borne, F-59658 Villeneuve Dascq, France
[4] Sanofi R&D, Bio Struct & Biophys BSB, F-94400 Vitry Sur Seine, France
基金
欧洲研究理事会;
关键词
RELAXATION DISPERSION; NMR RELAXATION; TRANSITIONS; SIMULATION; MOTIONS; DENSITY; MODEL; SPECTROSCOPY; PREDICTION; CRYSTALS;
D O I
10.1021/jacs.2c13647
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Liquid-liquid phase separation of flexible biomole-cules has been identified as a ubiquitous phenomenon underlying the formation of membraneless organelles that harbor a multitude of essential cellular processes. We use nuclear magnetic resonance (NMR) spectroscopy to compare the dynamic properties of an intrinsically disordered protein (measles virus NTAIL) in the dilute and dense phases at atomic resolution. By measuring 15N NMR relaxation at different magnetic field strengths, we are able to characterize the dynamics of the protein in dilute and crowded conditions and to compare the amplitude and timescale of the different motional modes to those present in the membraneless organelle. Although the local backbone conformational sampling appears to be largely retained, dynamics occurring on all detectable timescales, including librational, backbone dihedral angle dynamics and segmental, chainlike motions, are considerably slowed down. Their relative amplitudes are also drastically modified, with slower, chain-like motions dominating the dynamic profile. In order to provide additional mechanistic insight, we performed extensive molecular dynamics simulations of the protein under self-crowding conditions at concentrations comparable to those found in the dense liquid phase. Simulation broadly reproduces the impact of formation of the condensed phase on both the free energy landscape and the kinetic interconversion between states. In particular, the experimentally observed reduction in the amplitude of the fastest component of backbone dynamics correlates with higher levels of intermolecular contacts or entanglement observed in simulations, reducing the conformational space available to this mode under strongly self-crowding conditions.
引用
收藏
页码:10548 / 10563
页数:16
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