Scinovex
article Open AccessTop 1% cited

Sequence determinants of protein phase behavior from a coarse-grained model

PLoS Computational Biology · 2018 · Vol. 14(1) · pp. e1005941–e1005941
Gregory L. DignonWenwei ZhengYoung C. KimRobert B. BestJeetain Mittal

Abstract

Membraneless organelles important to intracellular compartmentalization have recently been shown to comprise assemblies of proteins which undergo liquid-liquid phase separation (LLPS). However, many proteins involved in this phase separation are at least partially disordered. The molecular mechanism and the sequence determinants of this process are challenging to determine experimentally owing to the disordered nature of the assemblies, motivating the use of theoretical and simulation methods. This work advances a computational framework for conducting simulations of LLPS with residue-level detail, and allows for the determination of phase diagrams and coexistence densities of proteins in the two phases. The model includes a short-range contact potential as well as a simplified treatment of electrostatic energy. Interaction parameters are optimized against experimentally determined radius of gyration data for multiple unfolded or intrinsically disordered proteins (IDPs). These models are applied to two systems which undergo LLPS: the low complexity domain of the RNA-binding protein FUS and the DEAD-box helicase protein LAF-1. We develop a novel simulation method to determine thermodynamic phase diagrams as a function of the total protein concentration and temperature. We show that the model is capable of capturing qualitative changes in the phase diagram due to phosphomimetic mutations of FUS and to the presence or absence of the large folded domain in LAF-1. We also explore the effects of chain-length, or multivalency, on the phase diagram, and obtain results consistent with Flory-Huggins theory for polymers. Most importantly, the methodology presented here is flexible so that it can be easily extended to other pair potentials, be used with other enhanced sampling methods, and may incorporate additional features for biological systems of interest.

RNA Research and SplicingRNA and protein synthesis mechanismsRNA modifications and cancerIntrinsically disordered proteinsPhase diagramRadius of gyrationChemical physicsPhase (matter)Biological systemChemistryStatistical physicsPhysicsBiophysics

MeSH terms

Computer SimulationMutationNuclear ProteinsPolymersTemperatureOrganellesRNA-Binding ProteinsSequence AnalysisProtein FoldingComputational BiologyRNA-Binding Protein FUSStatic ElectricityHydrophobic and Hydrophilic Interactions

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • Brown University
  • Princeton University
  • National Energy Research Scientific Computing Center
  • National Institutes of Health
  • Office of Science
  • National Institute of Diabetes and Digestive and Kidney Diseases
  • Basic Energy Sciences
Citations
741
FWCI
19.02
field-weighted impact
References
87
Percentile
100%
vs. same field & year
Citations per year
Cited by
References
Role of Repulsive Forces in Determining the Equilibrium Structure of Simple Liquids
The Journal of Chemical Physics · 1971 · 5,143 citations
Polymer physics of intracellular phase transitions
Nature Physics · 2015 · 1,621 citations
A simple method for displaying the hydropathic character of a protein
Journal of Molecular Biology · 1982 · 22,952 citations
Some Properties of Solutions of Long-chain Compounds.
The Journal of Physical Chemistry · 1942 · 1,340 citations
Fast Parallel Algorithms for Short-Range Molecular Dynamics
Journal of Computational Physics · 1995 · 43,820 citations
Comparative Protein Modelling by Satisfaction of Spatial Restraints
Journal of Molecular Biology · 1993 · 13,125 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Sequence determinants of protein phase behavior from a coarse-grained model · Scinovex