4.5 Article

A predictive coarse-grained model for position-specific effects of post-translational modifications

期刊

BIOPHYSICAL JOURNAL
卷 120, 期 7, 页码 1187-1197

出版社

CELL PRESS
DOI: 10.1016/j.bpj.2021.01.034

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资金

  1. National Science Foundation [TG-MCB-120014, 2004796, 1845734]
  2. National Institute of General Medical Sciences of the National Institutes of Health [R01GM136917]
  3. National Institute of General Medical Services [R01GM118530]
  4. National Institute of Neurological Disorders and Stroke
  5. National Institute on Aging [R01NS116176]
  6. Office of Naval Research via the U.S. Naval Research Laboratory Base Program
  7. Direct For Biological Sciences
  8. Div Of Molecular and Cellular Bioscience [1845734] Funding Source: National Science Foundation
  9. Direct For Mathematical & Physical Scien
  10. Division Of Materials Research [2004796] Funding Source: National Science Foundation

向作者/读者索取更多资源

Biomolecules undergo liquid-liquid phase separation, leading to the formation of membraneless organelles in cells. Studies show that post-translational modifications have a significant impact on LLPS, affecting protein compactness and phase separation propensity.
Biomolecules undergo liquid-liquid phase separation (LLPS), resulting in the formation of multicomponent protein-RNA membraneless organelles in cells. However, the physiological and pathological role of post-translational modifications (PTMs) on the biophysics of phase behavior is only beginning to be probed. To study the effect of PTMs on LLPS in silico, we extend our transferable coarse-grained model of intrinsically disordered proteins to include phosphorylated and acetylated amino acids. Using the parameters for modified amino acids available for fixed-charge atomistic force fields, we parameterize the size and atomistic hydropathy of the coarse-grained-modified amino acid beads and, hence, the interactions between the modified and natural amino acids. We then elucidate how the number and position of phosphorylated and acetylated residues alter the protein's single-chain compactness and its propensity to phase separate. We show that both the number and the position of phosphorylated threonines/serines or acetylated lysines can serve as a molecular on/off switch for phase separation in the well-studied disordered regions of Fused in Sarcoma (FUS) and DDX3X, respectively. We also compare modified residues to their commonly used PTM mimics for their impact on chain properties. Importantly, we show that the model can predict and capture experimentally measured differences in the phase behavior for position-specific modifications, showing that the position of modifications can dictate phase separation. In sum, this model will be useful for studying LLPS of post-translationally modified intrinsically disordered proteins and predicting how modifications control phase behavior with position-specific resolution.

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