Structure-based prediction of Ras-effector binding affinities and design of "branchegetic" interface mutations

Structure. 2023 Jul 6;31(7):870-883.e5. doi: 10.1016/j.str.2023.04.007. Epub 2023 May 10.

Abstract

Ras is a central cellular hub protein controlling multiple cell fates. How Ras interacts with a variety of potential effector proteins is relatively unexplored, with only some key effectors characterized in great detail. Here, we have used homology modeling based on X-ray and AlphaFold2 templates to build structural models for 54 Ras-effector complexes. These models were used to estimate binding affinities using a supervised learning regressor. Furthermore, we systematically introduced Ras "branch-pruning" (or branchegetic) mutations to identify 200 interface mutations that affect the binding energy with at least one of the model structures. The impacts of these branchegetic mutants were integrated into a mathematical model to assess the potential for rewiring interactions at the Ras hub on a systems level. These findings have provided a quantitative understanding of Ras-effector interfaces and their impact on systems properties of a key cellular hub.

Keywords: AlphaFold; FoldX; Ras; branch pruning; edgetics; effectors; enedgetics; homology modeling; hub; networks.

MeSH terms

  • Molecular Dynamics Simulation
  • Mutation
  • Protein Binding
  • Proteins* / metabolism
  • ras Proteins* / chemistry
  • ras Proteins* / genetics
  • ras Proteins* / metabolism

Substances

  • ras Proteins
  • Proteins