How Functional Variants Reconfigure the Rac2 Conformational Landscape

Nurit Haspel1, Hyunbum Jang2, Ruth Nussinov2,3

  • 1Department of Computer Science, University of Massachusetts Boston, Boston, Massachusetts02125, United States.

Insights

Mutations in Rac2 GTPase, D57N (loss-of-function) and E62K (gain-of-function), disrupt immune function through distinct mechanisms. Rac2D57N remains inactive, while Rac2E62K is constitutively active, both hindering p50-RhoGAP regulation.

Area of Science:

  • Molecular Biology
  • Cellular Signaling
  • Structural Biology

Background:

  • Rac2 GTPase regulates critical cellular processes.
  • Pathogenic Rac2 mutations D57N and E62K are linked to oncogenesis and immunodeficiency.
  • These mutations exhibit opposing functional effects: loss-of-function (D57N) and gain-of-function (E62K).

Purpose of the Study:

  • To elucidate the structural basis for altered Rac2 variant functions.
  • To investigate how Rac2 variants rearrange conformational ensembles.
  • To determine the impact of these variants on cellular signaling networks.

Main Methods:

  • Molecular dynamics (MD) simulations were employed.
  • Conformational dynamics of Rac2 variants (GDP- and GTP-bound) were characterized.
  • Interactions with the regulator p50-RhoGAP were analyzed.

Main Results:

  • Rac2D57N adopts an inactive conformation irrespective of nucleotide binding.
  • Rac2E62K exhibits nucleotide-dependent activity, active with GTP and inactive with GDP.
  • Both Rac2D57N and Rac2E62K complexes are trapped in an active state, preventing p50-RhoGAP-mediated hydrolysis.

Conclusions:

  • Rac2D57N causes immunodeficiency via inactivity, while Rac2E62K causes it via overactivity.
  • Localized mutations in Rac2 switch regions profoundly impact cellular signaling.
  • This study provides a mechanistic framework for understanding Rac2-related disorders.

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