Mechanistic Differences of Activation of Rac1P29S and Rac1A159V

Simge Senyuz1, Hyunbum Jang2, Ruth Nussinov2,3

  • 1Computational Science and Engineering, Koc University, Rumelifeneri Yolu, 34450 Sariyer, Istanbul, Turkey.

Insights

Rac1 mutations P29S and A159V activate the small GTPase Rac1 through distinct mechanisms. Rac1P29S adopts an open conformation, enhancing GDP/GTP exchange, while Rac1A159V stabilizes a closed conformation.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Computational Biology

Background:

  • Rac1 is a small GTPase crucial for cell functions like motility and survival.
  • Rac1 mutations, particularly P29S and A159V, are implicated in various cancers, including melanoma and head and neck cancer.
  • Understanding how these mutations affect Rac1 dynamics is key to cancer research.

Purpose of the Study:

  • To investigate the distinct molecular mechanisms by which Rac1 P29S and A159V mutations alter Rac1 dynamics.
  • To elucidate the structural changes associated with Rac1 activation in GTP-bound and GDP-bound states for both wild-type and mutant forms.

Main Methods:

  • Atomistic molecular dynamics simulations were employed.
  • Simulations were performed on wild-type Rac1 and Rac1 mutants (P29S, A159V) in both GTP-bound and GDP-bound states.
  • Analysis included RMSF and dihedral angle calculations to assess protein flexibility and conformation.

Main Results:

  • Rac1P29S mutation increases Switch I flexibility, favoring an open conformation that facilitates rapid GDP/GTP exchange.
  • Rac1A159V mutation leads to temporary loss of GTP contacts, allowing the guanosine ring to move and close Switch I, adopting a Ras state 2-like conformation.
  • Both mutations activate Rac1 but through divergent pathways.

Conclusions:

  • The P29S and A159V mutations activate Rac1 via distinct mechanisms, impacting its conformational dynamics.
  • Rac1P29S's open Switch I conformation promotes faster nucleotide exchange.
  • Rac1A159V's closed conformation suggests a different mode of sustained activation.

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