E76K Mutation Promotes SHP2 Activation by Rewiring Allosteric Networks That Drives Conformational Transitions

Derui Zhao1,2,3, Mengting Liu1,2, Hui Duan1,2,3

  • 1College of Agriculture and Biological Science, Dali University, Dali 671000, China.

Insights

The E76K mutation in protein tyrosine phosphatase SHP2 (E76K-SHP2) stabilizes its active state, driving cancer. This study reveals how E76K alters SHP2's dynamics and allosteric networks, providing a framework for targeted therapies.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Computational Biology

Background:

  • The E76K mutation in protein tyrosine phosphatase SHP2 is a key driver in developmental disorders and cancers.
  • Understanding the precise mechanism of SHP2 activation by this mutation is crucial for therapeutic development.

Purpose of the Study:

  • To elucidate how the E76K mutation reshapes the activation landscape and regulatory network of SHP2.
  • To provide a dynamic and mechanistic framework for understanding SHP2 activation by oncogenic mutations.

Main Methods:

  • Path-based conformational sampling
  • Unbiased molecular dynamics (MD) simulations
  • Markov state models (MSMs)
  • Neural relational inference (NRI)
  • Minimum-action trajectory analysis

Main Results:

  • E76K mutation flattens the energy landscape, stabilizing active SHP2 conformations.
  • Conformational transitions to catalytically competent states are accelerated by E76K.
  • NRI revealed rewiring of allosteric communication, increasing interdomain coupling and residue centrality.
  • Network remodeling precedes and facilitates domain opening, linking topological changes to structural activation.

Conclusions:

  • The study provides a dynamic framework for SHP2 activation by oncogenic mutations.
  • Integrating ensemble modeling with network inference is powerful for dissecting allosteric regulation.
  • Findings offer insights into SHP2-driven diseases and potential therapeutic strategies.

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