Discriminating between competing models for the allosteric regulation of oncogenic phosphatase SHP2 by characterizing

Paolo Calligari1, Valerio Santucci1, Lorenzo Stella1

  • 1Dipartimento di Scienze e Tecnologie Chimiche, Università di Roma Tor Vergata, Rome, Italy.

Insights

The study reveals how the protein tyrosine phosphatase SHP2 (Src-homology 2 domain containing phosphatase 2) activates. Activation involves dynamic domain rearrangements and changes in the N-SH2 binding site, not just the central beta-sheet.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • SHP2 (Src-homology 2 domain containing phosphatase 2) is vital for cell signaling, implicated in cancer and developmental disorders.
  • SHP2's auto-inhibited state involves the N-SH2 domain blocking the PTP active site.
  • Activation requires domain rearrangement for catalytic site accessibility and phosphotyrosine-containing protein binding.

Purpose of the Study:

  • To elucidate the structural dynamics of SHP2 activation.
  • To investigate the conformational ensembles populated by SHP2 in solution.
  • To clarify the molecular mechanisms underlying SHP2 activation and its pathogenic variants.

Main Methods:

  • Enhanced sampling molecular dynamics simulations were employed.
  • Simulations covered both autoinhibited and active states of wild-type SHP2 and the E76K variant.
  • Analysis focused on interdomain arrangements and binding site accessibility.

Main Results:

  • The crystallographic active state structure of SHP2 is unstable in solution.
  • Multiple interdomain arrangements are populated, facilitating binding to bisphosphorylated sequences.
  • SHP2 activation is linked to N-SH2 binding site conformational changes, with a key role for the N-SH2 BG loop.

Conclusions:

  • SHP2 activation involves a flexible, dynamic process rather than a single rigid structure.
  • The N-SH2 domain's binding site accessibility is crucial for activation.
  • A novel role for the N-SH2 BG loop in SHP2 activation coupling was identified.

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