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Updated: Oct 10, 2025

Assessing Cellular Target Engagement by SHP2 PTPN11 Phosphatase Inhibitors
Published on: July 17, 2020
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.
Abstract:
The Src-homology 2 domain containing phosphatase 2 (SHP2) plays a critical role in crucial signaling pathways and is involved in oncogenesis and in developmental disorders. Its structure includes two SH2 domains (N-SH2 and C-SH2), and a protein tyrosine phosphatase (PTP) domain. Under basal conditions, SHP2 is auto-inhibited, with the N-SH2 domain blocking the PTP active site. Activation involves a rearrangement of the domains that makes the catalytic site accessible, coupled to the association between the SH2 domains and cognate proteins containing phosphotyrosines. Several aspects of this transition are debated and competing mechanistic models have been proposed. A crystallographic structure of SHP2 in an active state has been reported (PDB code 6crf), but several lines of evidence suggests that it is not fully representative of the conformations populated in solution. To clarify the structural rearrangements involved in SHP2 activation, enhanced sampling simulations of the autoinhibited and active states have been performed, for wild type SHP2 and its pathogenic E76K variant. Our results demonstrate that the crystallographic conformation of the active state is unstable in solution, and multiple interdomain arrangements are populated, thus allowing association to bisphosphorylated sequences. Contrary to a recent proposal, activation is coupled to the conformational changes of the N-SH2 binding site, which is significantly more accessible in the active sate, rather than to the structure of the central β-sheet of the domain. In this coupling, a previously undescribed role for the N-SH2 BG loop emerged.
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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