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Assessing Cellular Target Engagement by SHP2 PTPN11 Phosphatase Inhibitors
Published on: July 17, 2020
The pathogenic T42A mutation in SHP2 rewires the interaction specificity of its N-terminal regulatory domain
Anne E van Vlimmeren1,2, Rashmi Voleti1, Cassandra A Chartier1
1Department of Chemistry, Columbia University, New York, NY 10027.
Abstract:
Mutations in the tyrosine phosphatase Src homology-2 domain-containing protein tyrosine phosphatase-2 (SHP2) are associated with a variety of human diseases. Most mutations in SHP2 increase its basal catalytic activity by disrupting autoinhibitory interactions between its phosphatase domain and N-terminal SH2 (phosphotyrosine recognition) domain. By contrast, some disease-associated mutations located in the ligand-binding pockets of the N- or C-terminal SH2 domains do not increase basal activity and likely exert their pathogenicity through alternative mechanisms. We lack a molecular understanding of how these SH2 mutations impact SHP2 structure, activity, and signaling. Here, we characterize five SHP2 SH2 domain ligand-binding pocket mutants through a combination of high-throughput biochemical screens, biophysical and biochemical measurements, and molecular dynamics simulations. We show that while some of these mutations alter binding affinity to phosphorylation sites, the T42A mutation in the N-SH2 domain is unique in that it also substantially alters ligand-binding specificity, despite being 8 to 10 Å from the specificity-determining region of the SH2 domain. This mutation exerts its effect on sequence specificity by remodeling the phosphotyrosine-binding pocket, altering the mode of engagement of both the phosphotyrosine and surrounding residues on the ligand. The functional consequence of this altered specificity is that the T42A mutant has biased sensitivity toward a subset of activating ligands and enhances downstream signaling. Our study highlights an example of a nuanced mechanism of action for a disease-associated mutation, characterized by a change in protein-protein interaction specificity that alters enzyme activation.
Insights
Disease-associated mutations in SHP2 protein tyrosine phosphatase can alter its function. The T42A mutation specifically changes ligand-binding specificity, impacting downstream signaling and disease mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Mutations in Src homology-2 domain-containing protein tyrosine phosphatase-2 (SHP2) are linked to various human diseases.
- Most SHP2 mutations increase basal catalytic activity by disrupting autoinhibition.
- Some disease-associated SHP2 mutations in SH2 ligand-binding pockets may act through alternative mechanisms.
Purpose of the Study:
- To investigate the molecular mechanisms by which SHP2 SH2 domain mutations impact protein structure, activity, and signaling.
- To characterize five SHP2 SH2 domain ligand-binding pocket mutants.
Main Methods:
- High-throughput biochemical screening
- Biophysical and biochemical measurements
- Molecular dynamics simulations
Main Results:
- Some SHP2 SH2 mutants altered binding affinity to phosphorylation sites.
- The T42A mutation in the N-SH2 domain uniquely altered ligand-binding specificity.
- T42A mutation remodeled the phosphotyrosine-binding pocket, changing ligand engagement.
- The T42A mutant exhibited biased sensitivity to activating ligands, enhancing downstream signaling.
Conclusions:
- Disease-associated SHP2 mutations can exert pathogenicity through altered protein-protein interaction specificity.
- The T42A mutation provides a nuanced example of how SH2 domain mutations impact SHP2 function and disease.
- Understanding these mechanisms is crucial for developing targeted therapies for SHP2-related diseases.
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