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Published on: April 2, 2015
Single Ion Pair Is Essential for Stabilizing SHP2's Open Conformation.
Sean H Kim1, Maya L Bulos1, Jennifer A Adams1
1Department of Chemistry and Program in Biochemistry & Biophysics, Amherst College, Amherst, Massachusetts 01002, United States.
Researchers identified key interactions stabilizing the active state of Src-homology-2-domain-containing PTP-2 (SHP2). An ion pair between glutamate 249 and arginine 111 is crucial for SHP2
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Src-homology-2-domain-containing PTP-2 (SHP2) is a critical signaling enzyme implicated in human diseases.
- SHP2 activity is regulated by a balance between its inactive (closed) and active (open) conformations.
- Understanding SHP2's open state stabilization is vital for therapeutic strategies.
Purpose of the Study:
- To identify specific amino acid interactions stabilizing the active (open) conformation of SHP2.
- To investigate the biochemical basis of SHP2 open-state stabilization through mutagenesis.
Main Methods:
- Systematic mutagenesis of residues at interdomain interfaces of SHP2's open conformation.
- Evaluation of open/closed conformational equilibria for wild-type and mutant SHP2 proteins.
Main Results:
- Several amino acid interactions were found to stabilize the SHP2 open state.
- A critical ion pair between Glutamate 249 (PTP domain) and Arginine 111 (interdomain loop) was identified.
- Disruption of the R111/E249 ion pair significantly favors the closed (inhibited) state, creating 'hyperinhibited' SHP2 mutants.
Conclusions:
- The R111/E249 ion pair is a key determinant for stabilizing SHP2's active conformation.
- The identified 'hyperinhibited' SHP2 mutants offer novel tools for studying SHP2 signaling.
- These findings advance understanding of SHP2 regulation and its role in disease suppression.
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