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Updated: Jul 25, 2025

X-Ray Crystallography to Study the Oligomeric State Transition of the Thermotoga maritima M42 Aminopeptidase TmPep1050
Published on: May 13, 2020
A Conserved Local Structural Motif Controls the Kinetics of PTP1B Catalysis
Christine Y Yeh1, Jesus A Izaguirre1, Jack B Greisman1
1D. E. Shaw Research, New York, New York 10036, United States.
Abstract:
Protein tyrosine phosphatase 1B (PTP1B) is a negative regulator of the insulin and leptin signaling pathways, making it a highly attractive target for the treatment of type II diabetes. For PTP1B to perform its enzymatic function, a loop referred to as the "WPD loop" must transition between open (catalytically incompetent) and closed (catalytically competent) conformations, which have both been resolved by X-ray crystallography. Although prior studies have established this transition as the rate-limiting step for catalysis, the transition mechanism for PTP1B and other PTPs has been unclear. Here we present an atomically detailed model of WPD loop transitions in PTP1B based on unbiased, long-timescale molecular dynamics simulations and weighted ensemble simulations. We found that a specific WPD loop region─the PDFG motif─acted as the key conformational switch, with structural changes to the motif being necessary and sufficient for transitions between long-lived open and closed states of the loop. Simulations starting from the closed state repeatedly visited open states of the loop that quickly closed again unless the infrequent conformational switching of the motif stabilized the open state. The functional importance of the PDFG motif is supported by the fact that it is well conserved across PTPs. Bioinformatic analysis shows that the PDFG motif is also conserved, and adopts two distinct conformations, in deiminases, and the related DFG motif is known to function as a conformational switch in many kinases, suggesting that PDFG-like motifs may control transitions between structurally distinct, long-lived conformational states in multiple protein families.
Insights
The PDFG motif in protein tyrosine phosphatase 1B (PTP1B) controls the WPD loop
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Protein tyrosine phosphatase 1B (PTP1B) is a key regulator of insulin and leptin signaling.
- PTP1B's catalytic activity depends on the WPD loop transitioning between open and closed states.
- The mechanism of this critical WPD loop transition has remained elusive.
Purpose of the Study:
- To elucidate the molecular mechanism of WPD loop conformational transitions in PTP1B.
- To identify key structural elements governing PTP1B catalytic competence.
- To explore the broader implications of these findings for other protein tyrosine phosphatases (PTPs) and related enzymes.
Main Methods:
- Atomically detailed molecular dynamics simulations.
- Long-timescale and weighted ensemble simulations.
- Bioinformatic analysis of conserved motifs.
Main Results:
- The PDFG motif within the WPD loop acts as the crucial conformational switch.
- Structural rearrangements of the PDFG motif are necessary and sufficient for open-closed state transitions.
- The PDFG motif's conformational switching stabilizes the catalytically competent open state.
Conclusions:
- The PDFG motif is essential for regulating PTP1B enzymatic activity.
- Conserved PDFG and DFG motifs may control conformational states across multiple protein families, including kinases and deiminases.
- This provides a novel mechanistic insight into enzyme regulation and potential therapeutic targeting.
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