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Updated: Jul 7, 2025

A Mass Spectrometry-Based Approach to Identify Phosphoprotein Phosphatases and their Interactors
Published on: April 29, 2022
High-resolution double vision of the allosteric phosphatase PTP1B
Shivani Sharma1, Tamar Skaist Mehlman1, Reddy Sudheer Sagabala2
1Structural Biology Initiative, CUNY Advanced Science Research Center, New York, NY 10031, USA.
Abstract:
Protein tyrosine phosphatase 1B (PTP1B) plays important roles in cellular homeostasis and is a highly validated therapeutic target for multiple human ailments, including diabetes, obesity and breast cancer. However, much remains to be learned about how conformational changes may convey information through the structure of PTP1B to enable allosteric regulation by ligands or functional responses to mutations. High-resolution X-ray crystallography can offer unique windows into protein conformational ensembles, but comparison of even high-resolution structures is often complicated by differences between data sets, including non-isomorphism. Here, the highest resolution crystal structure of apo wild-type (WT) PTP1B to date is presented out of a total of ∼350 PTP1B structures in the PDB. This structure is in a crystal form that is rare for PTP1B, with two unique copies of the protein that exhibit distinct patterns of conformational heterogeneity, allowing a controlled comparison of local disorder across the two chains within the same asymmetric unit. The conformational differences between these chains are interrogated in the apo structure and between several recently reported high-resolution ligand-bound structures. Electron-density maps in a high-resolution structure of a recently reported activating double mutant are also examined, and unmodeled alternate conformations in the mutant structure are discovered that coincide with regions of enhanced conformational heterogeneity in the new WT structure. These results validate the notion that these mutations operate by enhancing local dynamics, and suggest a latent susceptibility to such changes in the WT enzyme. Together, these new data and analysis provide a detailed view of the conformational ensemble of PTP1B and highlight the utility of high-resolution crystallography for elucidating conformational heterogeneity with potential relevance for function.
Insights
High-resolution crystallography reveals distinct conformational states in wild-type Protein Tyrosine Phosphatase 1B (PTP1B). These findings illuminate PTP1B
Area of Science:
- Biochemistry and structural biology
- Protein dynamics and allosteric regulation
- Crystallography and structural analysis
Background:
- Protein tyrosine phosphatase 1B (PTP1B) is a key regulator of cellular homeostasis and a therapeutic target for diabetes, obesity, and cancer.
- Understanding PTP1B's conformational changes is crucial for elucidating its allosteric regulation and functional responses to mutations.
Purpose of the Study:
- To present the highest resolution crystal structure of apo wild-type (WT) PTP1B to date.
- To investigate conformational heterogeneity within PTP1B using high-resolution crystallography.
- To compare conformational differences between apo WT PTP1B and ligand-bound structures, and examine mutant structures.
Main Methods:
- High-resolution X-ray crystallography of apo wild-type (WT) PTP1B.
- Analysis of protein conformational ensembles and heterogeneity.
- Comparison of crystallographic data from apo, ligand-bound, and mutant PTP1B structures.
Main Results:
- A rare crystal form of apo WT PTP1B was obtained, revealing two unique protein copies with distinct conformational heterogeneity.
- Conformational differences were observed between the two chains in the apo structure and compared with ligand-bound structures.
- Unmodeled alternate conformations in an activating double mutant structure were identified, coinciding with enhanced heterogeneity in WT PTP1B.
Conclusions:
- Mutations in PTP1B likely enhance local dynamics, suggesting inherent susceptibility in the WT enzyme.
- High-resolution crystallography effectively elucidates PTP1B's conformational ensemble and heterogeneity.
- These findings offer insights into PTP1B's functional mechanisms and potential therapeutic modulation.
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