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.

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.