Protein-tyrosine phosphatase PCP-2 inhibits beta-catenin signaling and increases E-cadherin-dependent cell adhesion

He-Xin Yan1, Wen Yang, Rui Zhang

  • 1International Cooperation Laboratory on Signal Transduction, Eastern Hepatobiliary Surgery Institute, Second Military Medical University, Shanghai 200438.

Insights

Receptor-like protein-tyrosine phosphatase PCP-2 dephosphorylates beta-catenin, inhibiting Wnt signaling and enhancing cell adhesion. PCP-2 expression reduces colon cancer cell proliferation and migration, suggesting a role in maintaining epithelial integrity.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Cancer Research

Background:

  • Beta-catenin is crucial for cell adhesion and Wnt signaling.
  • Tyrosine phosphorylation of beta-catenin disrupts cell adhesion and promotes signaling.
  • The phosphatase PCP-2 interacts with beta-catenin at adherens junctions.

Purpose of the Study:

  • To investigate the role of PCP-2 in regulating beta-catenin's dual functions.
  • To determine if PCP-2's phosphatase activity is necessary for its effects on beta-catenin.
  • To assess the impact of PCP-2 expression on colon cancer cell behavior.

Main Methods:

  • Investigated PCP-2's effect on beta-catenin-mediated gene activation (e.g., c-myc).
  • Assessed the requirement of PCP-2's catalytic activity for inhibition.
  • Analyzed beta-catenin and E-cadherin localization and adherens junction stability in SW480 cells.
  • Evaluated proliferation and migration of SW480 cells expressing PCP-2.

Main Results:

  • PCP-2 inhibits both wild-type and active beta-catenin in target gene activation.
  • PCP-2's phosphatase activity is essential for its inhibitory effect.
  • PCP-2 expression stabilizes cytosolic beta-catenin and increases membrane E-cadherin.
  • PCP-2 expression reduces SW480 cell proliferation and migration.

Conclusions:

  • PCP-2 dephosphorylates beta-catenin, balancing its roles in adhesion and signaling.
  • PCP-2 acts as a tumor suppressor by inhibiting beta-catenin-driven proliferation and migration.
  • Loss of PCP-2 function may contribute to aberrant beta-catenin signaling in cancer.

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