The tetraspan protein epithelial membrane protein-2 interacts with beta1 integrins and regulates adhesion

Madhuri Wadehra1, Ramaswamy Iyer, Lee Goodglick

  • 1Molecular Biology Institute, The David Geffen School of Medicine at UCLA and Jonsson Comprehensive Cancer Center, 108ee Le Conte Avenue, Los Angeles, CA 90095, USA.

Insights

Epithelial membrane protein-2 (EMP2), a cancer-linked protein, interacts with beta(1) integrins. This interaction influences cell adhesion by altering specific integrin levels on the cell surface.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Growth arrest-specific-3 (GAS3)/peripheral myelin protein-22 (PMP22) proteins are tetraspan superfamily members.
  • GAS3/PMP22 proteins are implicated in cancer growth and progression.
  • Epithelial membrane protein-2 (EMP2), a GAS3/PMP22 family member, is a putative tumor suppressor.

Purpose of the Study:

  • To investigate the normal function of EMP2.
  • To test the hypothesis that EMP2 influences integrin-related cell functions.

Main Methods:

  • Co-immunoprecipitation and immunodepletion assays to detect protein complexes.
  • Laser confocal microscopy to determine protein colocalization.
  • Ribozyme-mediated knockdown to reduce EMP2 expression.
  • Analysis of cellular adhesion to extracellular matrix proteins.

Main Results:

  • EMP2 associates with the beta(1) integrin subunit, forming common protein complexes.
  • EMP2 specifically colocalizes with alpha(6)beta(1) integrin, not alpha(5)beta(1) integrin.
  • EMP2 modulates the plasma membrane integrin repertoire, increasing alpha(6)beta(1) and decreasing alpha(5)beta(1) surface expression.
  • EMP2-mediated integrin changes significantly alter cellular adhesion to extracellular matrix.

Conclusions:

  • This study reveals the first interaction between a GAS3/PMP22 family member and an integrin protein.
  • The interaction between EMP2 and beta(1) integrins suggests a physiological role for GAS3/PMP22 proteins in regulating cell adhesion.
  • EMP2's influence on integrin expression and cell adhesion highlights its potential role in cancer biology.

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