Maspin regulates different signaling pathways for motility and adhesion in aggressive breast cancer cells

Valerie A Odero-Marah1, Zhila Khalkhali-Ellis, Jirapat Chunthapong

  • 1The Department of Anatomy and Cell Biology at The University of Iowa, Carver College of Medicine; Iowa City, Iowa USA.

Cancer Biology & Therapy
|September 26, 2003
PubMed

Insights

Maspin, a tumor suppressor, inhibits breast cancer cell motility by regulating Rac1/PAK1 and promotes cell adhesion through PI3K/ERK pathways, offering potential therapeutic strategies for metastatic breast cancer.

Area of Science:

  • * Molecular Biology
  • * Cancer Research
  • * Cell Signaling

Background:

  • * Maspin, a serine protease inhibitor, acts as a tumor suppressor in breast cancer.
  • * Previous studies show maspin reduces breast cancer cell motility and increases adhesion.
  • * Signaling pathways regulating maspin's effects on cell behavior were previously uncharacterized.

Purpose of the Study:

  • * To investigate the signaling mechanisms by which maspin regulates breast cancer cell motility and adhesion.
  • * To test the hypothesis that maspin inhibits motility via the Rho GTPase pathway, specifically affecting Rac activity.
  • * To elucidate maspin's role in PI3K/ERK signaling and its impact on cell adhesion and phenotype.

Main Methods:

  • * Invasive MDA-MB-231 breast cancer cells were treated with recombinant maspin (rMaspin) or stably transfected with maspin.
  • * Assessed activity of Rho GTPases (Rac1), downstream effectors (PAK1), and signaling kinases (PI3K, ERK1/2).
  • * Evaluated effects of maspin on cell adhesion, focal adhesions, stress fibers, and cell phenotype using inhibitors (LY294002).

Main Results:

  • * Maspin treatment decreased Rac1 activity within 4 hours and PAK1 activity within 12 hours.
  • * PI3K and ERK1/2 activities transiently increased within 1 hour of rMaspin treatment.
  • * Maspin increased cell adhesion by approximately 30%, an effect blocked by PI3K inhibition; increased focal adhesions and stress fibers were observed.

Conclusions:

  • * Maspin inhibits breast cancer cell motility by regulating Rac1 and PAK1 activity.
  • * Maspin promotes cell adhesion via PI3K and ERK signaling pathways.
  • * These findings reveal maspin's multifaceted signaling roles in suppressing the metastatic phenotype, suggesting potential therapeutic applications.

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