Reduced RhoGDI2 Expression Disrupts Centrosome Functions and Promotes Mitotic Errors

Mudrika Tripathi1, Nancy Garbacki1, Jérôme Willems1

  • 1Laboratory of Connective Tissues Biology, GIGA-Cancer, University of Liège, 4000 Liège, Belgium.

Cells
|November 26, 2025
PubMed

Insights

RhoGDI2 (Rho Guanine Dissociation Inhibitor 2) regulates cell proliferation and centrosome function in cancer. Silencing RhoGDI2 impairs cancer cell killing by NK cells, revealing its dual role in cancer progression and immunity.

Area of Science:

  • Cell Biology
  • Cancer Biology
  • Immunology

Background:

  • RhoGDI2 is a Rho GTPase regulator involved in cytoskeleton organization and cell survival.
  • Its expression varies in human cancers, correlating with prognosis.
  • RhoGDI2 is highly expressed in immune cells, with similarities between primary cilia and immune synapses.

Purpose of the Study:

  • To investigate the mechanisms underlying RhoGDI2's dual role in cancer.
  • To explore RhoGDI2's function in cancer cell proliferation, centrosome regulation, and immune cell activity.

Main Methods:

  • Knockdown of RhoGDI2 expression in human cancer cell lines.
  • Assessment of proliferation rates, centrosome number, and ciliogenesis.
  • Silencing of RhoA to investigate GTPase involvement.
  • Silencing of RhoGDI2 in NK cells to evaluate immune synapse function.

Main Results:

  • RhoGDI2 knockdown reduced cancer cell proliferation, induced supernumerary centrosomes, and inhibited ciliogenesis.
  • RhoA silencing partially rescued centrosome and ciliary defects caused by RhoGDI2 suppression.
  • RhoGDI2 silencing in NK cells significantly impaired their cancer cell-killing activity via immune synapses.

Conclusions:

  • RhoGDI2 plays novel roles in centrosome function within human cancers.
  • RhoGDI2 is crucial for immune synapse function in immune cells, impacting anti-cancer activity.
  • These findings explain the observed dual role of RhoGDI2 in cancer progression and immunity.

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