Nuclear PIM1 confers resistance to rapamycin-impaired endothelial proliferation

Thomas Walpen1, Ina Kalus, Jürg Schwaller

  • 1Research Unit, Division Internal Medicine, University Hospital Zürich, 8091 Zürich, Switzerland.

Insights

PIM1 kinase nuclear localization confers resistance to rapamycin in endothelial cells. Inhibition of mTOR signaling increases PIM1 levels, promoting cell proliferation and tumor angiogenesis.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Cancer Research

Background:

  • PIM serine/threonine kinases and the mTOR/AKT pathway are crucial for cell proliferation and survival.
  • PIM kinases can confer resistance to mTOR inhibitors like rapamycin in cancer cells.
  • Endothelial cell proliferation is vital for tumor growth via blood vessel formation.

Purpose of the Study:

  • To investigate the role of PIM1 kinase in mediating resistance to rapamycin in mouse aortic endothelial cells (MAEC).
  • To understand how PIM1 kinase interacts with the mTOR/AKT pathway in endothelial cells.

Main Methods:

  • Utilized PIM1 knockout (Pim1(-/-)) and wildtype MAEC.
  • Administered rapamycin to inhibit mTOR and AKT pathways.
  • Analyzed PIM1 protein levels, localization (cytosolic vs. nuclear), and functional effects on cell proliferation.
  • Employed Pim1 deletion mutants, including a C-terminal truncation mutant (beyond Ser 276).

Main Results:

  • MAEC lacking PIM1 were more sensitive to rapamycin inhibition.
  • Inhibition of mTOR/AKT increased PIM1 protein levels in both cytosol and nucleus.
  • A Pim1 mutant truncated at the C-terminus showed exclusive nuclear localization.
  • Overexpression of wildtype PIM1 or the nuclear mutant conferred complete resistance to rapamycin-induced growth inhibition.

Conclusions:

  • Nuclear localization of PIM1 is critical for conferring resistance to rapamycin in MAEC.
  • mTOR inhibition-induced nuclear PIM1 accumulation or expression of nuclear PIM1 mutants promotes endothelial cell proliferation.
  • Targeting nuclear PIM1 may overcome rapamycin resistance in angiogenesis-dependent cancers.

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