UBE1L causes lung cancer growth suppression by targeting cyclin D1

Qing Feng1, David Sekula, Yongli Guo

  • 1Department of Pharmacology and Toxicology, Dartmouth Medical School, Remsen 7650, Hanover, NH 03755, USA.

Insights

The UBE1L-ISG15 pathway inhibits lung cancer growth by targeting cyclin D1. Bexarotene treatment increases UBE1L, reducing cyclin D1 and cell proliferation in patients.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • The ubiquitin-activating enzyme UBE1L and its substrate ISG15 are implicated in lung carcinogenesis.
  • Previous research suggested the UBE1L-ISG15 pathway inhibits lung cancer by reducing cyclin D1 expression.

Purpose of the Study:

  • To investigate the mechanism by which UBE1L-ISG15 affects cyclin D1.
  • To explore the therapeutic potential of UBE1L induction in lung cancer.

Main Methods:

  • Cell transfection experiments with UBE1L, ISG15, and UBP43.
  • Analysis of cyclin D1 protein and mRNA levels, and protein stability.
  • Retroviral transduction of UBE1L into lung cells.
  • In vitro studies with bexarotene treatment.
  • Analysis of clinical trial data on bexarotene treatment in lung cancer patients.

Main Results:

  • UBE1L promotes ISG15-cyclin D1 complex formation, inhibiting cyclin D1 protein levels.
  • UBP43 antagonizes UBE1L's effect on cyclin D1 and ISG15 conjugation.
  • UBE1L reduces cyclin D1 protein stability and expression, suppressing cell growth.
  • Bexarotene treatment induces UBE1L, reduces cyclin D1 and Ki-67 in lung tumors.

Conclusions:

  • The UBE1L-ISG15 pathway suppresses lung cancer growth by specifically inhibiting cyclin D1.
  • Induction of UBE1L, for example with bexarotene, represents a potential therapeutic strategy for lung cancer.

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