Effects of RNase L mutations associated with prostate cancer on apoptosis induced by 2',5'-oligoadenylates

Ying Xiang1, Zhengfu Wang, Junko Murakami

  • 1Department of Cancer Biology, Lerner Research Institute, Cleveland Clinic Foundation, Cleveland, Ohio 44195, USA.

Cancer Research
|October 30, 2003
PubMed

Insights

The RNASEL gene variant R462Q reduces RNase L activity, impairing apoptosis and potentially contributing to prostate cancer development. This finding highlights RNASEL mutations

Area of Science:

  • Molecular Biology
  • Genetics
  • Oncology

Background:

  • The RNASEL gene is a key candidate for hereditary prostate cancer 1 (HPC1).
  • RNase L, encoded by RNASEL, is an endoribonuclease crucial for antiviral responses, activated by 2-5' oligoadenylates (2-5A).
  • Prostate cancer progression involves escaping apoptotic pathways.

Purpose of the Study:

  • To investigate the functional impact of naturally occurring RNASEL mutations and polymorphisms on RNase L activity.
  • To assess the role of RNase L variants in apoptosis of prostate cancer cell lines.
  • To evaluate the R462Q variant's potential contribution to prostate cancer development.

Main Methods:

  • Chemical synthesis of biostable 2-5A analogues.
  • Treatment of human prostate cancer cell lines (DU145, PC3, LNCaP) with 2-5A analogues.
  • Expression and activity comparison of wild-type and variant human RNase L in mouse RNase L(-/-) cells.
  • Assessment of RNase L dimerization and apoptosis induction.

Main Results:

  • 2-5A analogues induced RNase L activity and apoptosis in prostate cancer cells, with varying sensitivity.
  • Several missense variants (G59S, I97L, etc.) showed wild-type RNase L activity.
  • The R462Q variant exhibited normal 2-5A binding but a 3-fold decrease in RNase activity and impaired dimerization.
  • RNase L(R462Q) showed reduced apoptosis induction, correlating with its potential role in prostate cancer.

Conclusions:

  • RNASEL mutations and variants can enable tumor cells to evade apoptosis.
  • The R462Q variant's deficient RNase L activity suggests a role in prostate cancer pathogenesis.
  • Understanding these mechanisms may offer therapeutic targets for prostate cancer.

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