Identification of ASF/SF2 as a critical, allele-specific effector of the cyclin D1b oncogene

Nicholas A Olshavsky1, Clay E S Comstock, Matthew J Schiewer

  • 1Department of Cancer and Cell Biology, University of Cincinnati, Cincinnati, Ohio, USA.

Cancer Research
|May 13, 2010
PubMed

Insights

The RNA-binding protein ASF/SF2 drives production of the oncogenic cyclin D1b protein in prostate cancer. This discovery reveals a novel mechanism for cancer development and offers targets for future therapies.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Genetics

Background:

  • Cyclin D1b, an oncogene, has enhanced cancer-driving functions compared to full-length cyclin D1a.
  • Cyclin D1b is selectively induced during tumorigenesis, but the mechanisms remain unclear.
  • The CCND1 G/A870 polymorphism influences cyclin D1b production.

Purpose of the Study:

  • To identify the mechanisms controlling tumor-specific cyclin D1b induction.
  • To investigate the role of RNA-binding protein ASF/SF2 in cyclin D1b production.
  • To explore the interplay between ASF/SF2, the CCND1 polymorphism, and prostate cancer development.

Main Methods:

  • Minigene analyses to study SF2 association with cyclin D1b mRNA.
  • Analysis of endogenous cyclin D1b transcript in prostate cancer cells.
  • Correlation studies between SF2 levels and cyclin D1b/D1a expression in human prostate cancer.

Main Results:

  • ASF/SF2 binds to cyclin D1b mRNA (transcript-b), with altered binding influenced by the CCND1 G/A870 polymorphism.
  • Tumor-associated induction of SF2 leads to preferential binding to G870-derived transcript-b.
  • SF2 levels strongly correlate with cyclin D1b, but not cyclin D1a, in human prostate cancer.

Conclusions:

  • ASF/SF2 is a critical, allele-specific effector of cyclin D1b production in prostate cancer.
  • Tumor-associated SF2 induction provides a mechanism for cyclin D1b upregulation, independent of the A870 allele status in primary PCa.
  • This study identifies a novel mechanism for oncogenic alternative splicing in cancer and highlights SF2 as a potential therapeutic target.

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