Targeting the ERG oncogene with splice-switching oligonucleotides as a novel therapeutic strategy in prostate cancer

Ling Li1, Lisa Hobson2, Laura Perry2

  • 1Institute of Biomedical & Clinical Sciences, University of Exeter Medical School, Exeter, UK.

Abstract

Insights

Antisense morpholino oligonucleotides targeting the ERG oncogene effectively reduced ERG expression in prostate cancer cells. This approach decreased cell proliferation and migration while increasing apoptosis, showing promise for ERG-targeted cancer therapy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Gene Therapy

Background:

  • The ERG oncogene, a member of the ETS gene family, is a key driver in prostate cancer, often activated by TMPRSS2 promoter fusion.
  • Targeting ERG is a significant therapeutic goal due to its role in prostate cancer development.

Purpose of the Study:

  • To design and evaluate antisense morpholino oligonucleotides (splice-switching oligonucleotides, SSOs) as a novel therapeutic strategy against the ERG oncogene.
  • To assess the efficacy of SSOs in reducing ERG expression and its downstream effects on cancer cell behavior and tumor growth.

Main Methods:

  • Designed SSOs targeting ERG exon 4 splice sites.
  • Tested SSO efficacy in ERG-positive VCaP (prostate) and MG63 (osteosarcoma) cell lines.
  • Assessed effects on cell proliferation, migration, apoptosis, and ERG protein levels.
  • Evaluated tumor growth in mouse xenografts and ERG expression in ex vivo patient samples.

Main Results:

  • SSOs effectively induced ERG exon 4 skipping, significantly reducing ERG protein levels.
  • ERG reduction led to decreased cell proliferation, reduced migration, and increased apoptosis.
  • Concomitant downregulation of cyclin D1, c-Myc, and Wnt signaling pathway components was observed.
  • SSOs reduced tumor growth in mouse xenografts and ERG expression in patient-derived prostate tumor tissue.

Conclusions:

  • Morpholino-based SSOs are effective in reducing ERG oncogene expression.
  • This reduction has significant anti-cancer effects, including decreased proliferation and increased apoptosis.
  • The study supports further in vivo therapeutic development of SSOs for ERG-targeted cancer therapy.