Oligonucleotide treatment of ras-induced tumors in nude mice

E Wickstrom1

  • 1Laboratory of Nucleic Acid Therapeutics, Department of Microbiology and Immunology, Kimmel Cancer Center, Philadelphia, PA, USA. eric@tesla.jci.tju.edu

Insights

Antisense oligonucleotides effectively suppress oncogene expression and reduce tumor growth in preclinical models. Sustained oligonucleotide treatment shows promise for cancer therapy, warranting further clinical investigation.

Area of Science:

  • Molecular Biology
  • Oncology
  • Biotechnology

Background:

  • Oligonucleotides can target oncogene transcripts, but sustained suppression of oncogenic proteins for patient benefit requires further study.
  • Investigating the efficacy of antisense DNA in inhibiting oncogene expression and subsequent tumor growth is crucial for developing targeted cancer therapies.

Purpose of the Study:

  • To evaluate the sustained efficacy of antisense oligonucleotides in suppressing oncogene expression (H-RAS and K-RAS) in cancer cells.
  • To determine the impact of oligonucleotide treatment on tumor growth in preclinical models.
  • To assess sequence-specificity and dose-dependency of antisense oligonucleotide inhibition.

Main Methods:

  • Examined antisense DNA inhibition of human H-RAS oncogene mRNA in transformed mouse cells, assessing sequence-specificity and secondary structure effects.
  • Pretreated H-RAS transformed solid tumor cells in vitro with antisense oligonucleotides before testing tumor growth in nude mice.
  • Treated H-RAS and K-RAS transformed cancer cells and tumors in vivo with various oligonucleotide phosphorothioates, comparing efficacy against control sequences.

Main Results:

  • Antisense inhibition of H-Ras was sequence-specific, dose-dependent, and more effective with a first intron sequence than an initiation codon target.
  • Three-day pretreatment with H-RAS antisense DNA reduced H-Ras levels by over 90%, significantly reducing tumor growth for up to 14 days post-treatment.
  • In vivo treatment with H-RAS and K-RAS antisense oligonucleotides demonstrated sustained tumor growth reduction (80% and 50% respectively), with sequence-specific effects observed.

Conclusions:

  • Sustained antisense oligonucleotide treatment can significantly suppress oncogene expression and inhibit tumor growth in preclinical models.
  • Antisense oligonucleotides targeting H-RAS and K-RAS show promise as a therapeutic strategy for various cancer types.
  • Further research, including toxicological testing and clinical trials, is warranted to explore the full therapeutic potential of oligonucleotide-based cancer treatments.