Antitumor activity of an oncolytic adenovirus-delivered oncogene small interfering RNA

Yu-An Zhang1, John Nemunaitis, Shirley K Samuel

  • 1The Mary Crowley Medical Research Center, Dallas, Texas.

Cancer Research
|October 5, 2006
PubMed

Insights

A novel cancer gene therapy vector, Internavec, uses an oncolytic adenovirus to deliver small interfering RNA (siRNA) targeting K-ras. This dual approach significantly enhances antitumor effects by combining K-ras knockdown with viral cancer cell lysis.

Area of Science:

  • Oncolytic virotherapy
  • Gene therapy
  • Cancer research

Background:

  • Cancer gene therapy using small interfering RNA (siRNA) faces challenges with effective delivery platforms.
  • Oncolytic adenoviruses show promise but require optimization for targeted delivery and enhanced efficacy.

Purpose of the Study:

  • To develop and evaluate a novel vector, Internavec, for delivering K-ras siRNA using an oncolytic adenovirus (ONYX-411).
  • To assess the combined efficacy of K-ras knockdown and oncolysis in inhibiting tumor growth.

Main Methods:

  • Constructed Internavec by inserting a K-ras(v12)-specific siRNA hairpin into the ONYX-411 adenovirus.
  • Tested Internavec's potency in human cancer cells with K-ras(v12) mutations and its safety in nonmalignant cells.
  • Evaluated antitumor efficacy of Internavec via intratumoral injection in pancreatic cancer xenografts in mice.

Main Results:

  • Internavec demonstrated a 10-fold increase in potency against K-ras(v12)-mutated cancer cells compared to controls.
  • Daily Internavec injections significantly inhibited tumor growth (85.5% reduction) in mouse models.
  • Internavec induced cell cycle arrest, apoptosis, and down-regulated Ras signaling pathways.

Conclusions:

  • Internavec effectively delivers siRNA to cancer cells, achieving significant tumor growth inhibition.
  • The dual mechanism of oncogene knockdown and viral oncolysis offers a potent strategy for cancer therapy.
  • Internavec represents a promising platform for enhanced cancer gene therapy with improved antitumor outcomes.

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