Evidence of antisense tumor targeting in mice

K Nakamura1, C Fan, G Liu

  • 1Department of Radiology, Keio University School of Medicine, Tokyo, Japan.

Bioconjugate Chemistry
|November 18, 2004
PubMed

Insights

This study provides evidence for in vivo tumor targeting using antisense DNA (AS DNA) in mice. Radiolabeled AS DNA showed higher accumulation in tumors compared to control sense DNA (S DNA), demonstrating feasibility for potential antisense imaging.

Area of Science:

  • Molecular Biology
  • Oncology
  • Biomedical Imaging

Background:

  • Radiolabeled antisense DNA (AS DNA) shows increased accumulation in cultured tumor cells.
  • Evidence for in vivo tumor targeting by AS DNA via an antisense mechanism remains limited.
  • Multidrug resistance (MDR) genes, like MDR1, are often overexpressed in tumors.

Purpose of the Study:

  • To obtain convincing evidence of in vivo antisense tumor targeting using radiolabeled AS DNA and control sense DNA (S DNA) in nude mice.
  • To evaluate both intratumoral (i.t.) and intravenous (i.v.) administration routes for AS DNA delivery.
  • To assess AS DNA targeting in two different tumor models with varying MDR1 mRNA expression.

Main Methods:

  • Two mouse tumor models (KB-G2 and KB-31) were used, with KB-G2 exhibiting higher MDR1 mRNA expression.
  • Radiolabeled (99mTc) AS DNA (targeting MDR1 mRNA) and S DNA were administered intratumorally or intravenously.
  • Biodistribution studies and whole-body imaging were performed 24 hours post-administration.

Main Results:

  • Intratumoral administration showed significantly higher AS DNA accumulation in KB-G2 tumors compared to S DNA (14.7% vs. 8.5% ID/g).
  • Intravenous administration also resulted in significantly higher AS DNA tumor levels compared to S DNA (0.100% vs. 0.063% ID/g).
  • Whole-body imaging confirmed improved AS DNA targeting in the KB-G2 model after i.t. administration.

Conclusions:

  • Statistically significant higher tumor accumulation of (99m)Tc-AS DNA compared to (99m)Tc-S DNA was observed following both i.t. and i.v. administration.
  • This study provides evidence for feasible in vivo antisense tumor targeting.
  • Further improvements in tumor delivery and normal tissue clearance are necessary for practical antisense imaging applications.