Antigene radiotherapy: targeted radiodamage with 125i-labeled triplex-forming oligonucleotides

I G Panyutin1, O A Sedelnikova, V N Karamychev

  • 1Department of Nuclear Medicine, Warren G. Magnuson Clinical Center, National Institutes of Health, Bethesda, Maryland 20892, USA. ogorp@helix.nih.gov

Insights

Antigene radiotherapy uses targeted radiation to damage specific genes. Researchers found that conjugating triplex-forming oligonucleotides (TFOs) with nuclear localization sequences (NLS) effectively delivered them to genomic targets, enhancing gene damage.

Area of Science:

  • Molecular Biology
  • Radiotherapy
  • Gene Therapy

Background:

  • Antigene radiotherapy aims to damage specific genes using radionuclides delivered by DNA-binding molecules.
  • The human mdr1 gene, overexpressed in KB-V1 cells, served as a model for antigene radiotherapy trials.

Purpose of the Study:

  • To investigate the efficacy of triplex-forming oligonucleotides (TFOs) labeled with 125I for antigene radiotherapy.
  • To elucidate the intracellular transport mechanisms of TFOs and optimize their delivery to genomic targets.

Main Methods:

  • TFOs targeting the mdr1 gene were labeled with the Auger-electron emitter 125I.
  • In situ targeting was assessed using restriction enzyme digestion and Southern hybridization.
  • TFO delivery was tested with liposomes, "ballast" oligonucleotides, and nuclear localization sequence (NLS) peptide conjugates.

Main Results:

  • Double-strand breaks were detected in purified nuclei and digitonin-permeabilized cells, but not intact cells when TFOs were delivered with liposomes.
  • TFO/NLS conjugates achieved target cleavage in a concentration-dependent manner, irrespective of "ballast" presence.
  • Unconjugated TFOs required excess "ballast" oligonucleotide to cleave the target.

Conclusions:

  • Cytoplasmic factors may bind TFOs, facilitating nuclear entry but hindering genomic binding.
  • Conjugating TFOs with NLS peptides enhances their nuclear delivery and gene-targeting efficiency.
  • These findings offer insights into oligonucleotide intracellular transport and improve antigene radiotherapy strategies.