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Updated: Aug 29, 2026

Pretargeted Radioimmunotherapy Based on the Inverse Electron Demand Diels-Alder Reaction
Published on: January 29, 2019
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
Abstract:
Antigene radiotherapy is based upon damaging selected genes by a high dose of radiation from radionuclides delivered to this gene by a sequence-specific DNA-binding molecule. Here we describe our recent trials of antigene radiotherapy using the human mdr1 gene over-expressed in KB-V1 cells as a model. As a delivery molecule, we used a triplex-forming oligonucleotide (TFO) with a binding site in intron 14 of mdr1. This TFO was labeled with an Auger-electron-emitting radionuclide 125I. Decay of 125I releases a shower of low energy electrons that produce DNA strand breaks mostly within 10 bp from the decay site. Targeting in situ was assessed by restriction enzyme digestion of the DNA recovered from the TFO-treated cells followed by Southern hybridization with DNA probes flanking the target sequence. Double-strand breaks in the target sequence were detected in purified nuclei and digitonin-permeabilized cells, but not in the intact cells when TFO were delivered with liposomes. On the basis of these observations we hypothesized that there are cytoplasmic factors that bind such TFO and deliver them into the nucleus, but do not release them inside the nucleus, thus preventing TFO from binding their genomic targets. To test this hypothesis we (i) delivered TFO along with an excess of unlabeled oligonucleotide with an arbitrary sequence ("ballast") and (ii) conjugated TFO with a nuclear localization sequence peptide (NLS). We have found that TFO/NLS conjugates cleaved the target in a concentration-dependent manner regardless of the presence of the "ballast" oligonucleotide. In contrast, TFO without NLS cleaved the target only in the presence of an excess of the "ballast." These results may provide a new insight into the mechanism of intracellular transport of oligonucleotides.
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.

