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Updated: Aug 19, 2025

Quantitative Structure-Activity Relationship, Activity Prediction, and Molecular Dynamics of Non-nucleotide Reverse Transcriptase Inhibitors
Published on: May 9, 2025
Inflammatory response to retrotransposons drives tumor drug resistance that can be prevented by reverse transcriptase
Ksenia A Novototskaya-Vlasova1, Nickolay S Neznanov1, Ivan Molodtsov1
1Department of Cell Stress Biology, Roswell Park Comprehensive Cancer Center, Buffalo, NY 14203.
Abstract:
Activation of endogenous retrotransposons frequently occurs in cancer cells and contributes to tumor genomic instability. To test whether inhibition of retrotranspositions has an anticancer effect, we used treatment with the nucleoside reverse transcriptase inhibitor (NRTI) stavudine (STV) in mouse cancer models, MMTV-HER2/Neu and Th-MYCN, that spontaneously develop breast cancer and neuroblastoma, respectively. In both cases, STV in drinking water did not affect tumor incidence nor demonstrate direct antitumor effects. However, STV dramatically extended progression-free survival in both models following an initial complete response to chemotherapy. To approach the mechanism underlying this phenomenon, we analyzed the effect of NRTI on the selection of treatment-resistant variants in tumor cells in culture. Cultivation of mouse breast carcinoma 4T1 in the presence of STV dramatically reduced the frequency of cells capable of surviving treatment with anticancer drugs. Global transcriptome analysis demonstrated that the acquisition of drug resistance by 4T1 cells was accompanied by an increase in the constitutive activity of interferon type I and NF-κB pathways and an elevated expression of LINE-1 elements, which are known to induce inflammatory responses via their products of reverse transcription. Treatment with NRTI reduced NF-κB activity and reverted drug resistance. Furthermore, the inducible expression of LINE-1 stimulated inflammatory response and increased the frequency of drug-resistant variants in a tumor cell population. These results indicate a mechanism by which retrotransposon desilencing can stimulate tumor cell survival during treatment and suggest reverse transcriptase inhibition as a potential therapeutic approach for targeting the development of drug-resistant cancers.
Insights
Nucleoside reverse transcriptase inhibitors (NRTIs) like stavudine (STV) did not directly fight cancer but extended survival by preventing drug resistance. STV inhibited retrotransposons, reducing cancer cell survival during treatment.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Endogenous retrotransposons activate in cancer, promoting genomic instability.
- Retrotransposon activation can contribute to cancer drug resistance.
Purpose of the Study:
- To investigate if inhibiting retrotransposition with stavudine (STV) has anticancer effects.
- To elucidate the mechanism by which STV impacts cancer drug resistance.
Main Methods:
- Used mouse cancer models (MMTV-HER2/Neu, Th-MYCN) treated with STV.
- Analyzed drug-resistant variants in cultured 4T1 breast carcinoma cells with STV.
- Performed global transcriptome analysis to study gene expression changes.
Main Results:
- STV did not affect tumor incidence or show direct antitumor effects.
- STV significantly extended progression-free survival in mouse models post-chemotherapy.
- STV reduced the frequency of drug-resistant variants and decreased NF-κB activity.
- Increased LINE-1 retrotransposon activity correlated with drug resistance and inflammation.
Conclusions:
- Retrotransposon activation promotes cancer cell survival and drug resistance.
- Inhibiting reverse transcriptase with STV can counteract drug resistance development.
- Targeting reverse transcriptase offers a potential strategy against drug-resistant cancers.
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