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Author Spotlight: Unveiling the Role of TMOD3 in Platinum Resistance and Immune Infiltration in Ovarian Cancer
Published on: August 2, 2024
Inhibiting DNA methylation and RNA editing upregulates immunogenic RNA to transform the tumor microenvironment and
Stephanie Gomez1, Olivia L Cox1, Reddick R Walker1
1Department of Microbiology, Immunology and Tropical Medicine, The George Washington University Cancer Center, The George Washington University School of Medicine and Health Sciences, Washington, District of Columbia, USA.
Background:
Novel therapies are urgently needed for ovarian cancer (OC), the fifth deadliest cancer in women. Preclinical work has shown that DNA methyltransferase inhibitors (DNMTis) can reverse the immunosuppressive tumor microenvironment in OC. Inhibiting DNA methyltransferases activate transcription of double-stranded (ds)RNA, including transposable elements. These dsRNAs activate sensors in the cytoplasm and trigger type I interferon (IFN) signaling, recruiting host immune cells to kill the tumor cells. Adenosine deaminase 1 (ADAR1) is induced by IFN signaling and edits mammalian dsRNA with an A-to-I nucleotide change, which is read as an A-to-G change in sequencing data. These edited dsRNAs cannot be sensed by dsRNA sensors, and thus ADAR1 inhibits the type I IFN response in a negative feedback loop. We hypothesized that decreasing ADAR1 editing would enhance the DNMTi-induced immune response.
Methods:
Human OC cell lines were treated in vitro with DNMTi and then RNA-sequenced to measure RNA editing. Adar1 was stably knocked down in ID8 Trp53-/- mouse OC cells. Control cells (shGFP) or shAdar1 cells were tested with mock or DNMTi treatment. Tumor-infiltrating immune cells were immunophenotyped using flow cytometry and cell culture supernatants were analyzed for secreted chemokines/cytokines. Mice were injected with syngeneic shAdar1 ID8 Trp53-/- cells and treated with tetrahydrouridine/DNMTi while given anti-interferon alpha and beta receptor 1, anti-CD8, or anti-NK1.1 antibodies every 3 days.
Results:
We show that ADAR1 edits transposable elements in human OC cell lines after DNMTi treatment in vitro. Combining ADAR1 knockdown with DNMTi significantly increases pro-inflammatory cytokine/chemokine production and sensitivity to IFN-β compared with either perturbation alone. Furthermore, DNMTi treatment and Adar1 loss reduces tumor burden and prolongs survival in an immunocompetent mouse model of OC. Combining Adar1 loss and DNMTi elicited the most robust antitumor response and transformed the immune microenvironment with increased recruitment and activation of CD8+ T cells.
Conclusion:
In summary, we showed that the survival benefit from DNMTi plus ADAR1 inhibition is dependent on type I IFN signaling. Thus, epigenetically inducing transposable element transcription combined with inhibition of RNA editing is a novel therapeutic strategy to reverse immune evasion in OC, a disease that does not respond to current immunotherapies.
Insights
Combining DNA methyltransferase inhibitors (DNMTis) with ADAR1 inhibition enhances anti-tumor immunity in ovarian cancer (OC). This novel strategy reverses immune evasion and improves survival by boosting type I interferon signaling.
Area of Science:
- Oncology
- Immunology
- Epigenetics
Background:
- Ovarian cancer (OC) requires novel therapies due to its high mortality.
- DNA methyltransferase inhibitors (DNMTis) show potential in reversing OC's immunosuppressive tumor microenvironment.
- DNMTis activate double-stranded RNA (dsRNA) transcription, triggering immune responses, but Adenosine deaminase 1 (ADAR1) can inhibit this via RNA editing.
Purpose of the Study:
- To investigate if reducing ADAR1 editing enhances DNMTi-induced anti-tumor immune responses in ovarian cancer.
- To explore a novel therapeutic strategy combining epigenetic modification with RNA editing inhibition.
Main Methods:
- Human OC cell lines were treated with DNMTi and RNA-sequenced.
- ADAR1 was knocked down in mouse OC cells (shAdar1).
- Mice with OC cells were treated with DNMTi and ADAR1 knockdown, with or without immune checkpoint blockade.
Main Results:
- DNMTi treatment induced ADAR1 editing of transposable elements in OC cells.
- Combined ADAR1 knockdown and DNMTi treatment significantly increased pro-inflammatory cytokines and IFN-β sensitivity.
- This combination reduced tumor burden and prolonged survival in a mouse model, increasing CD8+ T cell activation.
Conclusions:
- The survival benefit of DNMTi plus ADAR1 inhibition is dependent on type I interferon signaling.
- Combining epigenetic induction of transposable elements with RNA editing inhibition is a promising strategy to overcome immune evasion in OC.
- This approach offers a novel therapeutic avenue for ovarian cancer, which is often resistant to current immunotherapies.
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