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Published on: August 1, 2025
Epigenetic Reprogramming by Decitabine in Triple-Negative Breast Cancer: Mechanisms, Immune Modulation, and
Fathima Raahima Riyas Mohamed1, Safiah Aldubaisi1, Arshiya Akbar1
1College of Medicine, Alfaisal University, Riyadh 50927, Saudi Arabia.
Abstract:
Background/Objectives: Triple-negative breast cancer (TNBC) is an aggressive subtype lacking ER, PR, and HER2 expression, with limited targeted therapies and poor outcomes. Epigenetic dysregulation, particularly aberrant DNA methylation, is a key driver. Decitabine, a DNA methyltransferase inhibitor (DNMTi), shows promise by reactivating silenced tumor suppressor genes and modulating immune responses. This systematic review evaluates preclinical and clinical evidence on decitabine's efficacy, mechanisms, and translational potential in TNBC. Methods: A PRISMA-2020 compliant search of PubMed, EBSCO, Web of Science, and Semantic Scholar was conducted up to April 2025. Included studies assessed decitabine alone or in combination in TNBC preclinical or clinical settings. Risk of bias was assessed using QUIPS and RoB 2.0 tools. Results: Twenty-five studies were included. In vitro, decitabine-induced growth inhibition, apoptosis, and re-expression of silenced genes (such as BRCA1 and CDH1). In vivo, it reduced tumor burden and enhanced anti-tumor immunity through MHC-I, PD-L1, and STING pathway upregulation. Synergy was noted with anti-PD-1, HDAC inhibitors, and chemotherapy. Resistance mechanisms included persistent DNMT activity, low DCK, and miRNA-driven escape (miR-155-TSPAN5). Conclusions: Decitabine demonstrates strong preclinical and early clinical potential in TNBC via epigenetic reprogramming and immune activation. Future strategies should focus on biomarker-based selection and resistance mitigation.
Insights
Decitabine shows promise for triple-negative breast cancer (TNBC) by reprogramming epigenetics and boosting anti-tumor immunity. Further research will focus on patient selection and overcoming resistance mechanisms for this aggressive cancer.
Area of Science:
- Oncology
- Cancer Epigenetics
- Immunotherapy
Background:
- Triple-negative breast cancer (TNBC) is aggressive with poor outcomes due to lack of targeted therapies.
- Aberrant DNA methylation is a key driver in TNBC pathogenesis.
- Decitabine, a DNA methyltransferase inhibitor (DNMTi), offers potential by reactivating tumor suppressors and modulating immunity.
Purpose of the Study:
- To systematically review preclinical and clinical evidence on decitabine's efficacy in TNBC.
- To evaluate decitabine's mechanisms of action and translational potential.
- To identify resistance mechanisms and future therapeutic strategies.
Main Methods:
- PRISMA-2020 compliant literature search across major databases up to April 2025.
- Inclusion of studies assessing decitabine in TNBC preclinical or clinical settings.
- Risk of bias assessment using QUIPS and RoB 2.0 tools.
Main Results:
- Decitabine induced growth inhibition, apoptosis, and re-expression of silenced genes (e.g., BRCA1, CDH1) in vitro.
- In vivo, decitabine reduced tumor burden and enhanced anti-tumor immunity (MHC-I, PD-L1, STING).
- Synergistic effects observed with anti-PD-1, HDAC inhibitors, and chemotherapy; resistance linked to DNMT activity, low DCK, and miR-155.
Conclusions:
- Decitabine exhibits significant preclinical and early clinical potential for TNBC.
- Epigenetic reprogramming and immune activation are key mechanisms of action.
- Future strategies require biomarker-based patient selection and resistance mitigation.
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