Targeting Autophagy to Overcome Chemoresistance and Immune Resistance in Triple-Negative Breast Cancer
Shubham D Mishra1, Patricia Mendonca1,2, Sukhmandeep Kaur1
1Division of Pharmaceutical Sciences, College of Pharmacy and Pharmaceutical Sciences, Institute of Public Health, Florida A&M University, Tallahassee, FL 32307, USA.
Abstract:
Triple-negative breast cancer (TNBC) remains one of the most challenging subtypes of breast cancer to treat, defined by its molecular heterogeneity, absence of hormone receptors, and poor clinical outcomes. While this difficulty with cancer cells persists even in the presence of chemotherapy and immune checkpoint inhibitors (ICIs), one critical factor linked to both chemoresistance and immune escape is autophagy. Autophagy is a cellular process with lysosomal recycling function. In TNBC, autophagy paradoxically shifts from tumor-suppressive to a tumor-promoting role. Autophagy was initially known to maintain genomic stability and alleviate oxidative damage. In TNBC, cancer cells use autophagy to detoxify platinum-induced DNA. damage, clear damaged mitochondria via mitophagy, recycle critical macromolecules, and sustain dormancy in cancer stem-like cells (CSCs). At the same time, the process of autophagic flux facilitates immune evasion, including PD-L1 expression stabilization, MHC-I degradation, and the establishment of an immunosuppressive tumor microenvironment (TME). The review encapsulates the progressive concepts of molecular regulation of autophagy, which involve key factors such as ULK1, VPS34, and non-coding RNAs (ncRNAs). These factors play a significant role in chemoresistance, taxanes, anthracyclines, and platinum compounds. The review also discusses various strategies for translation that aim to circumvent or suppress autophagy-mediated chemoresistance, including autophagy inhibitors, natural compounds, and nanoparticle-based formulations, with a focus on their synergistic potential with ICIs and chemotherapeutic agents. Targeting autophagy has shown considerable potential for effectively addressing chemoresistance in TNBC. Future studies should focus on addressing chemoresistance and immunoresistance through autophagy-based therapies.
Insights
Triple-negative breast cancer (TNBC) cells utilize autophagy to resist chemotherapy and evade immune responses. Targeting autophagy offers a promising strategy to overcome chemoresistance and enhance immunotherapy for TNBC treatment.
Area of Science:
- Oncology
- Cell Biology
- Cancer Research
Background:
- Triple-negative breast cancer (TNBC) presents significant treatment challenges due to its heterogeneity and poor outcomes.
- Autophagy, a cellular recycling process, plays a dual role, shifting from tumor-suppressive to tumor-promoting in TNBC.
- Autophagy contributes to chemoresistance and immune evasion in TNBC by aiding DNA damage repair and promoting an immunosuppressive tumor microenvironment.
Purpose of the Study:
- To review the molecular regulation of autophagy in TNBC.
- To explore autophagy's role in chemoresistance and immune escape.
- To discuss therapeutic strategies targeting autophagy for TNBC.
Main Methods:
- Literature review of autophagy regulation in TNBC.
- Analysis of autophagy's role in chemoresistance mechanisms (e.g., platinum detoxification, CSC dormancy).
- Examination of autophagy's impact on immune evasion (e.g., PD-L1 stabilization, MHC-I degradation).
Main Results:
- Key regulators of autophagy, including ULK1, VPS34, and ncRNAs, are implicated in TNBC chemoresistance to various agents.
- Autophagy facilitates immune evasion by influencing PD-L1 expression and MHC-I stability.
- Autophagy promotes TNBC dormancy in cancer stem-like cells.
Conclusions:
- Targeting autophagy is a viable strategy to overcome chemoresistance and immune escape in TNBC.
- Combination therapies involving autophagy inhibitors, natural compounds, or nanoparticles with chemotherapy and ICIs show synergistic potential.
- Further research into autophagy-based therapies is crucial for improving TNBC treatment outcomes.
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