Targeting TNFR1-driven necroptosis in breast cancer
Misbahuddin Rafeeq1, Muhammad Afzal2, Muhammad Shahid Nadeem3
1Division of Basic Medical Sciences, College of Medicine, Dhofar University, Oman.
Abstract:
Tumor Necrosis Factor Receptor 1 (TNFR1) plays a crucial role in determining whether a breast cancer cell will survive, undergo natural cell death, or die through necroptosis. It influences these outcomes via pathways such as NF-kB, caspase-8, and the RIPK1-RIPK3-MLKL axis. TNFR1 activation causes epigenetic changes in DNA methylation, histone modification, and chromatin remodeling, which reprogram cellular responses to death signals. The direct and indirect epigenetic events leading to TNFR1-mediated cell death include DNMT enrolment, H3K4me3/H3K27ac changes, and microRNA-mediated controls. TNFR1 signaling regulates DNA methyltransferase activity and histone acetyltransferases while controlling epigenesis through metabolic reprogramming and non-coding RNA networks. The necroptotic execution pathway, triggered by pro-survival complex degradation and caspase-8 inhibition, forms the RIPK1-RIPK3 necrosome, phosphorylates MLKL, and releases damage-associated molecular patterns. TNF dual role of TNF signaling in tumor growth, necroptosis, and inflammatory remodeling presents therapeutic challenges. Biomarkers include TNFR1 expression, RIPK1/RIPK3 phosphorylation, MLKL localization, and epigenetic markers. Therapeutic combinations of epigenetic modulators, SMAC mimetics, RIPK1, and immune checkpoint inhibitors show promise in overcoming treatment resistance. Challenges in patient stratification, drug sequencing, and management of inflammatory toxicity require urgent solutions. This review provides a basis for clinical trials targeting the TNFR1-necroptosis pathway with biomarker-guided therapies and epigenetic strategies for breast cancer therapy. See also the graphical abstract(Fig. 1).
Insights
Tumor Necrosis Factor Receptor 1 (TNFR1) dictates breast cancer cell fate via necroptosis and other pathways. TNFR1 activation triggers epigenetic reprogramming, offering new therapeutic targets for cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Tumor Necrosis Factor Receptor 1 (TNFR1) is pivotal in breast cancer cell survival, apoptosis, and necroptosis.
- TNFR1 signaling involves key pathways like NF-kB, caspase-8, and the RIPK1-RIPK3-MLKL axis.
Purpose of the Study:
- To review the role of TNFR1 in breast cancer cell death pathways, focusing on epigenetic modifications.
- To explore potential therapeutic strategies targeting the TNFR1-necroptosis axis.
Main Methods:
- Review of literature on TNFR1 signaling, necroptosis, and epigenetic regulation in breast cancer.
- Analysis of molecular mechanisms including DNA methylation, histone modification, and microRNA control.
Main Results:
- TNFR1 activation induces epigenetic changes (DNA methylation, histone modification) that reprogram cellular responses.
- The necroptotic pathway involves RIPK1-RIPK3 necrosome formation and MLKL phosphorylation.
- Biomarkers like TNFR1 expression and epigenetic markers are identified for potential therapeutic guidance.
Conclusions:
- TNFR1 signaling and necroptosis present complex therapeutic challenges due to TNF's dual role.
- Targeting the TNFR1-necroptosis pathway with epigenetic strategies and biomarker-guided therapies shows promise for breast cancer treatment.
- Further research is needed to address patient stratification and optimize therapeutic sequencing.
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