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Epigenetic regulation of PANoptosis: DNA methylation, histone modifications and non-coding RNAs
Yogendra Singh1, Muhammad Afzal2, M Arockia Babu3
1Department of Pharmacology, Maharishi Arvind College of Pharmacy, Ambabari, Jaipur, Rajasthan, India.
Abstract:
PANoptosome (Programmed Necrosis-Apoptosis Optosome) multiprotein complexes mediate the convergence of apoptosis, pyroptosis, and necroptosis. The ability of cells to undergo programmed inflammatory cell death is regulated by the epigenetic control of PANoptotic sensors, adaptors, and effectors, and has pivotal implications for their use in cancer therapies. DNA methylation suppresses the main PANoptotic pathways, such as RIPK3 (Receptor-Interacting Serine/Threonine-Protein Kinase 3), GSDME (Gasdermin E), and CASP8 (Caspase-8) that promote chemoresistance; hypomethylating DNA silencers resume PANoptotic sensitivity. BRD4 (Bromodomain-Containing Protein 4)/p300 (E1A-Associated Protein p300 - Histone Acetyltransferase) -mediated histone acetylation in enhancers (H3K27ac) stimulates ZBP1 (Z-DNA Binding Protein 1), NLRP3 (NOD-Like Receptor Family Pyrin Domain Containing 3), and caspase-8 transcription but inhibits the formation of inflammasomes by HDAC (Histone Deacetylase). PANoptotic regulatory regions become accessible in response to inflammatory signals through the dynamic regulation of accessibility through the SWI/SNF (Switch/Sucrose Non-Fermentable Chromatin Remodeling Complex) and NuRD (Nucleosome Remodeling Complex) and NuRD (Nucleosome Remodeling and Deacetylase Complex) chromatin remodelling complexes. Post-transcriptional regulation is mediated by ncRNAs (ncRNAs) such as miR-223-3p (MicroRNA-223-3p) and lncRNA NEAT1 (Long Non-Coding RNA - Nuclear Enriched Abundant Transcript 1) which converge to regulate the expression of NLRP3, RIPK3, and Gasdermin D (GSDMD). The interaction of DNA methylation, histone modification, and ncRNAs creates quantitative epigenetic thresholds that regulate PANoptotic sensitivity. The rational next step to overcome tumor immunoresistance is epigenetic biomarker stratification in combination with DNA methyltransferase inhibitors (DNMTi), histone deacetylase modulators (HDACi), and PANoptosis agonists, which could help reduce collateral tissue toxicity. See also the graphical abstract(Fig. 1).
Insights
Epigenetic regulation of programmed cell death (PANoptosis) is key for cancer therapy. DNA methylation and histone modifications control PANoptosis sensitivity, offering new targets for overcoming chemoresistance.
Area of Science:
- Cellular Biology
- Epigenetics
- Cancer Therapy
Background:
- Programmed cell death pathways, including apoptosis, pyroptosis, and necroptosis, converge in PANoptosomes.
- Epigenetic regulation of PANoptotic sensors, adaptors, and effectors is crucial for cellular responses and cancer treatment.
- Dysregulation of PANoptosis contributes to chemoresistance in tumors.
Purpose of the Study:
- To elucidate the epigenetic mechanisms controlling PANoptosis.
- To explore the role of epigenetic modifications in regulating PANoptotic sensitivity and chemoresistance.
- To identify potential epigenetic therapeutic strategies for cancer treatment.
Main Methods:
- Analysis of DNA methylation patterns affecting key PANoptotic genes (RIPK3, GSDME, CASP8).
- Investigation of histone modifications (H3K27ac) mediated by BRD4/p300 and their impact on gene transcription.
- Assessment of chromatin remodeling complexes (SWI/SNF, NuRD) in regulating PANoptotic gene accessibility.
- Examination of non-coding RNAs (ncRNAs) like miR-223-3p and lncRNA NEAT1 in post-transcriptional regulation.
Main Results:
- DNA methylation suppresses PANoptotic pathways, contributing to chemoresistance; hypomethylation restores sensitivity.
- Histone acetylation by BRD4/p300 enhances transcription of ZBP1, NLRP3, and caspase-8, while HDAC inhibits inflammasome formation.
- Chromatin remodelers SWI/SNF and NuRD dynamically regulate accessibility of PANoptotic regions.
- ncRNAs converge to regulate NLRP3, RIPK3, and GSDMD expression, influencing PANoptotic sensitivity.
- Epigenetic interactions create thresholds that dictate PANoptotic sensitivity.
Conclusions:
- Epigenetic modifications, including DNA methylation, histone acetylation, and ncRNAs, are critical regulators of PANoptosis.
- Targeting epigenetic pathways offers a promising strategy to overcome tumor chemoresistance.
- Combination therapy with DNMT inhibitors, HDAC modulators, and PANoptosis agonists may enhance cancer treatment efficacy and reduce toxicity.
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