PARylation-centric crosstalk: orchestrating immune evasion and multidrug resistance in ovarian cancer

免疫系统 生物 卵巢癌 癌症研究 PARP1 DNA损伤 免疫检查点 免疫疗法 PI3K/AKT/mTOR通路 T细胞 机制(生物学) 基因组不稳定性 免疫学 癌症 免疫编辑 计算生物学 功能(生物学) 获得性免疫系统 组蛋白 染色质 肿瘤微环境 DNA修复 信号转导 生物信息学 抗药性 调节器 癌细胞 聚ADP核糖聚合酶 免疫耐受 PARP抑制剂
作者
Lin Hou,Lin Hou,M Zhang,M Zhang
出处
期刊:Frontiers in Immunology [Frontiers Media]
卷期号:17
标识
DOI:10.3389/fimmu.2026.1772562
摘要

Post-translational modifications (PTMs) play pivotal roles in ovarian cancer pathogenesis, with poly(ADP-ribosyl)ation (PARylation) serving as a key regulator of DNA repair, immune evasion, and therapeutic resistance. Beyond PARylation, diverse PTM networks—including ubiquitination, phosphorylation, acetylation, methylation, and glycosylation—orchestrate signaling cascades that shape tumor progression and immune recognition. Aberrant glycosylation of MUC16 (CA125) and immune checkpoints such as PD-L1 exemplifies how PTMs modulate the tumor immune microenvironment. This review synthesizes current evidence on the interplay between PARylation and other PTM networks in ovarian cancer, with emphasis on their roles in DNA repair, immune modulation, and drug resistance. We discuss PARP1/2-mediated regulation of cGAS/STING signaling and immune cell activity, alongside resistance mechanisms involving EHMT1/2-associated histone methylation, SPINDOC-enhanced PARylation, and ubiquitin-dependent PARP1 stabilization. Therapeutically, we evaluate combinatorial approaches pairing PARP inhibitors with ATR/CHK1 inhibition, immune checkpoint blockade, or metabolic targeting. Emerging strategies combining PARP inhibitors with PRMT, UBA1, WEE1, or MEK inhibitors are examined, alongside recent clinical trials including the GINECO study of bevacizumab, olaparib, and durvalumab. Mechanistic insights into PARP inhibitor-induced T cell DNA damage and strategies to preserve lymphocyte function are also discussed. Preclinical approaches involving nanoparticle delivery, PROTACs, and ferroptosis induction are reviewed for their potential to disrupt PARylation networks. Despite these advances, clinical translation faces substantial challenges, including patient heterogeneity, overlapping toxicities, adaptive resistance through PTM network rewiring, and the need for predictive biomarkers beyond BRCA mutation status. Current obstacles in resolving spatiotemporal PTM dynamics and cancer stem cell-specific vulnerabilities are outlined. This work aims to inform future research on targeting PARylation-associated PTM pathways to overcome ovarian cancer’s evolvable resistance.
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