PO.MCB06.01 · 分子与细胞生物学
FOXK2⁺ 恶性上皮细胞通过 KANSL1-MOF 介导的氧化还原维持机制促进卵巢癌铂类耐药
FOXK2⁺ malignant epithelial cells promote platinum resistance via KANSL1-MOF-mediated redox sustaining mechanism in ovarian cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
铂类耐药仍是卵巢癌治疗中的一大障碍,然而使恶性细胞维持氧化还原平衡并在氧化应激下存活的分子程序仍未完全阐明。通过整合分析 bulk RNA-seq、空间转录组学和单细胞数据集,我们鉴定出一个独特的 FOXK2 阳性上皮癌细胞群,该群体在多个患者队列中可重复检测到。这种 FOXK2 高表达的恶性细胞状态在化疗后扩增,优先在复发性和铂类耐药肿瘤中积累,并且一致地与较差的患者生存相关,提示其在治疗失败中的潜在作用。功能研究表明,FOXK2 是维持卵巢癌细胞氧化还原韧性所必需的。FOXK2 缺失增加细胞内 ROS,破坏线粒体呼吸,并显著使体外培养物和体内异种移植物对铂类治疗敏感。这些脆弱性可通过补充抗氧化剂逆转,支持 FOXK2 缺失、ROS 积累与化疗敏感性增强之间的因果联系。为揭示 FOXK2 介导氧化还原控制的分子机制,我们进行了免疫沉淀-质谱分析,并鉴定出 FOXK2 与 KANSL1-MOF 染色质重塑复合物之间此前未被认识的物理相互作用——这种关联此前从未与卵巢癌中的氧化还原生物学、应激适应或化疗耐药相关联。FOXK2 利用这种新界定的相互作用,将 KANSL1-MOF 招募到抗氧化基因的启动子和增强子处,包括 SLC7A11、GCLC 和 GPX2。这种招募维持 H4K16 乙酰化,保持染色质可及性,并维持关键抗氧化程序的转录激活。KANSL1 缺失表型上模拟 FOXK2 缺失,导致 ROS 积累和铂类敏感性增强,从而将 KANSL1 确立为一个关键的 FOXK2 依赖性辅因子。引人注目的是,该调控系统对氧化应激有反应。暴露于 ROS 会增加 FOXK2 和 KANSL1 蛋白水平,并增强 FOXK2-KANSL1 结合,形成一个自我强化的、氧化还原敏感的正反馈环,在治疗应激下维持抗氧化能力。总之,我们的发现揭示了一种经治疗选择的 FOXK2 阳性恶性细胞状态,并揭示了一条新的表观遗传 FOXK2-KANSL1-MOF 轴,它将染色质重塑与卵巢癌中的氧化还原稳态和铂类耐药耦合起来。靶向 FOXK2 高表达细胞状态或破坏其染色质相关辅因子网络,可能提供一种克服化疗耐药的治疗策略。
查看英文原文 English abstract
Platinum resistance remains a major obstacle in ovarian cancer therapy, yet the molecular programs that enable malignant cells to maintain redox balance and survive oxidative stress remain incompletely defined. Through integrated analyses of bulk RNA-seq, spatial transcriptomics, and single-cell datasets, we identify a distinct FOXK2-positive epithelial cancer population that is reproducibly detected across multiple patient cohorts. This FOXK2-high malignant cell state expands after chemotherapy, preferentially accumulates in recurrent and platinum-resistant tumors, and is consistently associated with inferior patient survival, indicating a potential role in therapy failure. Functional studies demonstrate that FOXK2 is required to maintain redox resilience in ovarian cancer cells. FOXK2 depletion increases intracellular ROS, disrupts mitochondrial respiration, and markedly sensitizes both in vitro cultures and in vivo xenografts to platinum treatment. These vulnerabilities are reversed by antioxidant supplementation, supporting a causal link between FOXK2 loss, ROS accumulation, and enhanced chemosensitivity. To uncover the molecular mechanism underlying FOXK2-mediated redox control, we performed immunoprecipitation-mass spectrometry and identified a previously unrecognized physical interaction between FOXK2 and the KANSL1-MOF chromatin-remodelling complex-an association not previously linked to redox biology, stress adaptation, or chemoresistance in ovarian cancer. FOXK2 leverages this newly defined interaction to recruit KANSL1-MOF to antioxidant gene promoters and enhancers, including SLC7A11, GCLC, and GPX2. This recruitment maintains H4K16 acetylation, preserves chromatin accessibility, and sustains transcriptional activation of key antioxidant programs. Loss of KANSL1 phenocopies FOXK2 depletion, leading to ROS accumulation and heightened platinum sensitivity, establishing KANSL1 as a critical FOXK2-dependent cofactor. Strikingly, this regulatory system is responsive to oxidative stress. Exposure to ROS increases FOXK2 and KANSL1 protein levels and enhances FOXK2-KANSL1 binding, creating a self-reinforcing, redox-sensitive positive feedback loop that sustains antioxidant capacity under therapeutic stress. Together, our findings reveal a therapy-selected FOXK2-positive malignant cell state and uncover a novel epigenetic FOXK2-KANSL1-MOF axis that couples chromatin remodeling to redox homeostasis and platinum resistance in ovarian cancer. Targeting FOXK2-high cellular states or disrupting their chromatin-associated cofactor network may offer a therapeutic strategy to overcome chemoresistance.
利益披露 Disclosure
J. li, None..
H. Huang, None..
Y. Wang, None..
D. Zha, None..
S. Glynn, None..
U. Kim, None..
J. Heo, None.