High PRMT5 levels, maintained by KEAP1 inhibition, drive chemoresistance in high-grade serous ovarian cancer.

IF 13.6 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Journal of Clinical Investigation Pub Date : 2025-03-17 DOI:10.1172/JCI184283
Harun Ozturk, Fidan Seker-Polat, Neda Abbaszadeh, Yasemin Kingham, Sandra Orsulic, Mazhar Adli
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Abstract

Protein arginine methyl transferases (PRMTs) are generally upregulated in cancers. However, the mechanisms leading to this upregulation and its biological consequences are poorly understood. Here, we identify PRMT5, the main symmetric arginine methyltransferase, as a critical driver of chemoresistance in high-grade serous ovarian cancer (HGSOC). PRMT5 levels and its enzymatic activity are induced in a platinum-resistant (Pt-resistant) state at the protein level. To reveal potential regulators of high PRMT5 protein levels, we optimized intracellular immunostaining conditions and performed unbiased CRISPR screening. We identified Kelch-like ECH-associated protein 1 (KEAP1) as a top-scoring negative regulator of PRMT5. Our mechanistic studies show that KEAP1 directly interacted with PRMT5, leading to its ubiquitin-dependent degradation under normal physiological conditions. At the genomic level, ChIP studies showed that elevated PRMT5 directly interacted with the promoters of stress response genes and positively regulated their transcription. Combined PRMT5 inhibition with Pt resulted in synergistic cellular cytotoxicity in vitro and reduced tumor growth in vivo in Pt-resistant patient-derived xenograft tumors. Overall, the findings from this study identify PRMT5 as a critical therapeutic target in Pt-resistant HGSOC cells and reveal the molecular mechanisms that lead to high PRMT5 levels in Pt-treated and chemo-resistant tumors.

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高PRMT5水平,通过KEAP1抑制维持,驱动高级别浆液性卵巢癌的化疗耐药。
蛋白精氨酸甲基转移酶(PRMTs)在癌症中普遍上调。然而,导致这种上调的机制及其生物学后果尚不清楚。在这里,我们发现PRMT5,主要的对称精氨酸甲基转移酶,是高级别浆液性卵巢癌(HGSOC)化疗耐药的关键驱动因素。PRMT5水平及其酶活性在蛋白水平上被诱导为铂抗性(pt抗性)状态。为了揭示高PRMT5蛋白水平的潜在调节因子,我们优化了细胞内免疫染色条件并进行了无偏倚的CRISPR筛选。我们发现kelch样ech相关蛋白1 (KEAP1)是PRMT5得分最高的负调控因子。我们的机制研究表明,KEAP1直接与PRMT5相互作用,导致其在正常生理条件下泛素依赖性降解。在基因组水平上,ChIP研究表明,升高的PRMT5直接与应激反应基因启动子相互作用,并积极调节其转录。PRMT5与Pt的联合抑制在体外产生协同细胞毒性,并在体内降低Pt耐药患者来源的异种移植肿瘤的肿瘤生长。总的来说,本研究的结果确定了PRMT5是pt耐药HGSOC细胞的关键治疗靶点,并揭示了在pt治疗和化疗耐药肿瘤中导致高PRMT5水平的分子机制。
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来源期刊
Journal of Clinical Investigation
Journal of Clinical Investigation 医学-医学:研究与实验
CiteScore
24.50
自引率
1.30%
发文量
1034
审稿时长
2 months
期刊介绍: The Journal of Clinical Investigation, established in 1924 by the ASCI, is a prestigious publication that focuses on breakthroughs in basic and clinical biomedical science, with the goal of advancing the field of medicine. With an impressive Impact Factor of 15.9 in 2022, it is recognized as one of the leading journals in the "Medicine, Research & Experimental" category of the Web of Science. The journal attracts a diverse readership from various medical disciplines and sectors. It publishes a wide range of research articles encompassing all biomedical specialties, including Autoimmunity, Gastroenterology, Immunology, Metabolism, Nephrology, Neuroscience, Oncology, Pulmonology, Vascular Biology, and many others. The Editorial Board consists of esteemed academic editors who possess extensive expertise in their respective fields. They are actively involved in research, ensuring the journal's high standards of publication and scientific rigor.
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