Deciphering the interplay between SETD2 mediated H3K36me3 and RNA N6-methyladenosine in clear cell renal cell carcinoma (ccRCC).

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Epigenetics Pub Date : 2025-12-01 Epub Date: 2025-01-28 DOI:10.1080/15592294.2025.2456418
Shafiq Shaikh, Xia Zhao, Ryan T Wagner, Xiaoyu Pan, Ryan A Hlady, Liguo Wang, Thai H Ho, Keith D Robertson
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引用次数: 0

Abstract

RNA N6-methyladenosine (m6A) plays diverse roles in RNA metabolism and its deregulation contributes to tumor initiation and progression. Clear cell renal cell carcinoma (ccRCC) is characterized by near ubiquitous loss of VHL followed by mutations in epigenetic regulators PBRM1, SETD2, and BAP1. Mutations in SETD2, a histone H3 lysine 36 trimethylase (H3K36me3), are associated with reduced survival, greater metastatic propensity, and metabolic reprogramming. While m6A and H3K36me3 deregulation are separately implicated in renal tumorigenesis, H3K36me3 may participate directly in m6A targeting, but the m6A-H3K36me3 interplay has not been investigated in the context of ccRCC. Using RCC-relevant SETD2 isogenic knockout and rescue cell line models, we demonstrate a dynamic redistribution of m6A in the SETD2 depleted transcriptome, with a subset of transcripts involved in metabolic reprogramming demonstrating SETD2 dependent m6A and expression level changes. Using a panel of six histone modifications we show that m6A redistributes to regions enriched in gained active enhancers upon SETD2 inactivation. Finally, we demonstrate a reversal of transcriptomic programs involved in SETD2 loss mediated metabolic reprogramming, and reduced cell viability through pharmacologic inhibition or genetic ablation of m6A writer METTL3 specific to SETD2 deficient cells. Thus, targeting m6A may represent a novel therapeutic vulnerability in SETD2 mutant ccRCC.

透明细胞肾细胞癌(ccRCC)中SETD2介导的H3K36me3与RNA n6 -甲基腺苷之间的相互作用。
RNA n6 -甲基腺苷(m6A)在RNA代谢中发挥多种作用,其失调有助于肿瘤的发生和发展。透明细胞肾细胞癌(ccRCC)的特征是VHL几乎普遍缺失,随后是表观遗传调控因子PBRM1、SETD2和BAP1的突变。SETD2是一种组蛋白H3赖氨酸36三甲基化酶(H3K36me3),其突变与生存率降低、更大的转移倾向和代谢重编程有关。虽然m6A和H3K36me3的失调分别与肾肿瘤发生有关,但H3K36me3可能直接参与m6A靶向,但m6A-H3K36me3的相互作用尚未在ccRCC的背景下进行研究。利用rcc相关的SETD2等基因敲除和拯救细胞系模型,我们证明了SETD2缺失转录组中m6A的动态再分布,其中一部分参与代谢重编程的转录本显示了SETD2依赖m6A和表达水平的变化。通过六组蛋白修饰,我们发现在SETD2失活时,m6A重新分布到富含获得的活性增强子的区域。最后,我们证明了SETD2缺失介导的代谢重编程中涉及的转录组程序的逆转,并通过药物抑制或基因消融对SETD2缺陷细胞特异性的m6A写入者METTL3降低细胞活力。因此,靶向m6A可能代表了SETD2突变体ccRCC的一种新的治疗脆弱性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Epigenetics
Epigenetics 生物-生化与分子生物学
CiteScore
6.80
自引率
2.70%
发文量
82
审稿时长
3-8 weeks
期刊介绍: Epigenetics publishes peer-reviewed original research and review articles that provide an unprecedented forum where epigenetic mechanisms and their role in diverse biological processes can be revealed, shared, and discussed. Epigenetics research studies heritable changes in gene expression caused by mechanisms others than the modification of the DNA sequence. Epigenetics therefore plays critical roles in a variety of biological systems, diseases, and disciplines. Topics of interest include (but are not limited to): DNA methylation Nucleosome positioning and modification Gene silencing Imprinting Nuclear reprogramming Chromatin remodeling Non-coding RNA Non-histone chromosomal elements Dosage compensation Nuclear organization Epigenetic therapy and diagnostics Nutrition and environmental epigenetics Cancer epigenetics Neuroepigenetics
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