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Nucleic acids research. 2025 Jun 6;53(11):gkaf512. doi: 10.1093/nar/gkaf512 Q116.72024

R-2-hydroxyglutarate-mediated inhibition of KDM4A compromises telomere integrity

R-2-羟基谷氨酸通过抑制KDM4A损害端粒的完整性 翻译改进

Florence Couteau  1, Laurence M Gagné  1  2, Karine Boulay  1, Philippe Rousseau  3, Mélissa Carbonneau  1  2, Mary McQuaid  1, Jyoti Sharma  1, Christina Sawchyn  1  2, Erlinda Fernandez  1  4, Dagmar Glatz  1, Rana Rizk  1  2, Marie-Eve Lalonde  1  2, Yosra Mehrjoo  1  4, Tsz Wai Chu  3, Gaël Moquin-Beaudry  5  6, Christian Beauséjour  5  6, Mikhail Sergeev  1, Santiago Costantino  1, Daina Avizonis  7, Ivan Topisirovic  8  9, Nada Jabado  10, Hugo Wurtele  1  11, Chantal Autexier  3  12, Frédérick A Mallette  1  2  11

作者单位 +展开

作者单位

  • 1 Maisonneuve-Rosemont Hospital Research Centre, Montréal, Qc, H1T 2M4, Canada.
  • 2 Département de Biochimie et Médecine Moléculaire, Université de Montréal, C.P. 6128, Succ. Centre-Ville, Montréal, Qc, H3C 3J7, Canada.
  • 3 Bloomfield Centre for Research in Aging, Lady Davis Institute for Medical Research, Montréal, Qc, H3T 1E2, Canada.
  • 4 Programmes de Biologie Moléculaire, Université de Montréal, C.P. 6128, Succ. Centre-Ville, Montréal, Qc, H3C 3J7, Canada.
  • 5 Centre de recherche du CHU Sainte-Justine, Montréal, Qc, H3T 1C5, Canada.
  • 6 Département de pharmacologie et physiologie, Université de Montréal, Montréal, Qc, H3C 3J7, Canada.
  • 7 Goodman Cancer Research Centre, Montréal, Qc, H3A 1A3, Canada.
  • 8 Lady Davis Institute, SMBD JGH, Gerald Bronfman Department of Oncology, McGill University, Montreal, Qc, H3T 1E2, Canada.
  • 9 Department of Biochemistry, McGill University, Montréal, Qc, H3A 1A3, Canada.
  • 10 Department of Pediatrics, McGill University and The Research Institute of the McGill University Health Centre, Montreal, Qc, H4A 3J1, Canada.
  • 11 Département de Médecine, Université de Montréal, C.P. 6128, Succ. Centre-Ville, Montréal, Qc, H3C 3J7, Canada.
  • 12 Departments of Medicine, and Anatomy and Cell Biology, McGill University, Montréal, Qc, H3A 0C7, Canada.
  • DOI: 10.1093/nar/gkaf512 PMID: 40498073

    摘要 中英对照阅读

    Mutation, deletion, or silencing of genes encoding cellular metabolism factors occurs frequently in human malignancies. Neomorphic mutations in isocitrate dehydrogenases 1 and 2 (IDH1/2) promoting the production of R-2-hydroxyglutarate (R-2HG) instead of α-ketoglutarate (αKG) are recurrent in human brain cancers and constitute an early event in low-grade gliomagenesis. Due to its structural similarity with αKG, R-2HG acts as an inhibitor of αKG-dependent enzymes. These include the JUMONJI family of lysine demethylases, among which KDM4A is particularly sensitive to R-2HG-mediated inhibition. However, the precise molecular mechanism through which inhibition of αKG-dependent enzymes by R-2HG promotes gliomagenesis remains poorly understood. Here, we show that treatment with R-2HG induces cellular senescence in a p53-dependent manner. Furthermore, expression of mutated IDH1R132H or exposure to R-2HG, which leads to KDM4A inhibition, causes telomeric dysfunction. We demonstrate that KDM4A localizes to telomeric repeats and regulates abundance of H3K9(me3) at telomeres. We show that R-2HG caused reduced replication fork progression, and that depletion of SMARCAL1, a helicase involved in replication fork reversal, rescues telomeric defects caused by R-2HG or KDM4A depletion. These results establish a model whereby IDH1/2 mutations cause R-2HG-mediated inhibition of KDM4A, leading to telomeric DNA replication defects, telomere dysfunction, and associated genomic instability.

    Keywords:r-2-hydroxyglutarate; kdm4a; telomere integrity

    在人类恶性肿瘤中,编码细胞代谢因子的基因发生突变、缺失或沉默的情况十分常见。异柠檬酸脱氢酶1和2(IDH1/2)中的新表型突变促进产生R-2-羟基戊二酸(R-2HG),而不是α-酮戊二酸(αKG),在人类脑癌中反复出现,并且是低级别胶质瘤发生早期的重要事件。由于其结构与αKG相似,R-2HG会作为抑制剂作用于αKG依赖的酶。这些酶包括赖氨酸去甲基化酶JUMONJI家族中的成员,在其中KDM4A特别容易受到由R-2HG介导的抑制影响。然而,通过R-2HG对αKG依赖性酶的抑制来促进胶质瘤发生的精确分子机制仍然不清楚。在这里,我们展示出用R-2HG处理会导致以p53依赖的方式诱导细胞衰老。此外,表达突变型IDH1R132H或暴露于R-2HG(导致KDM4A被抑制)会引发端粒功能障碍。我们证明了KDM4A定位在端粒重复序列上并调节端粒处的H3K9(me3)丰度。我们展示出R-2HG引起了复制叉进程减缓,而耗尽SMARCAL1(一种参与复制叉逆转的解旋酶)能够修复由R-2HG或KDM4A耗尽导致的端粒缺陷。这些结果建立了一个模型:IDH1/2突变通过导致R-2HG介导的抑制KDM4A,进而引发端粒DNA复制缺陷、端粒功能障碍及相关的基因组不稳定。

    © The Author(s) 2025. Published by Oxford University Press on behalf of Nucleic Acids Research.

    关键词:R-2-羟基谷氨酸; kdm4a; 端粒完整性

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    期刊名:Nucleic acids research

    缩写:NUCLEIC ACIDS RES

    ISSN:0305-1048

    e-ISSN:1362-4962

    IF/分区:16.7/Q1

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