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NSD2的C末端PHDVC5HCH串联结构域是未修饰的H3K4和三甲基化H3K27的组合读取器,可调节多发性骨髓瘤中细胞粘附基因的转录。

The C-terminal PHDVC5HCH tandem domain of NSD2 is a combinatorial reader of unmodified H3K4 and tri-methylated H3K27 that regulates transcription of cell adhesion genes in multiple myeloma.

作者信息

Berardi Andrea, Kaestner Charlotte Leonie, Ghitti Michela, Quilici Giacomo, Cocomazzi Paolo, Li Jianping, Ballabio Federico, Zucchelli Chiara, Knapp Stefan, Licht Jonathan D, Musco Giovanna

机构信息

Biomolecular NMR Laboratory, Division of Genetics and Cell Biology c/o IRCCS Ospedale San Raffaele Via Olgettina 58, 20132 Milan, Italy.

Division of Hematology/Oncology, The University of Florida Health Cancer, 2033 Mowry Road, Gainesville, FL 32610, USA.

出版信息

Nucleic Acids Res. 2025 Jan 7;53(1). doi: 10.1093/nar/gkae1121.

Abstract

Histone methyltransferase NSD2 (MMSET) overexpression in multiple myeloma (MM) patients plays an important role in the development of this disease subtype. Through the expansion of transcriptional activating H3K36me2 and the suppression of repressive H3K27me3 marks, NSD2 activates an aberrant set of genes that contribute to myeloma growth, adhesive and invasive activities. NSD2 transcriptional activity also depends on its non-catalytic domains, which facilitate its recruitment to chromatin through histone binding. In this study, using NMR, ITC and molecular dynamics simulations, we show that the tandem PHD domain of NSD2 (PHDVC5HCHNSD2) is a combinatorial reader of unmodified histone H3K4 and tri-methylated H3K27 (H3K27me3). This is the first PHD tandem cassette known to decode the methylation status of H3K27. Importantly, in a NSD2-dependent MM cellular model, we show that expression of NSD2 mutants, engineered to disrupt the interaction between H3K27me3 and PHDVC5HCH, display in comparison to wild-type NSD2: incomplete loss of H3K27 methylation throughout the genome, decreased activation of adhesive properties and cell adhesion genes, and a decrease of the corresponding H3K27ac signal at promoters. Collectively, these data suggest that the PHDVC5HCH domain of NSD2 plays an important role in modulating gene expression and chromatin modification, providing new opportunities for pharmacological intervention.

摘要

组蛋白甲基转移酶NSD2(MMSET)在多发性骨髓瘤(MM)患者中过表达,在该疾病亚型的发展中起重要作用。通过扩展转录激活的H3K36me2以及抑制抑制性的H3K27me3标记,NSD2激活了一组异常基因,这些基因有助于骨髓瘤的生长、黏附及侵袭活性。NSD2的转录活性还取决于其非催化结构域,该结构域通过与组蛋白结合促进其募集到染色质上。在本研究中,我们使用核磁共振、等温滴定量热法和分子动力学模拟表明,NSD2的串联植物同源结构域(PHDVC5HCHNSD2)是未修饰的组蛋白H3K4和三甲基化的H3K27(H3K27me3)的组合识别结构域。这是已知的首个解码H3K27甲基化状态的PHD串联盒。重要的是,在一个依赖NSD2的MM细胞模型中,我们发现,经过工程改造以破坏H3K27me3与PHDVC5HCH之间相互作用的NSD2突变体的表达,与野生型NSD2相比表现为:全基因组H3K27甲基化的不完全丧失、黏附特性和细胞黏附基因的激活降低,以及启动子处相应的H3K27ac信号减少。总的来说,这些数据表明NSD2的PHDVC5HCH结构域在调节基因表达和染色质修饰中起重要作用,为药物干预提供了新的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/71b6/11724302/6890651d4247/gkae1121figgra1.jpg

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