The sotos syndrome gene Nsd1 safeguards developmental gene enhancers poised for transcription by maintaining the precise deposition of histone methylation.

IF 4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Biological Chemistry Pub Date : 2025-05-01 Epub Date: 2025-03-19 DOI:10.1016/j.jbc.2025.108423
Jie Li, Zhucui Li, Jiekai Yin, Yinsheng Wang, Deyou Zheng, Ling Cai, Gang Greg Wang
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Abstract

Germline haploinsufficiency of NSD1 is implicated as the etiology of Sotos syndrome; however, the underlying mechanism remains far from being clear. Here, we use mouse embryonic stem cell (mESC) differentiation as a model system to address this question. We found Nsd1 to be indispensable for the faithful differentiation of mESCs into three primary germ layers, particularly, meso-endodermal cell lineages related to the development of the heart and the skeletal system. Time-course transcriptomic profiling following the mESC differentiation revealed that Nsd1 not only facilitates the basal expression but also permits the differentiation-accompanied rapid induction of a suite of meso-endoderm lineage-specifying transcription factor genes such as T and Gata4. Mechanistically, Nsd1 directly occupies putative distal enhancers of the lineage transcription factor genes under the pluripotent cell state, where it deposits H3K36me2 to antagonize the excessive H3K27me3 and maintains the basal H3K27ac level, thereby safeguarding these gene enhancers at a primed state that responds readily to differentiation cues. In agreement, gene rescue assays using the Nsd1 KO mESCs showed that the H3K36me2 catalysis by Nsd1 requires several functional modules within Nsd1 (namely, PHD1-4, PWWP2, and SET) to a similar degree. Disruption of either one of these Nsd1 modules severely abrogated H3K36me2 in mESCs and significantly impaired appropriate induction of developmental genes upon mESC differentiation. Altogether, our study provides novel molecular insight into how the NSD1 perturbation derails normal development and causes the disease.

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索托斯综合征基因 Nsd1 通过保持组蛋白甲基化的精确沉积,保护了准备转录的发育基因增强子。
NSD1的生殖系单倍性不足与Sotos综合征的病因有关;然而,潜在的机制仍远不清楚。在这里,我们使用小鼠胚胎干细胞(mESC)分化作为模型系统来解决这个问题。我们发现Nsd1对于mESCs忠实地分化为三个主要胚层,特别是与心脏和骨骼系统发育相关的各种中胚层细胞系是不可或缺的。mESC分化后的时间过程转录组学分析显示,Nsd1不仅促进了基础表达,而且还允许在分化过程中快速诱导一系列中内胚层谱系特异性转录因子(TF)基因,如T和Gata4。从机制上说,在多能细胞状态下,Nsd1直接占据谱系TF基因的远端增强子,在那里它沉积H3K36me2来对抗过量的H3K27me3并维持H3K27ac的基础水平,从而保护这些基因增强子处于启动状态,对分化信号做出反应。与此一致的是,使用Nsd1敲除的mESCs进行的基因拯救试验表明,Nsd1对H3K36me2的催化作用需要Nsd1内部的几个功能模块(即PHD1-4、PWWP2和SET),其程度相似。破坏这些Nsd1模块中的任何一个都会严重破坏mESC中的H3K36me2,并显著损害mESC分化时发育基因的适当诱导。总之,我们的研究为NSD1扰动如何破坏正常发育并导致疾病提供了新的分子见解。
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来源期刊
Journal of Biological Chemistry
Journal of Biological Chemistry Biochemistry, Genetics and Molecular Biology-Biochemistry
自引率
4.20%
发文量
1233
期刊介绍: The Journal of Biological Chemistry welcomes high-quality science that seeks to elucidate the molecular and cellular basis of biological processes. Papers published in JBC can therefore fall under the umbrellas of not only biological chemistry, chemical biology, or biochemistry, but also allied disciplines such as biophysics, systems biology, RNA biology, immunology, microbiology, neurobiology, epigenetics, computational biology, ’omics, and many more. The outcome of our focus on papers that contribute novel and important mechanistic insights, rather than on a particular topic area, is that JBC is truly a melting pot for scientists across disciplines. In addition, JBC welcomes papers that describe methods that will help scientists push their biochemical inquiries forward and resources that will be of use to the research community.
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