Department of Molecular Bioscience, College of Biomedical Science, Kangwon National University, Chuncheon, Korea.
Critical Zone Frontier Research Laboratory, Kangwon National University, Chuncheon, Korea.
FEBS J. 2020 Jul;287(14):2891-2902. doi: 10.1111/febs.15219. Epub 2020 Feb 4.
Histone modifications affect transcription by changing the chromatin structure. In particular, histone H3 lysine 4 trimethylation (H3K4me3) is one of the most recognized epigenetic marks of active transcription. While many studies have provided evidence of the correlation between H3K4me3 and active transcription, details regarding the mechanism involved remain unclear. The first study on the broad H3K4me3 domain was reported in 2014; subsequently, the function of this domain has been studied in various cell types. In this review, we summarized the recent studies on the role of the broad H3K4me3 domain in transcription, development, memory formation, and several diseases, including cancer and autoimmune diseases. The broadest H3K4me3 domains are associated with increased transcriptional precision of cell-type-specific genes related to cell identity and other essential functions. The broad H3K4me3 domain regulates maternal zygotic activation in early mammalian development. In systemic autoimmune diseases, high expression of immune-responsive genes requires the presence of the broad H3K4me3 domain in the promoter-proximal regions. Transcriptional repression of tumor-suppressor genes is associated with the shortening of the broad H3K4me3 domains in cancer cells. Additionally, the broad H3K4me3 domain interacts with the super-enhancer to regulate cancer-associated genes. During memory formation, H3K4me3 breadth is regulated in the hippocampus CA1 neurons. Taken together, these findings indicate that H3K4me3 breadth is essential for the regulation of the transcriptional output across multiple cell types.
组蛋白修饰通过改变染色质结构来影响转录。特别是,组蛋白 H3 赖氨酸 4 三甲基化(H3K4me3)是活跃转录的最公认的表观遗传标记之一。虽然许多研究已经提供了 H3K4me3 与活跃转录之间相关性的证据,但涉及的机制的细节仍不清楚。第一个关于广泛的 H3K4me3 结构域的研究报告于 2014 年发表;此后,该结构域的功能已在各种细胞类型中进行了研究。在这篇综述中,我们总结了关于广泛的 H3K4me3 结构域在转录、发育、记忆形成以及包括癌症和自身免疫性疾病在内的几种疾病中的作用的最新研究。最广泛的 H3K4me3 结构域与与细胞身份和其他基本功能相关的细胞类型特异性基因的转录精度增加有关。广泛的 H3K4me3 结构域调节早期哺乳动物发育中的母体合子激活。在系统性自身免疫性疾病中,免疫反应基因的高表达需要在启动子近端区域存在广泛的 H3K4me3 结构域。肿瘤抑制基因的转录抑制与癌症细胞中广泛的 H3K4me3 结构域缩短有关。此外,广泛的 H3K4me3 结构域与超级增强子相互作用,以调节与癌症相关的基因。在记忆形成过程中,H3K4me3 宽度在海马 CA1 神经元中受到调节。总之,这些发现表明 H3K4me3 宽度对于调节多种细胞类型的转录输出至关重要。