Diverse and dynamic forms of gene regulation by the S. cerevisiae histone methyltransferase Set1.

IF 1.8 4区 生物学 Q3 GENETICS & HEREDITY
Current Genetics Pub Date : 2023-06-01 Epub Date: 2023-03-31 DOI:10.1007/s00294-023-01265-3
Neha Deshpande, Mary Bryk
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引用次数: 0

Abstract

Gene transcription is an essential and highly regulated process. In eukaryotic cells, the structural organization of nucleosomes with DNA wrapped around histone proteins impedes transcription. Chromatin remodelers, transcription factors, co-activators, and histone-modifying enzymes work together to make DNA accessible to RNA polymerase. Histone lysine methylation can positively or negatively regulate gene transcription. Methylation of histone 3 lysine 4 by SET-domain-containing proteins is evolutionarily conserved from yeast to humans. In higher eukaryotes, mutations in SET-domain proteins are associated with defects in the development and segmentation of embryos, skeletal and muscle development, and diseases, including several leukemias. Since histone methyltransferases are evolutionarily conserved, the mechanisms of gene regulation mediated by these enzymes are also conserved. Budding yeast Saccharomyces cerevisiae is an excellent model system to study the impact of histone 3 lysine 4 (H3K4) methylation on eukaryotic gene regulation. Unlike larger eukaryotes, yeast cells have only one enzyme that catalyzes H3K4 methylation, Set1. In this review, we summarize current knowledge about the impact of Set1-catalyzed H3K4 methylation on gene transcription in S. cerevisiae. We describe the COMPASS complex, factors that influence H3K4 methylation, and the roles of Set1 in gene silencing at telomeres and heterochromatin, as well as repression and activation at euchromatic loci. We also discuss proteins that "read" H3K4 methyl marks to regulate transcription and summarize alternate functions for Set1 beyond H3K4 methylation.

麦角菌组蛋白甲基转移酶 Set1 对基因调控的多样动态形式
基因转录是一个重要的、受到高度调控的过程。在真核细胞中,DNA 被组蛋白包裹的核小体结构组织阻碍了转录。染色质重塑因子、转录因子、共激活因子和组蛋白修饰酶共同作用,使 DNA 能够被 RNA 聚合酶所利用。组蛋白赖氨酸甲基化可对基因转录产生积极或消极的调节作用。从酵母到人类,含 SET 域的蛋白质对组蛋白 3 赖氨酸 4 的甲基化在进化过程中是保守的。在高等真核生物中,SET-结构域蛋白的突变与胚胎发育和分割、骨骼和肌肉发育缺陷以及包括多种白血病在内的疾病有关。由于组蛋白甲基转移酶在进化过程中是保守的,因此这些酶介导的基因调控机制也是保守的。酿酒酵母是研究组蛋白 3 赖氨酸 4(H3K4)甲基化对真核基因调控影响的绝佳模式系统。与大型真核生物不同,酵母细胞只有一种催化 H3K4 甲基化的酶,即 Set1。在这篇综述中,我们总结了目前有关 Set1 催化的 H3K4 甲基化对 S. cerevisiae 基因转录的影响的知识。我们描述了 COMPASS 复合物、影响 H3K4 甲基化的因素、Set1 在端粒和异染色质的基因沉默以及在外显子基因座的抑制和激活中的作用。我们还讨论了 "读取 "H3K4甲基标记以调控转录的蛋白质,并总结了Set1在H3K4甲基化之外的其他功能。
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来源期刊
Current Genetics
Current Genetics 生物-遗传学
CiteScore
6.00
自引率
0.00%
发文量
34
审稿时长
1 months
期刊介绍: Current Genetics publishes genetic, genomic, molecular and systems-level analysis of eukaryotic and prokaryotic microorganisms and cell organelles. All articles are peer-reviewed. The journal welcomes submissions employing any type of research approach, be it analytical (aiming at a better understanding), applied (aiming at practical applications), synthetic or theoretical. Current Genetics no longer accepts manuscripts describing the genome sequence of mitochondria/chloroplast of a small number of species. Manuscripts covering sequence comparisons and analyses that include a large number of species will still be considered.
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