通过含有蛋白质的SET结构域的植物表观遗传控制动力学:结构和功能的见解

IF 2.6 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochimica et Biophysica Acta-Gene Regulatory Mechanisms Pub Date : 2023-09-01 DOI:10.1016/j.bbagrm.2023.194966
Sushmita Seni , Roshan Kumar Singh , Manoj Prasad
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引用次数: 0

摘要

植物控制基因表达的方式包括操纵染色质结构动力学,以适应环境变化并进行发育过程。组蛋白甲基化等组蛋白修饰是重要的表观遗传学标记,它深刻而全面地修饰染色质,可能影响几个基因的表达。组蛋白的甲基化由组蛋白赖氨酸甲基转移酶(HKMT)催化,该酶具有一个进化保守结构域SET[Su(var)3-9,E(Z),Trithorax]。这种甲基化是针对H3或H4组蛋白上的特定赖氨酸(K)残基。植物SET结构域组(SDG)蛋白被分为不同的类别,这些类别在进化过程中一直是保守的,每一类都具有影响染色质结构如何运作的特异性。在植物SET结构域蛋白中发现的结构域通常与蛋白质-蛋白质相互作用有关,这表明大多数SDG在复合物中发挥作用。此外,SDG介导的组蛋白标记沉积也影响选择性剪接事件。在这篇综述中,我们讨论了植物中可持续发展目标的多样性,包括它们的结构特性。此外,我们对含有SDG结构域的蛋白质在植物发育过程中的功能进行了全面总结,并强调了对环境刺激的反应。
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Dynamics of epigenetic control in plants via SET domain containing proteins: Structural and functional insights

Plants control expression of their genes in a way that involves manipulating the chromatin structural dynamics in order to adapt to environmental changes and carry out developmental processes. Histone modifications like histone methylation are significant epigenetic marks which profoundly and globally modify chromatin, potentially affecting the expression of several genes. Methylation of histones is catalyzed by histone lysine methyltransferases (HKMTs), that features an evolutionary conserved domain known as SET [Su(var)3–9, E(Z), Trithorax]. This methylation is directed at particular lysine (K) residues on H3 or H4 histone. Plant SET domain group (SDG) proteins are categorized into different classes that have been conserved through evolution, and each class have specificity that influences how the chromatin structure operates. The domains discovered in plant SET domain proteins have typically been linked to protein-protein interactions, suggesting that majority of the SDGs function in complexes. Additionally, SDG-mediated histone mark deposition also affects alternative splicing events. In present review, we discussed the diversity of SDGs in plants including their structural properties. Additionally, we have provided comprehensive summary of the functions of the SDG-domain containing proteins in plant developmental processes and response to environmental stimuli have also been highlighted.

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来源期刊
CiteScore
9.20
自引率
2.10%
发文量
63
审稿时长
44 days
期刊介绍: BBA Gene Regulatory Mechanisms includes reports that describe novel insights into mechanisms of transcriptional, post-transcriptional and translational gene regulation. Special emphasis is placed on papers that identify epigenetic mechanisms of gene regulation, including chromatin, modification, and remodeling. This section also encompasses mechanistic studies of regulatory proteins and protein complexes; regulatory or mechanistic aspects of RNA processing; regulation of expression by small RNAs; genomic analysis of gene expression patterns; and modeling of gene regulatory pathways. Papers describing gene promoters, enhancers, silencers or other regulatory DNA regions must incorporate significant functions studies.
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