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1.
王天一  王应祥  尤辰江 《遗传》2021,(4):323-339
植物同源结构域(plant homeodomain,PHD)是锌指结构域家族的一类转录调控因子,其最主要的功能是可以识别各种组蛋白修饰密码,包括组蛋白甲基化和乙酰化等;此外PHD结构域还可以与DNA结合。含有PHD结构域的蛋白,或者本身具有组蛋白修饰酶活性,或者可以与各类组蛋白修饰酶相互作用,还有部分与DNA甲基化相关,具有E3泛素连接酶活性,或者还可以作为染色质重塑因子,以各种不同的作用方式,在植物的生长发育过程中发挥了重要的作用。本文主要综述了结合各种类型组蛋白(包括H3K4me3/0、H3K9me3、H3R2和H3K14ac)以及DNA的PHD结构域的结构特点及其结合特异性、PHD结构域在植物中的进化保守性以及植物中已经发现的含有PHD结构域蛋白的功能及作用机制,为进一步了解该类蛋白在植物生长发育过程中如何发挥作用提供了参考。  相似文献   

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组蛋白H3第79位赖氨酸甲基化(H3K79me)修饰有单甲基、双甲基及三甲基3种形式,是常染色质的标志.然而,对于组蛋白H3K79三种甲基化各自在基因转录、DNA损伤修复中所起的作用尚不十分清楚.本研究以8-氯腺苷(8-Cl-Ado)为DNA双链断裂(DNA double-stranded breaks,DSB)诱导剂,采用Western 印迹,在人肺癌细胞H1299检测出了DNA修复分子NBS1、细胞周期检验点相关分子p21,并发现H3K79me1、H3K79me2和H3K79me3三种甲基化修饰的组蛋白明显增加;染色质免疫共沉淀结合实时定量PCR实验显示,只H3K79me2与DNA损伤检验点分子p21、DNA修复分子NBS1的启动子区域相结合,说明H3K79双甲基化修饰与这些基因的转录激活有关.结果提示,在8-氯腺苷引起 DSB时,是H3K79me2、而不是H3K79me1和H3K79me3参与NBS1和p21基因转录激活时的染色质重塑.8-氯腺苷诱导H3K79双甲基化增强、促进H3K79me2所在染色质区域的NBS1和p21基因转录激活可能是8-Cl-Ado抑制肿瘤细胞生长作用机制之一.  相似文献   

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基因表达调控是生物体生长发育的一个重要环节.在这一过程中,染色质重塑复合物扮演了非常重要的作用.SAGA是一个至少由20个蛋白组成的不依赖ATP的多功能染色质重塑复合物,它通过对组蛋白H3和H2B氨基末端赖氨酸乙酰化修饰来松动染色质结构,从而促进基因转录的起始.目前,对SAGA及其同源物的研究表明,SAGA及其同源物参与了许多重要的生物学功能,如mRNA输出、DNA损伤修复、胚胎发育、细胞癌变等.  相似文献   

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DNA双链断裂修复缺陷易导致细胞基因组稳定性失衡、细胞发生癌变或死亡。真核生物主要通过同源重组和非同源末端连接两条途径来修复双链断裂。近年来发现多种ATP依赖型的染色质重塑蛋白复合物,包括RSC、INO80、Fun30、SWI/SNF和SWR1,直接参与了DNA双链断裂修复过程。它们主要通过调控DNA损伤检查点激活、断裂末端剪切及组蛋白H2AZ-H2B/H2A-H2B置换等重要步骤发挥功能。现以酿酒酵母中的研究为重点,综述主要ATP依赖型染色质重塑复合物在DNA双链断裂修复中的功能及作用机制。  相似文献   

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UTX是一种含有多个TPR结构域和一个JmjC催化结构域的组蛋白修饰酶,主要负责去除H3K27位点的二/三甲基化。在分子机制上,UTX一方面可通过其去甲基化酶活性降低靶基因启动子或增强子上的H3K27me2/3水平,另一方面可与MLL3/4形成复合物调控增强子的H3K4甲基化水平,从而促进基因转录。此外,UTX还可以通过与组蛋白乙酰转移酶p300或去乙酰化酶HDAC1相互作用从而调控组蛋白乙酰化水平,进而影响基因转录。在生理病理方面,UTX主要参与生长发育、组织分化、免疫以及代谢等生理过程,并调控多种疾病如歌舞伎综合征、癌症等疾病的发生发展。该文对UTX的最新研究成果进行总结,并就其在疾病治疗中的可能作用展开讨论。  相似文献   

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染色质重塑与肌肉分化   总被引:1,自引:0,他引:1  
在真核生物中,基因组DNA是以染色质的状态存在和发挥作用的。目前的研究已经鉴定了多种可以调节染色质结构和功能的蛋白质和酶复合物,包括不依赖ATP的染色质修饰酶、依赖于ATP的染色质重塑复合物,以及募集DNA甲基化/去甲基化装置的核小体相关蛋白质复合物等。在骨骼肌分化过程中,MyoD家族和MEF2家族的转录因子起着重要作用。染色质修饰酶通过MyoD和MEF2介导的染色质重塑影响肌肉分化。  相似文献   

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组蛋白赖氨酸甲基化在表观遗传调控中起着关键作用。组蛋白甲基转移酶G9a(又称作常染色质组蛋白赖氨酸N-甲基转移酶2(euchromatic histone-lysine N-methyltransferase 2,EHMT2))含经典的SET结构域,是常染色质主要的甲基转移酶之一,可以甲基化组蛋白H3K9、H3K27和H1bK26等。此外,G9a也可以直接甲基化一些非组蛋白,并与DNA甲基化密切相关。G9a功能紊乱可以导致胚胎发育异常、免疫系统及神经系统发育障碍、甚至癌症的发生发展。  相似文献   

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表观遗传调控是真核生物基因表达精细调控的重要组成部分,主要包括DNA甲基化、组蛋白修饰和染色质重塑。其中,染色质重塑因子可影响组蛋白修饰酶和转录因子与特定位点的结合,在基因表达调控中占有重要地位。INO80复合物是进化上保守的染色质重塑复合物,能利用ATP水解获得的能量促进核小体的滑动和驱逐。INO80复合物除了在DNA复制、修复中发挥重要功能外,还通过改变DNA可及性调控酿酒酵母的基因表达。本文综述了染色质重塑复合物的分类及组成,重点介绍了酿酒酵母多亚基复合物INO80在基因表达调控中的重要功能,包括驱逐RNA聚合酶Ⅱ、响应信号转导途径和改变基因表达水平等,并着重总结了其在酿酒酵母环境胁迫响应机理中的研究进展。深入研究INO80染色质重塑复合物的功能,可为理解真核生物精细代谢调控的机制,并进一步开发基于染色质重塑等表观调控水平的微生物代谢工程和合成生物学改造策略,提高菌株的环境胁迫耐受性和发酵性能提供基础。  相似文献   

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Bromodomain结构域首先在果蝇蛋白质Brahma中发现,折叠模式独特且高度保守,是最早也是截至目前公认唯一可与乙酰化赖氨酸结合的结构域。BRD蛋白通过结合不同的蛋白质或者定位蛋白质到细胞核发挥精细调节作用。BRD蛋白复合物常特异性识别并结合到染色质组蛋白H3/H4特定的乙酰化赖氨酸残基,从而影响靶基因的转录翻译;该蛋白复合物功能异常通常与多种疾病的发生相关联,表明对转录翻译调节有重要意义。但迄今为止,BRD蛋白复合物修饰染色质机理不明,现有研究提示BRD蛋白复合物维持染色质乙酰化状态,也可以与染色质组蛋白其它位点结合,从整体水平增强组蛋白乙酰化精度和效率。  相似文献   

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真核生物基因表达受到染色质结构的调控,组蛋白与DNA的共价修饰构成表观遗传标签,并在植物胁迫应答如防御病原菌侵染过程中起重要作用.病原菌侵染可引起基因组整体DNA甲基化模式变化及胁迫应答基因的位点特异性去甲基化,导致植物抗性基因表达上调或下调,并进一步调控植物对病原菌的胁迫应答;组蛋白去乙酰化酶HDAC通过茉莉酸途径增强植物对病原菌的胁迫应答;此外,染色质重塑复合物Swr1复合体通过识别DNA基元和组蛋白乙酰化修饰状态靶向基因启动子,负调控SA敏感基因.该文从DNA甲基化、组蛋白乙酰化、甲基化修饰,染色质重塑等方面着重阐述植物与病原菌互作过程中发生的主要事件的分子基础及其研究进展.  相似文献   

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The chromodomain, helicase, DNA-binding protein 5 (CHD5) is a chromatin remodeling enzyme which is implicated in tumor suppression. In this study, we demonstrate the ability of the CHD5 PHD fingers to specifically recognize the unmodified N-terminus of histone H3. We use two distinct modified peptide-library platforms (beads and glass slides) to determine the detailed histone binding preferences of PHD(1) and PHD(2) alone and the tandem PHD(1-2) construct. Both domains displayed similar binding preferences for histone H3, where modification (e.g., methylation, acetylation, and phosphorylation) at H3R2, H3K4, H3T3, H3T6, and H3S10 disrupts high-affinity binding, and the three most N-terminal amino acids (ART) are crucial for binding. The tandem CHD5-PHD(1-2) displayed similar preferences to those displayed by each PHD finger alone. Using NMR, surface plasmon resonance, and two novel biochemical assays, we demonstrate that CHD5-PHD(1-2) simultaneously engages two H3 N-termini and results in a 4-11-fold increase in affinity compared with either PHD finger alone. These studies provide biochemical evidence for the utility of tandem PHD fingers to recruit protein complexes at targeted genomic loci and provide the framework for understanding how multiple chromatin-binding modules function to interpret the combinatorial PTM capacity written in chromatin.  相似文献   

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A major challenge in chromatin biology is to understand the mechanisms by which chromatin is remodeled into active or inactive states as required during development and cell differentiation. One complex implicated in these processes is the nucleosome remodeling and histone deacetylase (NuRD) complex, which contains both histone deacetylase and nucleosome remodeling activities and has been implicated in the silencing of subsets of genes involved in various stages of cellular development. Chromodomain-helicase-DNA-binding protein 4 (CHD4) is a core component of the NuRD complex and contains a nucleosome remodeling ATPase domain along with two chromodomains and two plant homeodomain (PHD) fingers. We have previously demonstrated that the second PHD finger of CHD4 binds peptides corresponding to the N terminus of histone H3 methylated at Lys(9). Here, we determine the solution structure of PHD2 in complex with H3K9me3, revealing the molecular basis of histone recognition, including a cation-π recognition mechanism for methylated Lys(9). Additionally, we demonstrate that the first PHD finger also exhibits binding to the N terminus of H3, and we establish the histone-binding surface of this domain. This is the first instance where histone binding ability has been demonstrated for two separate PHD modules within the one protein. These findings suggest that CHD4 could bind to two H3 N-terminal tails on the same nucleosome or on two separate nucleosomes simultaneously, presenting exciting implications for the mechanism by which CHD4 and the NuRD complex could direct chromatin remodeling.  相似文献   

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The conserved protein kinase Chk1 mediates cell cycle progression and consequently the ability of cells to survive when exposed to DNA damaging agents. Cells deficient in Chk1 are hypersensitive to such agents and enter mitosis in the presence of damaged DNA, whereas checkpoint-proficient cells delay mitotic entry to permit time for DNA repair. In a search for proteins that can improve the survival of Chk1-deficient cells exposed to DNA damage, we identified fission yeast Msc1, which is homologous to a mammalian protein that binds to the tumor suppressor Rb (RBP2). Msc1 and RBP2 each possess three PHD fingers, domains commonly found in proteins that influence the structure of chromatin. Msc1 is chromatin associated and coprecipitates a histone deacetylase activity, a property that requires the PHD fingers. Cells lacking Msc1 have a dramatically altered histone acetylation pattern, exhibit a 20-fold increase in global acetylation of histone H3 tails, and are readily killed by trichostatin A, an inhibitor of histone deacetylases. We postulate that Msc1 plays an important role in regulating chromatin structure and that this function modulates the cellular response to DNA damage.  相似文献   

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DNA damage detection and repair take place in the context of chromatin, and histone proteins play important roles in these events. Post-translational modifications of histone proteins are involved in repair and DNA damage signalling processes in response to genotoxic stresses. In particular, acetylation of histones H3 and H4 plays an important role in the mammalian and yeast DNA damage response and survival under genotoxic stress. However, the role of post-translational modifications to histones during the plant DNA damage response is currently poorly understood. Several different acetylated H3 and H4 N-terminal peptides following X-ray treatment were identified using MS analysis of purified histones, revealing previously unseen patterns of histone acetylation in Arabidopsis. Immunoblot analysis revealed an increase in the relative abundance of the H3 acetylated N-terminus, and a global decrease in hyperacetylation of H4 in response to DNA damage induced by X-rays. Conversely, mutants in the key DNA damage signalling factor ATM (ATAXIA TELANGIECTASIA MUTATED) display increased histone acetylation upon irradiation, linking the DNA damage response with dynamic changes in histone modification in plants.  相似文献   

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PICKLE plays a critical role in repression of genes that regulate development identity in Arabidopsis thaliana. PICKLE codes for a putative ATP-dependent chromatin remodeler that exhibits sequence similarity to members of subfamily II of animal CHD remodelers, which includes remodelers such as CHD3/Mi-2 that also restrict expression of developmental regulators. Whereas animal CHD3 remodelers are a component of the Mi-2/NuRD complex that promotes histone deacetylation, PICKLE promotes trimethylation of histone H3 lysine 27 suggesting that it acts via a distinct epigenetic pathway. Here, we examine whether PICKLE is also a member of a multisubunit complex and characterize the biochemical properties of recombinant PICKLE protein. Phylogenetic analysis indicates that PICKLE-related proteins in plants share a common ancestor with members of subfamily II of animal CHD remodelers. Biochemical characterization of PICKLE in planta, however, reveals that PICKLE primarily exists as a monomer. Recombinant PICKLE protein is an ATPase that is stimulated by ssDNA and mononucleosomes and binds to both naked DNA and mononucleosomes. Furthermore, recombinant PICKLE exhibits ATP-dependent chromatin remodeling activity. These studies demonstrate that subfamily II CHD proteins in plants, such as PICKLE, retain ATP-dependent chromatin remodeling activity but act through a mechanism that does not involve the ubiquitous Mi-2/NuRD complex.  相似文献   

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