H3K9 methyltransferase

  • 文章类型: Journal Article
    SET结构域分叉组蛋白赖氨酸甲基转移酶1(SETDB1)是催化组蛋白H3赖氨酸9(H3K9)甲基化的重要表观遗传调节因子,特别是二/三甲基化。这种调节通过异染色质形成促进基因沉默。SETDB1表达异常,其致癌作用在许多癌症中都很明显。因此,SETDB1是具有新颖治疗益处的有效靶标。在这次审查中,我们探索SETDB1的结构和生化特征,其调控机制,以及它在各种癌症中的作用。我们还讨论了针对SETDB1的小分子的最新发现,并为未来的研究提供建议。
    SET domain bifurcated histone lysine methyltransferase 1 (SETDB1) is an important epigenetic regulator catalyzing histone H3 lysine 9 (H3K9) methylation, specifically di-/tri-methylation. This regulation promotes gene silencing through heterochromatin formation. Aberrant SETDB1 expression, and its oncogenic role is evident in many cancers. Thus, SETDB1 is a valid target with novel therapeutic benefits. In this review, we explore the structural and biochemical features of SETDB1, its regulatory mechanisms, and its role in various cancers. We also discuss recent discoveries in small molecules targeting SETDB1 and provide suggestions for future research.
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  • 文章类型: Journal Article
    二-或三-甲基化的H3K9(H3K9me2/3)是异染色质的表观遗传标记。异染色质蛋白1(HP1)特异性识别H3K9me2/3,有助于H3K9me2/3的转录抑制和传播。这里,我们证明了HP1在异染色质组织中的另一个作用:调节H3K9甲基转移酶(H3K9MTs)和去甲基酶(H3K9DMs)的蛋白质稳定性。我们证明了H3K9MTs的HP1相互作用缺陷突变体,Suv39h1和Settdb1经历蛋白质降解。我们进一步建立了缺乏所有三种HP1同源物的小鼠胚胎干细胞系。在缺乏HP1的细胞中,Suv39h1、Suv39h2、Settdb1和G9a/GLP复合物在蛋白质水平降低,酶从染色质中释放出来。不能识别H3K9me2/3或形成二聚体的HP1突变体不能稳定这些酶,这表明H3K9MTs与染色质的连接对其蛋白质稳定性至关重要。我们证明HP1也稳定H3K9DM,Jmjd1a和Jmjd1b。
    Di- or tri-methylated H3K9 (H3K9me2/3) is an epigenetic mark of heterochromatin. Heterochromatin protein 1 (HP1) specifically recognizes H3K9me2/3, contributing to transcriptional suppression and spread of H3K9me2/3. Here, we demonstrate another role of HP1 in heterochromatin organization: regulation of protein stability of H3K9 methyltransferases (H3K9 MTs) and demethylases (H3K9 DMs). We show that HP1 interaction-defective mutants of H3K9 MTs, Suv39h1 and Setdb1, undergo protein degradation. We further establish mouse embryonic stem cell lines lacking all three HP1 paralogs. In the HP1-deficient cells, Suv39h1, Suv39h2, Setdb1, and G9a/GLP complex decrease at the protein level, and the enzymes are released from chromatin. HP1 mutants that cannot recognize H3K9me2/3 or form dimers cannot stabilize these enzymes, indicating that the tethering of H3K9 MTs to chromatin is critical for their protein stability. We show that HP1 also stabilizes H3K9 DMs, Jmjd1a and Jmjd1b. Our study indicates that mammalian HP1 forms a heterochromatin hub that governs protein stability of H3K9 MTs and H3K9 DMs.
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  • 文章类型: Journal Article
    母亲的压力可以对后代产生持久的表观遗传影响。为了检查压力如何引发表观遗传变化,我们研究了激活秀丽隐杆线虫种系中通用应激反应性热休克转录因子HSF-1的作用。我们证明,当在生殖细胞中被激活时,HSF-1招募MET-2,推定的组蛋白3赖氨酸9(H3K9)甲基转移酶负责染色质中的抑制性H3K9me2(H3K9二甲基)标记,并将胰岛素受体daf-2和其他HSF-1靶基因标记为阴性。在这些基因上增加的H3K9me2在成年后代中持续存在,并将其应激反应策略从诱导型伴侣表达转移为一种在应激中存活的机制,而是依赖于减少的胰岛素/胰岛素生长因子(IGF-1)样信号(IIS)。根据母体热应激暴露的持续时间,这种表观遗传记忆是由下一代遗传的。因此,矛盾的是,HSF-1招募了通常负责擦除转录记忆的种系机制,但是,相反,建立了先前应激暴露的可遗传表观遗传记忆。
    Maternal stress can have long-lasting epigenetic effects on offspring. To examine how epigenetic changes are triggered by stress, we examined the effects of activating the universal stress-responsive heat shock transcription factor HSF-1 in the germline of Caenorhabditis elegans. We show that, when activated in germ cells, HSF-1 recruits MET-2, the putative histone 3 lysine 9 (H3K9) methyltransferase responsible for repressive H3K9me2 (H3K9 dimethyl) marks in chromatin, and negatively bookmarks the insulin receptor daf-2 and other HSF-1 target genes. Increased H3K9me2 at these genes persists in adult progeny and shifts their stress response strategy away from inducible chaperone expression as a mechanism to survive stress and instead rely on decreased insulin/insulin growth factor (IGF-1)-like signaling (IIS). Depending on the duration of maternal heat stress exposure, this epigenetic memory is inherited by the next generation. Thus, paradoxically, HSF-1 recruits the germline machinery normally responsible for erasing transcriptional memory but, instead, establishes a heritable epigenetic memory of prior stress exposure.
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  • 文章类型: Journal Article
    H3K9 methyltransferase (G9a) and its relevant molecule GLP are the SET domain proteins that specifically add mono, di and trimethyl groups on to the histone H3K9, which lead to the transcriptional inactivation of chromatin and reduce the expression of cancer suppressor genes, which trigger growth and progress of several cancer types. Various studies have demonstrated that overexpression of H3K9 methyltransferase G9a and GLP in different kinds of tumors, like lung, breast, bladder, colon, cervical, gastric, skin cancers, hepatocellular carcinoma and hematological malignancies. Several G9a and GLP inhibitors such as BIX-01294, UNC0642, A-366 and DCG066 were developed to combat various cancers; however, there is a need for more effective and less toxic compounds. The current molecular docking study suggested that the selected new compounds such as ninhydrin, naphthoquinone, cysteamine and disulfide cysteamine could be suitable molecules as a G9a and GLP inhibitors. Furthermore, detailed cell based and preclinical animal studies are required to confirm their properties. In the current review, we discussed the role of G9a and GLP mediated epigenetic regulation in the cancers. A thorough literature review was done related to G9a and GLP. The databases used extensively for retrieval of information were PubMed, Medline, Scopus and Science-direct. Further, molecular docking was performed using Maestro Schrodinger version 9.2 software to investigate the binding profile of compounds with Human G9a HMT (PDB ID: 3FPD, 3RJW) and Human GLP MT (PDB ID: 6MBO, 6MBP).
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  • 文章类型: Journal Article
    聚合酶相关因子1复合物(PAF1c)是一种表观遗传共修饰复合物,直接与RNA聚合酶II(RNAPII)和几种表观遗传调节蛋白接触。突变,在各种形式的癌症中观察到PAF1c亚基的过表达和表达丢失,这表明细胞发育需要适当的调节。然而,与PAF1c的允许动态基因调控的生化相互作用尚不清楚.我们和其他人已经表明,PAF1c与MLL融合蛋白直接相互作用,它们是急性髓细胞性白血病(AML)的有效致癌驱动因素。这种相互作用对于通过将MLL融合蛋白靶向靶基因Meis1和Hoxa9来维持MLL易位驱动的AML至关重要。这里,我们使用蛋白质组学方法鉴定与调节PAF1c功能的PAF1c亚基CDC73的蛋白质-蛋白质相互作用.我们确定了与组蛋白H3赖氨酸9(H3K9)甲基转移酶蛋白的新相互作用,SETDB1.这种相互作用用不能支持AML细胞生长的突变体CDC73稳定。重要的是,通过过表达SETDB1或稳定AML细胞中PAF1c-SETDB1相互作用,Meis1和Hoxa9的转录降低,启动子H3K9三甲基化(H3K9me3)增加。这些发现在人类AML患者中得到证实,其中增加的SETDB1表达与降低的HOXA9和MEIS1相关。据我们所知,这是第一个在AML中寻找CDC73蛋白-蛋白相互作用的蛋白质组学方法,并证明PAF1c可能在AML中H3K9me3介导的转录抑制中起作用。
    The Polymerase Associated Factor 1 complex (PAF1c) is an epigenetic co-modifying complex that directly contacts RNA polymerase II (RNAPII) and several epigenetic regulating proteins. Mutations, overexpression and loss of expression of subunits of the PAF1c are observed in various forms of cancer suggesting proper regulation is needed for cellular development. However, the biochemical interactions with the PAF1c that allow dynamic gene regulation are unclear. We and others have shown that the PAF1c makes a direct interaction with MLL fusion proteins, which are potent oncogenic drivers of acute myeloid leukemia (AML). This interaction is critical for the maintenance of MLL translocation driven AML by targeting MLL fusion proteins to the target genes Meis1 and Hoxa9. Here, we use a proteomics approach to identify protein-protein interactions with the PAF1c subunit CDC73 that regulate the function of the PAF1c. We identified a novel interaction with a histone H3 lysine 9 (H3K9) methyltransferase protein, SETDB1. This interaction is stabilized with a mutant CDC73 that is incapable of supporting AML cell growth. Importantly, transcription of Meis1 and Hoxa9 is reduced and promoter H3K9 trimethylation (H3K9me3) increased by overexpression of SETDB1 or stabilization of the PAF1c-SETDB1 interaction in AML cells. These findings were corroborated in human AML patients where increased SETDB1 expression was associated with reduced HOXA9 and MEIS1. To our knowledge, this is the first proteomics approach to search for CDC73 protein-protein interactions in AML, and demonstrates that the PAF1c may play a role in H3K9me3-mediated transcriptional repression in AML.
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