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1.
组蛋白乙酰化修饰是基因起始转录的关键步骤. p300等组蛋白乙酰转移酶(HATs)催化组蛋白和非组蛋白的乙酰化. HATs具有多种细胞功能,而且乙酰化对底物蛋白的功能改变也具有重要功能. 组蛋白乙酰转移酶p300可乙酰化多种细胞内蛋白,某些病毒蛋白与p300有相互作用并促进病毒复制. 因此, p300是细胞内具有广泛功能的转录激活因子. 组蛋白乙酰转移酶结构域(HAT区)是p300乙酰化酶活性的最小中心功能域,在p300乙酰化底物中具有重要功能. 本文重组表达了对应p300 HAT区的GST-p300 HAT蛋白,对其乙酰化酶的活性进行检测. 结果证实,p300 HAT蛋白在体外可高效乙酰化组蛋白H3. 随后,对体外乙酰化反应的条件进行优化. 总之,本文构建了一种简单高效、非放射性体外乙酰化体系,适用于对潜在底物蛋白的乙酰化水平和机制进行分析,以及乙酰化蛋白的相关功能的研究.  相似文献   

2.
组蛋白乙酰化修饰是一种重要的蛋白质翻译后修饰方式,由组蛋白乙酰基转移酶HATs和组蛋白去乙酰化酶HDACs共同调节.昆虫HDACs蛋白家族根据其同源性和结构的不同共分为4类,各昆虫物种之间既具有较高的保守同源性,同时也表现出一定的物种特异性.HDACs主要参与昆虫的胚胎发育、体节形成、寿命和神经行为等方面的调节.本文从HDACs蛋白的种类、系统发育、生理功能等方面展开,介绍了近年来国内外昆虫HDACs领域的最新研究进展,以期对研究昆虫表型可塑性调节机制以及探索新的害虫防治方法提供借鉴.  相似文献   

3.
蛋白质的乙酰化修饰在基因转录调控过程中发挥着重要作用,组蛋白乙酰化酶(histone acetyl transferases,HATs)和去乙酰化酶(histone deacetylases,HDACs)分别催化蛋白质的乙酰化和去乙酰化修饰反应。HDACs在调节机体能量代谢过程中的重要性已被越来越多的研究所证实,深入理解HDAC各亚型在不同生理及病理状态下的作用将为代谢性疾病的预防和治疗提供新的理论参考。  相似文献   

4.
熊光华  潘杰  马宗源 《昆虫知识》2012,49(3):770-777
组蛋白乙酰化修饰是一种重要的蛋白质翻译后修饰方式,由组蛋白乙酰基转移酶HATs和组蛋白去乙酰化酶HDACs共同调节。昆虫HDACs蛋白家族根据其同源性和结构的不同共分为4类,各昆虫物种之间既具有较高的保守同源性,同时也表现出一定的物种特异性。HDACs主要参与昆虫的胚胎发育、体节形成、寿命和神经行为等方面的调节。本文从HDACs蛋白的种类、系统发育、生理功能等方面展开,介绍了近年来国内外昆虫HDACs领域的最新研究进展,以期对研究昆虫表型可塑性调节机制以及探索新的害虫防治方法提供借鉴。  相似文献   

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组蛋白乙酰化与癌症   总被引:17,自引:0,他引:17  
由于组蛋白被修饰所引起的染色质结构的改变,在真核生物基因表达调控中发挥着重要的作用,这些修饰主要包括甲基化、乙酰化、磷酸化和泛素化等,其中组蛋白乙酰化尤为重要.组蛋白乙酰转移酶(HAT)和组蛋白去乙酰化酶(HDAC)参与决定组蛋白乙酰化状态.HAT通常作为多亚基辅激活物复合体的一部分,催化组蛋白乙酰化,导致染色质结构的松散、激活转录;而HDAC是多亚基辅抑制物复合体的一部分,使组蛋白去乙酰化,导致染色质集缩,并抑制基因的转录. 编码这些酶的基因染色体易位易于导致急性白血病的发生.另一方面,已经确定了一些乙酰化修饰酶的基因在染色体上的位置,它们尤其倾向定位于染色体的断裂处.综述了HAT和HDAC参与的组蛋白乙酰化与癌症发生之间关系的最新进展,以期进一步阐明组蛋白乙酰化修饰酶的生物学功能以及它们在癌症发生过程中的作用.  相似文献   

6.
GCN5是首个在酵母中被克隆和鉴定的组蛋白乙酰转移酶,属于GCN5相关N-乙酰基转移酶超家族成员,具有赖氨酸乙酰转移酶的活性。GCN5主要分布在细胞核内,由可识别组蛋白乙酰基团的溴结构域和具有催化活性的组蛋白乙酰转移酶结构域及N末端结构域组成,其引起的赖氨酸残基的乙酰化修饰能增强组蛋白与DNA的结合力,进而影响基因的转录,参与调控细胞增殖、分化、细胞周期以及DNA损伤/修复等诸多生物进程。近年的研究发现,GCN5可通过对组蛋白及非组蛋白的乙酰化修饰,参与调控肝糖原合成、脂肪生成和成骨细胞分化等。本文重点就GCN5的分子结构、酶活性及其在糖尿病、肥胖、骨质疏松等不同代谢相关疾病中的作用及其分子机制进行综述,对GCN5调控细胞代谢及活性氧生成的机制进行总结,对靶向GCN5的代谢性疾病的治疗前景进行展望。  相似文献   

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在真核细胞中,组蛋白的乙酰化状态对于基因转录的正常进行具有重要的调控作用。组蛋白的乙酰化修饰由组蛋白乙酰转移酶(histone acetyltransferases,HATs)执行,这种修饰是动态的、可逆的,负责去乙酰化修饰的酶是组蛋白去乙酰化酶(histone deacetylases,HDACs),推测HDACs可能通过影响组蛋白的乙酰化状态在基因的转录过程中发挥调控作用。该文以组蛋白去乙酰化酶HDAC1和HDAC3为对象,研究了它们在果蝇翅膀发育过程中对Wg(Wingless)、Hh(Hedgehog)以及Dpp(Decapentaplegic)信号通路下游靶基因转录的调控作用。结果发现,HDAC1功能缺失可导致Dpp下游靶基因Omb(optomotor-blind)和Hh下游靶基因Ptc(patched)的表达上调。Real-time quantitative PCR(RT-q PCR)结果显示,在HDAC1基因敲除的果蝇中,Ptc、Ci(cubitus interruptus)以及Omb的转录水平增加。HDAC3缺失导致Sal(spalt)的表达上调。RT-q PCR结果证实了HDAC3基因敲除果蝇的Sal转录增加,同时发现Vg(vestigial)的转录下降。而过表达HDAC1或HDAC3对下游靶基因的表达则没有影响。综上所述,该研究表明,HDAC1和HDAC3可以选择性地调控形态发生素下游靶基因的转录。  相似文献   

8.
乙酰化修饰是由乙酰基转移酶、去乙酰化酶介导的可逆的蛋白质翻译后修饰。其中,乙酰基转移酶将乙酰辅酶A的乙酰基团转移至底物蛋白的氨基酸残基,而乙酰基团的去除由去乙酰化酶完成。乙酰化修饰参与许多基本生物学过程的调节作用,越来越多的研究表明,蛋白质乙酰化修饰在病原菌的致病过程中具有重要作用。病原菌,如引起非典型性肺炎的嗜肺军团菌,可以通过分泌具有乙酰基转移酶活性的效应蛋白靶向宿主细胞信号通路的关键蛋白质因子,干扰宿主细胞信号通路及免疫反应。本文主要从嗜肺军团菌的致病机制、乙酰化修饰及乙酰化修饰在病原体致病过程中的调控作用进行综述,突出已知的乙酰化毒力蛋白的例子,并讨论它们如何影响与宿主的相互作用,为理解乙酰化修饰在嗜肺军团菌致病过程中的作用机制提供参考。  相似文献   

9.
关于组蛋白甲基化的研究   总被引:3,自引:0,他引:3  
李想  张飞雄 《遗传》2004,26(2):244-248
主要阐述了组蛋白甲基转移酶的类型,组蛋白H3中第9位赖氨酸甲基化与异染色质的形成、常染色体中基因表达的调控,以及与DNA甲基化之间的关系,说明了组蛋白甲基化与组蛋白乙酰化、磷酸化的相互关系, 指出组蛋白甲基化对维持细胞各种状态的平衡起到极其重要的作用。 Abstract: The types of histone methyltransferases, the relationship between methylation of Lysine 9 of H3 and the formation of heterochromatin, gene regulation in euchromatin, and that with DNA methylation, were mainly introduced. The interrelation between histone methylation and histone acetylation/phosphorylation was summarized. It is showed that histone methylation plays a very important role in maintaining the balance state of cell. The future research tendency of histone methylation was fantanstic.  相似文献   

10.
组蛋白乙酰化酶(histone acetyltransferases,HATs)和组蛋白去乙酰化酶(histone deacetylases,HDACs)主导的蛋白质乙酰化修饰在神经系统的发育、成熟中具有重要地位。HDAC6属于Ⅱ类HDACs,能够调节神经细胞的存活、分化和成熟,参与脑认知和情绪调控,在神经系统发育中具有重要作用,并且参与脑缺血损伤的多个病理环节。本文总结了近年来国内外最新研究成果,阐述了HDAC6抑制剂通过降低细胞兴奋性毒性、减轻氧化应激损伤、抑制炎症介质释放、抑制神经细胞凋亡以及促进神经再生和血管新生等多种方式对缺血性脑卒中发挥有效的神经保护作用。  相似文献   

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HATs (histone acetyltransferases) contribute to the regulation of gene expression, and loss or dysregulation of these activities may link to tumorigenesis. Here, we demonstrate that expression levels of HATs, p300 and CBP [CREB (cAMP-response-element-binding protein)-binding protein] were decreased during chemical hepatocarcinogenesis, whereas expression of MOZ (monocytic leukaemia zinc-finger protein; MYST3)--a member of the MYST [MOZ, Ybf2/Sas3, Sas2 and TIP60 (Tat-interacting protein, 60 kDa)] acetyltransferase family--was induced. Although the MOZ gene frequently is rearranged in leukaemia, we were unable to detect MOZ rearrangement in livers with hyperplastic nodules. We examined the effect of MOZ on hepatocarcinogenic-specific gene expression. GSTP (glutathione S-transferase placental form) is a Phase II detoxification enzyme and a well-known tumour marker that is specifically elevated during hepatocarcinogenesis. GSTP gene activation is regulated mainly by the GPE1 (GSTP enhancer 1) enhancer element, which is recognized by the Nrf2 (nuclear factor-erythroid 2 p45 subunit-related factor 2)-MafK heterodimer. We found that MOZ enhances GSTP promoter activity through GPE1 and acts as a co-activator of the Nrf2-MafK heterodimer. Further, exogenous MOZ induced GSTP expression in rat hepatoma H4IIE cells. These results suggest that during early hepatocarcinogenesis, aberrantly expressed MOZ may induce GSTP expression through the Nrf2-mediated pathway.  相似文献   

15.
Members of the ING family of tumor suppressors regulate cell cycle progression, apoptosis, and DNA repair as important cofactors of p53. ING1 and ING3 are stable components of the mSin3A HDAC and Tip60/NuA4 HAT complexes, respectively. We now report the purification of the three remaining human ING proteins. While ING2 is in an HDAC complex similar to ING1, ING4 associates with the HBO1 HAT required for normal progression through S phase and the majority of histone H4 acetylation in vivo. ING5 fractionates with two distinct complexes containing HBO1 or nucleosomal H3-specific MOZ/MORF HATs. These ING5 HAT complexes interact with the MCM helicase and are essential for DNA replication to occur during S phase. Our data also indicate that ING subunits are crucial for acetylation of chromatin substrates. Since INGs, HBO1, and MOZ/MORF contribute to oncogenic transformation, the multisubunit assemblies characterized here underscore the critical role of epigenetic regulation in cancer development.  相似文献   

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Epigenetic aberrations are increasingly regarded as key factors in cancer progression. Recently, deregulation of histone acetyltransferases (HATs) has been linked to several types of cancer. Monocytic leukemia zinc finger protein (MOZ) is a member of the MYST family of HATs, which regulate gene expression in cell proliferation and differentiation. Deregulation of these processes through constitutively active MOZ fusion proteins gives rise to the formation of leukemic stem cells, rendering MOZ an excellent target for treating myeloid leukemia. The authors implemented a hit discovery campaign to identify small-molecule inhibitors of MOZ-HAT activity. They developed a robust, homogeneous assay measuring the acetylation of synthetic histone peptides. In a primary screening campaign testing 243 000 lead-like compounds, they identified inhibitors from several chemical classes. Secondary assays were used to eliminate assay-interfering compounds and prioritize confirmed hits. This study establishes a new high-throughput assay for HAT activity and could provide the foundation for the development of a new class of drugs for the treatment of leukemias.  相似文献   

18.
The major function of protein MYST1 is acetylation of histone H4 at the K16 residue. This modification is essential for chromatin remodeling and is used for regulation of gene expression in eukaryotes. MYST1 is a part of multiprotein complexes that accomplish functions of male X-chromosome activation and thereby functions of dosage compensation in drosophila and, in mammals, global acetylation of histone H4 K16. Recently, novel functional links between MYST1 and proteins ATM and p53 have been observed, and it is recognized that MYST1 plays a role in tumor suppression mechanisms. In the present review, we examine novel data about functional composition and mechanisms of MYST1-containing complexes. Interplay between MYST1 and other components of the animal cell interactome is also discussed.  相似文献   

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The MYST family of histone acetyltransferases (HATs) plays critical roles in diverse cellular processes, such as the epigenetic regulation of gene expression. Lysine autoacetylation of the MYST HATs has recently received considerable attention. Nonetheless, the mechanism and function of the autoacetylation process are not well defined. To better understand the biochemical mechanism of MYST autoacetylation and the impact of autoacetylation on the cognate histone acetylation, we carried out detailed analyses of males-absent-on-the-first (MOF), a key member of the MYST family. A number of mutant MOF proteins were produced with point mutations at several key residues near the active site of the enzyme. Autoradiography and immunoblotting data showed that mutation of these residues affects the autoacetylation activity and HAT activity of MOF by various degrees demonstrating that MOF activity is highly sensitive to the chemical changes in those residues. We produced MOF protein in the deacetylated form by using a nonspecific lysine deacetylase. Interestingly, both the autoacetylation activity and the histone acetylation activity of the deacetylated MOF were found to be very close to that of wild-type MOF, suggesting that autoacetylation of MOF only marginally modulates the enzymatic activity. Also, we found that the autoacetylation rates of MOF and deacetylated MOF were much slower than the cognate substrate acetylation. Thus, autoacetylation does not seem to contribute to the intrinsic enzymatic activity in a significant manner. These data provide new insights into the mechanism and function of MYST HAT autoacetylation.  相似文献   

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