首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 250 毫秒
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.
对中国重要药用植物南方红豆杉中的10-去乙酰巴卡亭Ⅲ-10-乙酰转移酶(DBAT)基因进行分离、测序以及生物信息学分析。根据GenBank中已登录的10-去乙酰巴卡亭Ⅲ-10-乙酰转移酶(DBAT)基因cDNA序列设计引物,采用RT-PCR技术从南方红豆杉叶片中克隆了1个DBAT基因Tc-DBAT的全长cDNA。结果显示,Tc-DBAT cDNA含有1个1 323 bp的开放阅读框(open reading frame,ORF),编码440个氨基酸,对应基因组序列含有1个内含子。Tc-DBAT蛋白N端含有5个N-酰基化作用位点和2个保守的N-糖基化作用位点,具有1个保守的B ig-1结构域,多个重要的磷酸化位点以及1个类似钙结合蛋白重复结构。序列同源性比较、系统发生分析以及蛋白质高级结构预测均表明,Tc-DBAT属于转移酶超家族(transferase superfamily),是一个具有乙酰转移酶活性的功能蛋白,能够催化10-去乙酰巴卡亭Ⅲ(10-DAB)10位的乙酰化,从而生成抗癌新药紫杉醇生物合成途径中的最后一个双萜中间体——巴卡亭Ⅲ。有望通过成功克隆和鉴定紫杉醇生物合成途径中的关键酶基因达到提高其半合...  相似文献   

3.
组蛋白乙酰转移酶及脱乙酰基酶的作用及调节机制   总被引:1,自引:0,他引:1  
姜绮霞  袁洪 《生命的化学》2007,27(3):218-220
组蛋白乙酰转移酶(HAT)及脱乙酰基酶(HDAC)调节组蛋白和转录因子的乙酰化水平,从而在控制细胞生命活动中发挥着重要作用.该文主要从HAT和HDAC的量、酶活性以及利用度的调节三个方面,详细阐述了HAT和HDAC调控的分子机制,并对未来的研究方向提出新的构想.  相似文献   

4.
组蛋白乙酰化是表观遗传修饰的重要方式,主要受到组蛋白乙酰转移酶(histone acetyltransferases, HATs)和组蛋白去乙酰化酶(histone deacetylase, HDACs)催化. MYST是人类HATs的4大家族之一,包括MOF(males absent on the first),TIP60 (tat interacting protein 60 kD),结合ORC1的组蛋白乙酰转移酶(histone acetyltransferase binding to ORC1, HBO1),单核细胞白血病锌指蛋白(monocytic leukemia zinc finger protein, MOZ)和MOZ相关蛋白(MOZ related factor, MORF)等,均具有典型的MYST结构域.MYST介导的乙酰化是重要的翻译后修饰,其催化底物包括组蛋白和非组蛋白,如组蛋白H3, H4, H2A, H2A突变体,以及许多参与DNA代谢、细胞增殖和发育调控的蛋白因子. MYST蛋白家族参与许多细胞的生理过程,本文主要综述其在调节基因转录、DNA损伤修复和肿瘤发生发展等方面的生物学功能.  相似文献   

5.
张悦  王琪琳 《生命的化学》2023,(11):1661-1669
乙酰辅酶A是细胞内物质和能量代谢的重要中间物,同时也是蛋白质乙酰化的乙酰基供体。蛋白质乙酰化包括Nα-乙酰化和Nε-乙酰化,由不同的酶进行催化。蛋白质乙酰化发生在多个亚细胞部位,如细胞基质、细胞核、线粒体和内质网腔等。不同细胞器和区室内乙酰辅酶A的波动可调控内质网蛋白质的乙酰化水平。本文从柠檬酸转运蛋白SLC25A1和SLC13A5、乙酰辅酶A转运蛋白AT-1以及乙酰转移酶ATase1和ATase2的功能出发,以相关人类疾病、内质网乙酰化失调小鼠模型和柠檬酸/乙酰辅酶A通量失调小鼠模型为背景进行分析,阐述了乙酰辅酶A和内质网乙酰化以及内质网乙酰化功能失调与退行性疾病之间的关系,旨在为靶向治疗相关疾病提供一定的策略。  相似文献   

6.
赖氨酸乙酰化是把来自于乙酰CoA的乙酰基团转移到靶蛋白赖氨酸的ε-NH3+上,是蛋白质翻译后的一种可逆修饰过程,受乙酰基转移酶(HAT/KAT)和去乙酰化酶(HDAC/KDAC)的共同调节。赖氨酸乙酰化通过对细胞内多种蛋白质的修饰调节,可以控制体内多种代谢过程,如调节糖类、脂类、氨基酸、核苷酸及次级代谢物的代谢等.因而,细胞内赖氨酸乙酰化失调,可影响与代谢相关的多种疾病,如肥胖症、糖尿病和心血管疾病等。随着对蛋白质乙酰化研究的深入,发现赖氨酸乙酰化与细胞免疫状态及神经退行性疾病,如阿尔茨海默氏症和亨廷顿综合征等也有关。对近年来赖氨酸乙酰化在代谢调控及与代谢相关疾病如心血管疾病和免疫代谢疾病中的分子调控机制进行综述。  相似文献   

7.
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   

8.
乙酰化修饰普遍发生于真核生物的各种蛋白质 ,对蛋白质的稳定性和活性产生重大影响。酵母N末端乙酰基转移酶NatA由NAT1和ARD1两个亚基组成。任何一个亚基缺陷都导致NatA活性丧失 ,酵母表现出在接合型转换、细胞周期调控及染色体稳定性等方面的异常。通过同源克隆方法 ,克隆了与酵母NAT1高度同源的一个人类基因。经GenBank查询 ,为新基因 ,命名为HNAT1。原位杂交结果显示 ,在成年小鼠曲精管内 ,该基因的表达强烈。其表达强度与细胞类型和细胞所处时相有关。该基因在精子发生过程中可能具有重要作用  相似文献   

9.
Alpha-突触核蛋白(α-synuclein, α-syn)聚集是引起帕金森病(Parkinson’s disease, PD)发生发展主要原因。本文用蛋白质/多肽片段互补分析法(protein-fragment complementation assays, PCAs)检测α-syn在细胞内的聚集。分别构建融合α-syn与人工改造的荧光素酶human Gaussiaprinceps luciferase(hGLuc)蛋白N端或C端蛋白的质粒,共转入人神经母细胞瘤SK-N-SH细胞,通过检测酶活性来确定野生型(wild type,WT)及A53T突变体α-syn在细胞中的聚集情况。结果表明WT和A53T突变α-syn都能使荧光素酶活性增强,而且与野生型α-syn相比,突变体A53T的荧光素酶活性更强,说明二者都能聚集,而且A53T聚集程度高于WT。PCAs法具有高灵敏度,不仅能检测α-syn在细胞内的聚集,而且能反映其聚集的程度,为研究帕金森病提供了研究思路和相应药物筛选的有效工具。  相似文献   

10.
p300/CBP相关因子(p300/CBPassociated factor,PCAF)是真核细胞内一种重要的组蛋白乙酰转移酶,它主要通过催化核心组蛋白的乙酰化,促进特定基因的转录,参与细胞内多种生物学过程。国内目前尚没有制备出具有生物学活性的组蛋白乙酰转移酶PCAF的报道。为此, PCAF全长cDNA被克隆入原核表达载体pGEX-5X-1,通过对诱导条件进行优化,实现了PCAF在大肠杆菌BL21(DE3)菌株中的高效可溶性表达并进行了亲和纯化。利用体外乙酰转移酶活性分析实验,检测到所表达的GST-PCAF融合蛋白能够使组蛋白H3发生乙酰化。这种具有生物学活性的PCAF蛋白的成功制备为进一步研究PCAF的转录调控功能以及它与其它蛋白间的相互作用奠定了基础。  相似文献   

11.
Protein acetylation is a widespread modification that is mediated by site-selective acetyltransferases. KATs (lysine Nϵ-acetyltransferases), modify the side chain of specific lysines on histones and other proteins, a central process in regulating gene expression. Nα-terminal acetylation occurs on the ribosome where the α amino group of nascent polypeptides is acetylated by NATs (N-terminal acetyltransferase). In yeast, three different NAT complexes were identified NatA, NatB, and NatC. NatA is composed of two main subunits, the catalytic subunit Naa10p (Ard1p) and Naa15p (Nat1p). Naa50p (Nat5) is physically associated with NatA. In man, hNaa50p was shown to have acetyltransferase activity and to be important for chromosome segregation. In this study, we used purified recombinant hNaa50p and multiple oligopeptide substrates to identify and characterize an Nα-acetyltransferase activity of hNaa50p. As the preferred substrate this activity acetylates oligopeptides with N termini Met-Leu-Xxx-Pro. Furthermore, hNaa50p autoacetylates lysines 34, 37, and 140 in vitro, modulating hNaa50p substrate specificity. In addition, histone 4 was detected as a hNaa50p KAT substrate in vitro. Our findings thus provide the first experimental evidence of an enzyme having both KAT and NAT activities.  相似文献   

12.
N-terminal acetylation, catalysed by N-terminal acetyltransferases (NATs), is among the most common protein modifications in eukaryotes and involves the transfer of an acetyl group from acetyl-CoA to the α-amino group of the first amino acid. Functions of N-terminal acetylation include protein degradation and sub-cellular targeting. Recent findings in humans indicate that a dysfunctional Nα-acetyltransferase (Naa) 10, the catalytic subunit of NatA, the major NAT, is associated with lethality during infancy. In the present study, we identified the Danio rerio orthologue zebrafish Naa 10 (zNaa10). In vitro N-terminal acetylation assays revealed that zNaa10 has NAT activity with substrate specificity highly similar to that of human Naa10. Spatiotemporal expression pattern was determined by in situ hybridization, showing ubiquitous expression with especially strong staining in brain and eye. By morpholino-mediated knockdown, we demonstrated that naa10 morphants displayed increased lethality, growth retardation and developmental abnormalities like bent axis, abnormal eyes and bent tails. In conclusion, we identified the zebrafish Naa10 orthologue and revealed that it is essential for normal development and viability of zebrafish.  相似文献   

13.
Epithelial-mesenchymal transition (EMT) has been contributed to increase migration and invasion of cancer cells. However, the correlate of Naa10p and IKKα with EMT in oral squamous cell carcinoma (OSCC) is not yet fully understood. In our present study, we found N-α-acetyltransferase 10 protein (Naa10p) and IκB kinase α (IKKα) were abnormally abundant in oral squamous cell carcinoma (OSCC). Bioinformatic results indicate that the expression of Naa10p and IKKα is correlated with TGF-β1/Smad and EMT-related molecules. The Transwell migration, invasion, qRT-PCR and Western blot assay indicated that Naa10p repressed OSCC cell migration, invasion and EMT, whereas IKKα promoted TGF-β1–mediated OSCC cell migration, invasion and EMT. Mechanistically, Naa10p inhibited IKKα activation of Smad3 through the interaction with IKKα directly in OSCC cells after TGF-β1 stimulation. Notably, knockdown of Naa10p reversed the IKKα-induced change in the migration, invasion and EMT-related molecules in OSCC cells after TGF-β1 stimulation. These findings suggest that Naa10p interacted with IKKα mediates EMT in OSCC cells through TGF-β1/Smad, a novel pathway for preventing OSCC.  相似文献   

14.
N(α)-Acetyltransferases (NATs) cause the N(α)-acetylation of the majority of eukaryotic proteins during their translation, although the functions of this modification have been largely unexplored. In yeast (Saccharomyces cerevisiae), four NATs have been identified: NatA, NatB, NatC, and NatD. In this study, the N(α)-acetylation status of ribosomal protein was analyzed using NAT mutants combined with two-dimensional difference gel electrophoresis (2D-DIGE) and mass spectrometry (MS). A total of 60 ribosomal proteins were identified, of which 17 were N(α)-acetylated by NatA, and two by NatB. The N(α)-acetylation of two of these, S17 and L23, by NatA was not previously observed. Furthermore, we tested the effect of ribosomal protein N(α)-acetylation on protein synthesis using the purified ribosomes from each NAT mutant. It was found that the protein synthesis activities of ribosomes from NatA and NatB mutants were decreased by 27% and 23%, respectively, as compared to that of the normal strain. Furthermore, we have shown that ribosomal protein N(α)-acetylation by NatA influences translational fidelity in the presence of paromomycin. These results suggest that ribosomal protein N(α)-acetylation is necessary to maintain the ribosome's protein synthesis function.  相似文献   

15.
The majority of cytosolic proteins in eukaryotes contain a covalently linked acetyl moiety at their very N terminus. The mechanism by which the acetyl moiety is efficiently transferred to a large variety of nascent polypeptides is currently only poorly understood. Yeast N(alpha)-acetyltransferase NatA, consisting of the known subunits Nat1p and the catalytically active Ard1p, recognizes a wide range of sequences and is thought to act cotranslationally. We found that NatA was quantitatively bound to ribosomes via Nat1p and contained a previously unrecognized third subunit, the N(alpha)-acetyltransferase homologue Nat5p. Nat1p not only anchored Ard1p and Nat5p to the ribosome but also was in close proximity to nascent polypeptides, independent of whether they were substrates for N(alpha)-acetylation or not. Besides Nat1p, NAC (nascent polypeptide-associated complex) and the Hsp70 homologue Ssb1/2p interact with a variety of nascent polypeptides on the yeast ribosome. A direct comparison revealed that Nat1p required longer nascent polypeptides for interaction than NAC and Ssb1/2p. Delta nat1 or Delta ard1 deletion strains were temperature sensitive and showed derepression of silent mating type loci while Delta nat5 did not display any obvious phenotype. Temperature sensitivity and derepression of silent mating type loci caused by Delta nat1 or Delta ard1 were partially suppressed by overexpression of SSB1. The combination of data suggests that Nat1p presents the N termini of nascent polypeptides for acetylation and might serve additional roles during protein synthesis.  相似文献   

16.
17.
Epithelial‐mesenchymal transition (EMT) has been contributed to increase migration and invasion of cancer cells. However, the correlate of Naa10p and IKKα with EMT in oral squamous cell carcinoma (OSCC) is not yet fully understood. In our present study, we found N‐α‐acetyltransferase 10 protein (Naa10p) and IκB kinase α (IKKα) were abnormally abundant in oral squamous cell carcinoma (OSCC). Bioinformatic results indicate that the expression of Naa10p and IKKα is correlated with TGF‐β1/Smad and EMT‐related molecules. The Transwell migration, invasion, qRT‐PCR and Western blot assay indicated that Naa10p repressed OSCC cell migration, invasion and EMT, whereas IKKα promoted TGF‐β1–mediated OSCC cell migration, invasion and EMT. Mechanistically, Naa10p inhibited IKKα activation of Smad3 through the interaction with IKKα directly in OSCC cells after TGF‐β1 stimulation. Notably, knockdown of Naa10p reversed the IKKα‐induced change in the migration, invasion and EMT‐related molecules in OSCC cells after TGF‐β1 stimulation. These findings suggest that Naa10p interacted with IKKα mediates EMT in OSCC cells through TGF‐β1/Smad, a novel pathway for preventing OSCC.  相似文献   

18.
The co-translational modification of N-terminal acetylation is ubiquitous among eukaryotes and has been reported to have a wide range of biological effects. The human N-terminal acetyltransferase (NAT) Naa50p (NAT5/SAN) acetylates the α-amino group of proteins containing an N-terminal methionine residue and is essential for proper sister chromatid cohesion and chromosome condensation. The elevated activity of NATs has also been correlated with cancer, making these enzymes attractive therapeutic targets. We report the x-ray crystal structure of Naa50p bound to a native substrate peptide fragment and CoA. We found that the peptide backbone of the substrate is anchored to the protein through a series of backbone hydrogen bonds with the first methionine residue specified through multiple van der Waals contacts, together creating an α-amino methionine-specific pocket. We also employed structure-based mutagenesis; the results support the importance of the α-amino methionine-specific pocket of Naa50p and are consistent with the proposal that conserved histidine and tyrosine residues play important catalytic roles. Superposition of the ternary Naa50p complex with the peptide-bound Gcn5 histone acetyltransferase revealed that the two enzymes share a Gcn5-related N-acetyltransferase fold but differ in their respective substrate-binding grooves such that Naa50p can accommodate only an α-amino substrate and not a side chain lysine substrate that is acetylated by lysine acetyltransferase enzymes such as Gcn5. The structure of the ternary Naa50p complex also provides the first molecular scaffold for the design of NAT-specific small molecule inhibitors with possible therapeutic applications.  相似文献   

19.
Protein N(alpha)-terminal acetylation is a conserved and widespread protein modification in eukaryotes. Several studies have linked it to normal cell function and cancer development, but nevertheless, little is known about its biological function. In yeast, protein N(alpha)-terminal acetylation is performed by the N-acetyltransferase complexes NatA, NatB and NatC. In humans, only the NatA complex has been identified and characterized. In the present study we present the components of hNatB (human NatB complex). It consists of the Nat3p homologue hNAT3 (human N-acetyltransferase 3) and the Mdm20p homologue hMDM20 (human mitochondrial distribution and morphology 20). They form a stable complex and in vitro display sequence-specific N(alpha)-acetyltransferase activity on a peptide with the N-terminus Met-Asp-. hNAT3 and hMDM20 co-sediment with ribosomal pellets, thus supporting a model where hNatB acts co-translationally on nascent polypeptides. Specific knockdown of hNAT3 and hMDM20 disrupts normal cell-cycle progression, and induces growth inhibition in HeLa cells and the thyroid cancer cell line CAL-62. hNAT3 knockdown results in an increase in G(0)/G(1)-phase cells, whereas hMDM20 knockdown decreased the fraction of cells in G(0)/G(1)-phase and increased the fraction of cells in the sub-G(0)/G(1)-phase. In summary, we show for the first time a vertebrate NatB protein N(alpha)-acetyltransferase complex essential for normal cell proliferation.  相似文献   

20.
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号