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PA、PB1和PB2以及NS1蛋白作为甲型流感病毒的非结构蛋白,虽然不直接参与病毒颗粒的组装,但是在病毒的复制周期中起到非常重要的调控作用.由PA、PB1和PB2组成的RNA聚合酶主要参与病毒mRNA的合成以及病毒基因组RNA的复制,而NS1蛋白则通过抑制宿主细胞的干扰素应激系统来拮抗宿主的抗病毒反应.通过研究甲型流感病毒非结构蛋白的结构与功能,对了解流感病毒复制及开发新型抗流感病毒药物有重要意义.  相似文献   

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RNA聚合酶是由PA、PB1和PB2三个亚基构成的蛋白质复合物,在流感病毒基因组的转录复制过程中发挥着重要作用。随着研究的不断深入,RNA聚合酶已经成为抗流感病毒药物重要的靶点。本文介绍了RNA聚合酶各个亚基结构、功能以及RNA聚合酶抑制剂的研究进展。  相似文献   

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流感病毒RNA聚合酶的分离与纯化   总被引:4,自引:0,他引:4  
流感病毒的RNA词是由3个亚基组成的复合物,这3个亚基统称为3P蛋白,分别由2个碱性亚基PBI、PBZ和1个酸性亚基PA组成。在病毒体内,3P与IUqA形成较紧密的3P-RNA复合物,该复合物又往往与NP形成核蛋白体(ribonu-cleoProteinRNP)。3P与RNA及3P-RNA与NP之间结合都比较紧密,三者之间不易被分离。本文用不同介质组合的分步密度梯度超速离心法成功地将3P与RNA及NP分离开来,获得了较纯的3P蛋白,为进一步研究流感病毒RNA铜的结构和功能奠定了基础。1材料与方法1.亚病零培养及病毒粒子分离4k.xH验所用病毒为甲型流感病…  相似文献   

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质粒介导的核衣壳蛋白siRNA干扰A型流感病毒复制的研究   总被引:1,自引:0,他引:1  
A型流感病毒(Influenza virus)属于正粘病毒科流感病毒属,可引起鸟类、多种禽类、人类和低等哺乳动物的严重疾病[1],该病毒基因组为负链单股RNA病毒, 分8个节段,容易引起抗原漂移和抗原变异,现有的疫苗和药物不能有效的控制该病毒感染.  相似文献   

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A型流感病毒(Influenzavirus)属于正粘病毒科流感病毒属,可引起鸟类、多种禽类、人类和低等哺乳动物的严重疾病[1],该病毒基因组为负链单股RNA病毒,分8个节段,容易引起抗原漂移和抗原变异,现有的疫苗和药物不能有效的控制该病毒感染。RNA干扰是由双链RNA(dsRNA)引发的信使RNA(mRNA)序列特异性消减现象,是一种保守的抗病毒机制,已发现于线虫、植物和哺乳动物中[2]。自然发生的RNAi是由一种dsRNA特异的的核酸内切酶Dicer RDE1引发的,它将dsRNA切割成21~23nt的小分子干扰RNA片断(small interferenceRNA,siRNA),siRNA再与某…  相似文献   

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A型流感病毒是正粘病毒科成员,为单股负链分节段RNA病毒,全基因组由八个节段组成,分别编码八种结构蛋白(PB2、PB1、PA、HA、NP、NA、M1和M2)和两种非结构蛋白(NS1和NS2).核蛋白(NP)和RNA聚合酶复合体与病毒的八个RNA节段组成八个螺旋丝状的病毒核衣壳(RNP),核衣壳被双层类脂膜包裹,脂膜内为基质蛋白(M1)层,膜上镶嵌着HA、NA和M2三种膜蛋白.HA和NA为流感病毒的主要抗原.根据HA和NA抗原性的差异,A型流感病毒可分16个HA亚型和9个NA亚型[1].A型流感病毒具有广泛的宿主范围和超强的重组变异能力,对人类健康的威胁日趋严重,引起各国政府和科技工作者的广泛关注.研究RNA聚合酶的功能、揭示病毒复制和变异机理是目前抗流感病毒感染研究的热点之一.本文综述了流感病毒RNA聚合酶及其对病毒基因组复制和转录调控的研究进展.  相似文献   

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A型流感病毒是正粘病毒科成员,为单股负链分节段RNA病毒,全基因组由八个节段组成,分别编码八种结构蛋白(PB2、PB1、PA、HA、NP、NA、M1和M2)和两种非结构蛋白(NS1和NS2)。核蛋白(NP)和RNA聚合酶复合体与病毒的八个RNA节段组成八个螺旋丝状的病毒核衣壳(RNP),核衣壳被双层类脂膜包裹,脂膜内为基质蛋白(M1)层,膜上镶嵌着HA、NA和M2三种膜蛋白。HA和NA为流感病毒的主要抗原。根据HA和NA抗原性的差异,A型流感病毒可分16个HA亚型和9个NA亚型[1]。A型流感病毒具有广泛的宿主范围和超强的重组变异能力,对人类健康的威胁日趋…  相似文献   

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甲型流感病毒在人类和家畜动物中引起周期性大暴发。1918-1919年流感大流行感染了几亿人,导致5千万人死亡。近期,从冻存的1918人类肺组织中扩增出的1918流感病毒基因,种系发展分析显示:其蛋白序列与禽流感病毒同源性很高,仅存在少数氨基酸的差异。流感病毒的RNA聚合酶异三聚体聚合酶复合物(PA、PB1、PB2)与病毒在宿主细胞中复制有关,并在病毒的宿主特异性中发挥作用。  相似文献   

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流感病毒是一种重要人畜共患病,严重危害人类健康和畜牧业发展。A型流感病毒(Influenza A Virus, IAV)在宿主细胞内的复制受到多种因素的影响和调节,近年来的研究证明,非编码RNA(ncRNA),包括miRNA、LncRNA、CirRNA等,在流感病毒复制过程中起到重要的调控作用。ncRNA调控流感病毒复制有直接途径和间接途径两种,其中直接途径为直接作用于病毒的vRNA或mRNA,在转录或翻译水平影响病毒的复制。间接途径为作用于细胞内不同的信号通路,通过影响细胞因子合成、诱导宿主细胞凋亡、引起细胞自噬反应等途径,影响病毒的复制。通常情况下,由宿主编码的ncRNA能够抑制病毒的复制,而由病毒编码的ncRNA能够减弱宿主细胞的抗病毒反应,促进病毒复制。通过总结和梳理近年来关于ncRNA调控流感病毒复制的研究,我们发现ncRNA能够作为调控增强宿主细胞抗病毒免疫、下调病毒转录和翻译的工具,有望开发成为抗流感病毒靶向药物。后续的机制研究应不局限于某一种或几种ncRNA的作用,而应在ncRNA在宿主细胞内的分泌机制、调控的分子网络等方面进行深层次的探究。  相似文献   

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Influenza A virus is one of the major pathogens that pose a large threat to human health worldwide and has caused pandemics.Influenza A virus is the Orthomyxoviridae prototype,and has 8 segmented negat...  相似文献   

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Kawaguchi A  Nagata K 《The EMBO journal》2007,26(21):4566-4575
By dissecting and reconstituting a cell-free influenza virus genome replication system, we have purified and identified the minichromosome maintenance (MCM) complex, which is thought to be a DNA replicative helicase, as one of the host factors that regulate the virus genome replication. MCM interacted with the PA subunit of the viral RNA-dependent RNA polymerase that is found to be involved in the replication genetically. The virus genome replication was decreased in MCM2 knockdown cells. The viral polymerase appeared to be a nonproductive complex, that is, it was capable of initiating replication but produced only abortive short RNA chains. MCM stimulated de novo-initiated replication reaction by stabilizing a replication complex during its transition from initiation to elongation. Based on the findings, including the result that the MCM-mediated RNA replication reaction was competed with exogenously added RNA, we propose that MCM functions as a scaffold between the nascent RNA chains and the viral polymerase.  相似文献   

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The influenza virus is one of the major public health threats. However, the development of efficient vaccines and therapeutic drugs to combat this virus is greatly limited by its frequent genetic mutations. Because of this, targeting the host factors required for influenza virus replication may be a more effective strategy for inhibiting a broader spectrum of variants. Here, we demonstrated that inhibition of a motor protein kinesin family member 18A (KIF18A) suppresses the replication of the influenza A virus (IAV). The expression of KIF18A in host cells was increased following IAV infection. Intriguingly, treatment with the selective and ATP-competitive mitotic kinesin KIF18A inhibitor BTB-1 substantially decreased the expression of viral RNAs and proteins, and the production of infectious viral particles, while overexpression of KIF18A enhanced the replication of IAV. Importantly, BTB-1 treatment attenuated the activation of AKT, p38 MAPK, SAPK and Ran-binding protein 3 (RanBP3), which led to the prevention of the nuclear export of viral ribonucleoprotein complexes. Notably, administration of BTB-1 greatly improved the viability of IAV-infected mice. Collectively, our results unveiled a beneficial role of KIF18A in IAV replication, and thus, KIF18A could be a potential therapeutic target for the control of IAV infection.  相似文献   

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Influenza virus RNA‐dependent RNA polymerase is a multi‐functional heterotrimer, which uses a ‘cap‐snatching’ mechanism to produce viral mRNA. Host cell mRNA is cleaved to yield a cap‐bearing oligonucleotide, which can be extended using viral genomic RNA as a template. The cap‐binding and endonuclease activities are only activated once viral genomic RNA is bound. This requires signalling from the RNA‐binding PB1 subunit to the cap‐binding PB2 subunit, and the interface between these two subunits is essential for the polymerase activity. We have defined this interaction surface by protein crystallography and tested the effects of mutating contact residues on the function of the holo‐enzyme. This novel interface is surprisingly small, yet, it has a crucial function in regulating the 250 kDa polymerase complex and is completely conserved among avian and human influenza viruses.  相似文献   

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The cuprizone (CPZ) model has been widely used for the studies of de-and remyelination. The CPZ-exposed mice show oligodendrocyte precursor cells (OPCs) increase and mature oligodendrocytes decrease, suggesting an imbalance between proliferation and differentiation of OPCs. In the first experiment of this study, we examined the expression of cell cycle related genes in brains of mice following CPZ administration for 5 weeks by means of microarray assay. In addition, we performed a double labeling of BrdU and Ki-67 to calculate cell cycle exit index in the mice. Our results showed that CPZ administration up-regulated the expression of 16 cell cycle related genes, but down-regulated the expression of only one in the prefrontal cortex (PFC) of mice compared to control group. The treatment inhibited potential precursor cells exit from cell cycle. In the second experiment, we evaluated effects of a CDK inhibitor flavopiridol (FLA) on CPZ-induced neuropathological changes and spatial working memory impairment in mice.FLA treatment for one week effectively attenuated the CPZ-induced increases in NG2 positive cells, microglia and astrocytes, alleviated the concurrent mature oligodendrocyte loss and myelin breakdown, and improved spatial working memory deficit in the CPZ-exposed mice. These results suggest that CPZ-induced neuropathological changes involve in dysregulation of cell cycle related genes. The therapeutic effects of FLA on CPZ-exposed mice may be related to its ability of cell cycle inhibition.  相似文献   

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Intracellular events that take place during influenza virus replication in animal cells are well understood qualitatively. However, to better understand the complex interaction of the virus with its host cell and to quantitatively analyze the use of cellular resources for virion formation or the overall dynamic for the entire infection cycle, a mathematical model for influenza virus replication has to be formulated. Here, we present a structured model for the single-cell reproductive cycle of influenza A virus in animal cells that accounts for the individual steps of the process such as attachment, internalization, genome replication and translation, and progeny virion assembly. The model describes an average cell surrounded by a small quantity of medium and infected by a low number of virus particles. The model allows estimation of the cellular resources consumed by virus replication. Simulation results show that the number of cellular surface receptors and endosomes, as well as other resources, such as the number of free nucleotides or amino acids, is not significantly influenced by influenza virus propagation. A factor that limits the growth rate of progeny viruses and their release is the total amount of matrix proteins (M1) in the nucleus while other newly synthesized viral proteins (e.g., nucleoprotein NP) and viral RNAs accumulate. During budding, synthesis of vRNPs (viral ribonucleoprotein complexes) represents another limiting factor. Based on this model it is also possible to analyze effects of parameter changes on the dynamics of virus replication, to identify possible targets for molecular engineering, or to develop strategies for improving yields in vaccine production processes. Furthermore, a better insight into the interactions of viruses and host cells might help to improve our understanding of virus-related diseases and to develop therapies.  相似文献   

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Liao TL  Wu CY  Su WC  Jeng KS  Lai MM 《The EMBO journal》2010,29(22):3879-3890
Influenza A virus RNA replication requires an intricate regulatory network involving viral and cellular proteins. In this study, we examined the roles of cellular ubiquitinating/deubiquitinating enzymes (DUBs). We observed that downregulation of a cellular deubiquitinating enzyme USP11 resulted in enhanced virus production, suggesting that USP11 could inhibit influenza virus replication. Conversely, overexpression of USP11 specifically inhibited viral genomic RNA replication, and this inhibition required the deubiquitinase activity. Furthermore, we showed that USP11 interacted with PB2, PA, and NP of viral RNA replication complex, and that NP is a monoubiquitinated protein and can be deubiquitinated by USP11 in vivo. Finally, we identified K184 as the ubiquitination site on NP and this residue is crucial for virus RNA replication. We propose that ubiquitination/deubiquitination of NP can be manipulated for antiviral therapeutic purposes.  相似文献   

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