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1.
NS1蛋白是流感病毒编码的一种小分子多功能蛋白,可在病毒的复制过程中抑制宿主细胞的抗病毒免疫应答。为研究不同亚型流感病毒的NS1蛋白在细胞内的定位差异,分别用H1N1亚型WSN、PR8和CA04毒株,H9N2亚型SD毒株及H7N9亚型AH01毒株感染A549、MDCK细胞系以及构建的可表达不同亚型流感病毒NS1蛋白的p CMV-Myc-NS1质粒转染293T细胞,用激光共聚焦显微镜观察发现不同亚型流感病毒在不同细胞系和时间点的定位差异,感染后24 h时WSN和PR8毒株的NS1主要定位于细胞质中,而CA04和SD毒株主要定位于细胞核内。另外,观察过表达的WSN、SD和AH01毒株NS1的细胞定位,转染后24 h时WSN毒株NS1定位于细胞质中,而SD和AH01毒株主要定位于细胞核中。经氨基酸序列比对,对WSN毒株NS1蛋白进行关键氨基酸点突变,结果显示单一位点的改变未导致NS1蛋白细胞定位的改变,其细胞定位的差异不是由单一位点决定的。综上所述,分析不同亚型中的NS1的定位差异,这对进一步了解NS1蛋白同宿主细胞不同区域的蛋白的相互作用、流感病毒的调节机制以及病毒感染细胞中天然免疫反应具有一定的指导意义。  相似文献   

2.
非结构蛋白1(nonstructural protein1,NS1)是甲型流感病毒一种重要的调控蛋白,与病毒的毒力密切相关,本文检测了不同亚型流感病毒NS1蛋白在酵母菌细胞中的基因转录激活能力,将携带NS1基因的诱饵载体与空的猎物载体共转化AH109和Y187酵母菌细胞,观察AH109在QDO培养基上的生长情况,以X-α-gal为底物检测其分泌α-半乳糖苷酶的能力;通过ONPG实验定量分析Y187酵母菌细胞β-半乳糖苷酶活性的强弱,结果发现转化H1N1,H5N1和H9N2亚型流感病毒NS1基因的AH109酵母菌细胞能够在QDO培养基上生长,并分泌高水平的α-半乳糖苷酶,同时这些基因转化的Y187酵母菌细胞具有很强的β-半乳糖苷酶活性,与此相反,H3N2亚型流感病毒NS1基因转化AH109和Y187后,上述实验结果均为阴性,这说明H1N1,H5N1和H9N2亚型的NS1蛋白具有刺激酵母菌细胞基因转录的功能,而H3N2亚型的NS1蛋白缺乏这种能力,表明NS1蛋白型别的不同可造成其生物学活性的差异。  相似文献   

3.
目的:对2013年3月发生的感染人的新型H7N9亚型禽流感病毒的非结构蛋白1(NS1)基因序列进行同源性分析,构建NS1重组质粒并表达。方法:从GenBank获得2006~2013年不同来源的H7N9亚型病毒NS1序列,并进行同源性比较;利用PCR方法从H7N9亚型禽流感病毒株A/Shanghai/4664T/2013(H7N9)基因组cDNA中扩增得到全长NS1基因,并将该片段定向克隆到原核表达载体pET28a上,构建重组质粒pET28a-NS1,经酶切鉴定,将重组质粒转化大肠杆菌BL21(DE3)感受态细胞后,IPTG诱导表达,且进行Western印迹分析。结果:经序列分析,2013年暴发的H7N9型禽流感病毒的NS1基因核苷酸序列同源性为95%~100%,与之前暴发的H7N9型流感病毒NS1基因序列的同源性为86.4%~90.7%,表明2次暴发的该型流感分离株属于不同的进化分支;PCR扩增得到约680 bp的NS1基因序列,所克隆的NS1基因在原核细胞中的表达产物主要以包涵体形式存在,SDS-PAGE检测结果表明重组蛋白相对分子质量为25×103,Western印迹分析证实表达产物为H7N9禽流感病毒NS1蛋白。结论:为进一步研究H7N9亚型流感病毒NS1蛋白功能及基于NS1蛋白的抗病毒药物奠定了基础。  相似文献   

4.
禽流感病毒H5N1 NS1蛋白是一种非结构蛋白,在病毒感染过程中发挥着重要的作用.构建基因截短的重组蛋白,可为进一步研究NS1不同结构域与宿主蛋白间的相互作用奠定基础.在成功克隆禽流感病毒H5N1全长NS1基因并测序的基础上,将部分截短基因序列克隆到表达栽体pET28a(+)上,构建基因截短的重组表达质粒pET28a-NS1-RBD和pET28a-NS1-ED,转化大肠埃希菌BL21(DE3),阳性重组质粒经IPTG诱导表达后进行SDS-PAGE检测,获得预期蛋白的表达,然后利用Ni-NTA树脂蛋白纯化系统对重组蛋白进行纯化,并通过Western Blotting进一步确认NS1及截短体蛋白的表达.结果表明,实验成功构建禽流感病毒H5N1亚型的NS1蛋白截短体,并在大肠埃希菌中高效表达,这为进一步研究NS1蛋白不同结构域与宿主蛋白的相互作用提供了实验材料,为深入研究NS1蛋白的生物学功能奠定了坚实基础.  相似文献   

5.
李丽  徐可  孙兵 《生命的化学》2008,28(3):237-241
A型流感病毒非结构蛋白1(nonstructural protein l, NS1)全长约为230个氨基酸,主要包括两个功能结构域,即 N-末端的RNA结合结构域和C-末端的效应结构域.NS1是一个多功能病毒蛋白,它不仅影响着该病毒其他基因的表达,更能通过与宿主细胞多种因子的相互作用干预宿主细胞的正常功能,抵抗宿主的抗病毒系统.因此, NS1被认为是A型流感病毒的一个重要毒力因子.本文综述了 NS1蛋白与宿主相互作用的最新研究进展,为进一步揭示NS1 蛋白的功能提供了参考.  相似文献   

6.
A型流感病毒的NS1(Nonstructurol 1 protein,NS1)蛋白是病毒复制、毒力等的重要调节蛋白.运用RT-PCR方法扩增A/Beijing/501/2009(H1N1)流感病毒NS1基因,克隆至真核表达载体pCMV-HA,用Lipofectamine2000将线性化pCMV-HA-NS1与neo基因共同转染A549细胞,通过G418筛选获得阳性重组细胞,并采用PCR、RT-PCR、Western blot技术检测重组细胞中NS1蛋白的表达,通过免疫荧光技术观察NS1蛋白在细胞中的定位.PCR、RT-PCR检测显示NS1基因成功整合进入细胞基因组,并转录为mRNA;Western blot检测显示重组细胞系稳定表达NS1蛋白,免疫荧光显示NS1蛋白定位于细胞核内.表明通过G418筛选,成功构建稳定表达NS1蛋白的重组A549-HA-NS1细胞系,且NS1蛋白定位于细胞核内,为进一步研究NS1蛋白的生物学功能奠定基础.  相似文献   

7.
华南流感病毒NS1基因特性研究   总被引:7,自引:0,他引:7  
为了解H9N2和H5N1亚型流行性感冒病毒株的NS1基因特性,采用RT-PCR方法测定了12株2000~2003年间在华南地区分离的禽流感病毒株的NS1基因核苷酸序列. 测序显示6株H9N2亚型流感病毒NS1基因开放阅读框(ORF)长654 bp,编码217个氨基酸. 6株H5N1亚型毒株NS1基因ORF长678 bp,编码225个氨基酸. 核苷酸和氨基酸同源性分析表明,同一亚型分离株之间有很高的同源性,而不同亚型的H9N2和H5N1毒株之间存在较大差异. BLAST分析表明,H5N1和H9N2亚型流感病毒分离株的NS1基因分别与近两年从香港特区和华南地区的鸭中分离的毒株A/Duck/Hong Kong/646.3/01 (H5N1)、A/Duck/Shantou/2143/01 (H9N2)有很高的亲缘关系. 该研究结果为进一步进行NS1功能研究奠定了基础.  相似文献   

8.
通过RT-PCR的方法克隆H5N1亚型禽流感病毒NS1基因,并构建了真核表达载体pCMV-Myc/NS1。将此真核表达质粒转染肺腺癌细胞A549,48 h后,经Western印迹检测,NS1基因能在细胞中正确表达。经荧光显微镜、透射电镜观察和流式细胞仪检测,发现该株流感病毒的NS1蛋白可诱导肺腺癌细胞A549凋亡。  相似文献   

9.
禽流感病毒NS1蛋白对细胞的影响   总被引:1,自引:0,他引:1  
NS1蛋白为流感病毒非结构蛋白,只在病毒侵入宿主细胞后产生.目前NS1蛋白对细胞整体水平上的作用仍不清楚,为了解NS1蛋白在病毒感染细胞中的作用,构建了重组质粒pCMV-myc-NS1并将其转染A549细胞,利用双向电泳技术检测了受NS1蛋白调控的宿主蛋白,以期从蛋白质组水平上研究禽流感病毒与宿主细胞间的相互作用.同时,还检测了转染NS1对细胞增殖和细胞周期的影响.结果显示,NS1在细胞中的表达,能够明显引起宿主细胞代谢的变化,并通过阻滞细胞周期的正常进行而减缓细胞的增殖.  相似文献   

10.
目的:克隆H5N1亚型禽流感病毒的NS1基因,并分析其序列特性。方法:通过RT-PCR方法克隆H5N1亚型禽流感病毒NS1基因,并对该基因片段进行测序,将此序列与数据库中不同时间、地点、宿主来源的H5N1亚型流感毒株NS1基因序列进行同源性比较。结果:获得了678bp的NS1全长基因,可编码225个氨基酸;其与毒株A/chicken/Jilin/hq/2003的同源性最高,二者的核酸和氨基酸的同源性分别为99.7%和99.1%。比对分析发现,该毒株NS1基因在第238-252位有15个核苷酸的缺失;进化树分析表明,它与1997年香港流行的H5N1亚型禽流感病毒毒株分别属于2个不同的分支。结论:克隆了一株H5N1亚型禽流感病毒的NS1基因,并初步分析了其序列特性,为进一步研究NS1基因的功能奠定了基础。  相似文献   

11.
Yu J  Li X  Wang Y  Li B  Li H  Li Y  Zhou W  Zhang C  Wang Y  Rao Z  Bartlam M  Cao Y 《PloS one》2011,6(5):e19511
The multi-functional NS1 protein of influenza A virus is a viral virulence determining factor. The last four residues at the C-terminus of NS1 constitute a type I PDZ domain binding motif (PBM). Avian influenza viruses currently in circulation carry an NS1 PBM with consensus sequence ESEV, whereas human influenza viruses bear an NS1 PBM with consensus sequence RSKV or RSEV. The PBM sequence of the influenza A virus NS1 is reported to contribute to high viral pathogenicity in animal studies. Here, we report the identification of PDlim2 as a novel binding target of the highly pathogenic avian influenza virus H5N1 strain with an NS1 PBM of ESEV (A/Chicken/Henan/12/2004/H5N1, HN12-NS1) by yeast two-hybrid screening. The interaction was confirmed by in vitro GST pull-down assays, as well as by in vivo mammalian two-hybrid assays and bimolecular fluorescence complementation assays. The binding was also confirmed to be mediated by the interaction of the PDlim2 PDZ domain with the NS1 PBM motif. Interestingly, our assays showed that PDlim2 bound specifically with HN12-NS1, but exhibited no binding to NS1 from a human influenza H1N1 virus bearing an RSEV PBM (A/Puerto Rico/8/34/H1N1, PR8-NS1). A crystal structure of the PDlim2 PDZ domain fused with the C-terminal hexapeptide from HN12-NS1, together with GST pull-down assays on PDlim2 mutants, reveals that residues Arg16 and Lys31 of PDlim2 are critical for the binding between PDlim2 and HN12-NS1. The identification of a selective binding target of HN12-NS1 (ESEV), but not PR8-NS1 (RSEV), enables us to propose a structural mechanism for the interaction between NS1 PBM and PDlim2 or other PDZ-containing proteins.  相似文献   

12.
The influenza A virus NS1 protein contains a conserved 4-amino-acid-residue PDZ-ligand binding motif (PBM) at the carboxyl terminus that can function as a virulence determinant by targeting cellular PDZ proteins. The NS1 proteins from avian and human viral isolates have consensus PBM sequences ESEV and RSKV, respectively. Currently circulating highly pathogenic H5N1 viruses contain the ESEV PBM which specifically associates with the PDZ proteins Scribble, Dlg1, MAGI-1, MAGI-2, and MAGI-3. In this study, we found NS1 proteins from viral isolates that contain the PBM sequence RSKV, KSEV, or EPEV are unable to associate with these PDZ proteins. Other results showed that the ESEV PBM mediates an indirect association with PDZ protein, Lin7C, via an interaction with Dlg1. Infection with a virus that expresses a NS1 protein with the ESEV PBM results in colocalization of NS1, Scribble, and Dlg1 within perinuclear puncta and mislocalization of plasma membrane-associated Lin7C to the cytoplasm. Infection of polarized MDCK cells with the ESEV virus additionally results in functional disruption of the tight junction (TJ) as measured by altered localization of TJ markers ZO-1 and Occludin, decreased transepithelial electrical resistance, and increased fluorescein isothiocyanate (FITC)-inulin diffusion across the polarized cell monolayer. A similar effect on the TJ was observed in MDCK cells depleted for either Scribble or Dlg1 by small interfering RNA (siRNA). These findings indicate that ESEV PBM-mediated binding of NS1 to Scribble and Dlg1 functions to disrupt the cellular TJ and that this effect likely contributes to the severe disease associated with highly pathogenic H5N1 influenza A viruses.  相似文献   

13.
Non-structural protein 1 (NS1) of the influenza virus plays a crucial role in modulating the host immune response and facilitating virus replication. The formation of a homodimer or an oligomer is necessary for NS1 to exert its function efficiently. In the present study, the NS1 protein from the A/Shantou/602/06(H3N2) virus (herein abbreviated as NS32) was found to interact with NS1 from A/Shantou/169/06(H1N1), A/Chicken/Guangdong/1/05(H5N1) and A/Quail/Hong Kong/G1/97(H9N2) (abbreviated as NS11, NS51 and NS92, respectively) viruses, although NS32 shares 17.4%?C20.9% sequence diversity with NS11, NS51 and NS92. This indicates that the heterologous interactions between NS1 proteins from different influenza A virus subtypes/ strains may be a common event during co-infection.  相似文献   

14.
利用RT-PCR方法,从人H5N1亚型禽流感病毒安徽株扩增到了NS1基因,对其进行了克隆、序列测定和分析,并在原核系统高效表达和纯化了NS1蛋白。进化分析表明,A/Anhui/01/2005毒株与近些年国内分离的水禽H5N1病毒进化关系更为接近。NS1与福建、湖南分离的禽流感病毒同源性最高,分别达到99.1%和98.2%。序列分析表明,与病毒的致病性相关的92位氨基酸为Asp,与病毒的细胞因子抗性相关的80~84位氨基酸发生缺失,与断裂/多聚腺苷酸化特异性因子结合的基序改变为GFEWN,和病毒致死性相关的PL基序为ESEV。随后在大肠杆菌高效表达并纯化了NS1蛋白。NS1基因及其编码产物的特性分析以及在原核系统的表达,为进一步研究NS1的致病机制和抗病毒药物研制奠定了基础。  相似文献   

15.
The non-structural protein (NS1) of influenza A viruses (IAV) performs multiple functions during viral infection. NS1 contains two nuclear localization signals (NLS): NLS1 and NLS2. The NS1 protein is located predominantly in the nucleus during the early stages of infection and subsequently exported to the cytoplasm. A nonsense mutation that results in a large deletion in the carboxy-terminal region of the NS1 protein that contains the NLS2 domain was found in some IAV subtypes, including highly pathogenic avian influenza (HPAI) H7N9 and H5N1 viruses. We introduced different mutations into the NLS domains of NS1 proteins in various strains of IAV, and demonstrated that mutation of the NLS2 region in the NS1 protein of HPAI H5N1 viruses severely affects its nuclear localization pattern. H5N1 viruses expressing NS1 protein that is unable to localize to the nucleus are less potent in antagonizing cellular antiviral responses than viruses expressing wild-type NS1. However, no significant difference was observed with respect to viral replication and pathogenesis. In contrast, the replication and antiviral defenses of H1N1 viruses are greatly attenuated when nuclear localization of the NS1 protein is blocked. Our data reveals a novel functional plasticity for NS1 proteins among different IAV subtypes.  相似文献   

16.
T Wolff  R E O'Neill    P Palese 《Journal of virology》1996,70(8):5363-5372
The yeast interaction trap system was used to identify, NS1-I (for NS1 interactor), which is a human protein that binds to the nonstructural NS1 protein of the influenza A virus. NS1-I is a human homolog of the porcine 17beta-estradiol dehydrogenase precursor protein, to which it is 84% identical. We detected only one NS1-I mRNA species, of about 3.0 kb, in HeLa cells, and the NS1-I cDNA was found to have a coding capacity for a 79.6-kDa protein. However, immunoblot analysis detected predominantly a 55-kDa protein in human cells, suggesting that NS1-I, like the porcine 17beta-estradiol dehydrogenase, is posttranslationally processed. Using an in vitro coprecipitation assay, we showed that NS1-I interacts with NS1 proteins from extracts of cells infected with five different influenza A virus strains as well as with the NS1 of an influenza B virus. The fact that influenza A and influenza B virus NS1 proteins bind to NS1-I suggests that this cellular protein plays a role in the influenza virus life cycle.  相似文献   

17.
18.
Type I interferons (IFNs) function as the first line of defense against viral infections by modulating cell growth, establishing an antiviral state and influencing the activation of various immune cells. Viruses such as influenza have developed mechanisms to evade this defense mechanism and during infection with influenza A viruses, the non-structural protein 1 (NS1) encoded by the virus genome suppresses induction of IFNs-α/β. Here we show that expression of avian H5N1 NS1 in HeLa cells leads to a block in IFN signaling. H5N1 NS1 reduces IFN-inducible tyrosine phosphorylation of STAT1, STAT2 and STAT3 and inhibits the nuclear translocation of phospho-STAT2 and the formation of IFN-inducible STAT1:1-, STAT1:3- and STAT3:3- DNA complexes. Inhibition of IFN-inducible STAT signaling by NS1 in HeLa cells is, in part, a consequence of NS1-mediated inhibition of expression of the IFN receptor subunit, IFNAR1. In support of this NS1-mediated inhibition, we observed a reduction in expression of ifnar1 in ex vivo human non-tumor lung tissues infected with H5N1 and H1N1 viruses. Moreover, H1N1 and H5N1 virus infection of human monocyte-derived macrophages led to inhibition of both ifnar1 and ifnar2 expression. In addition, NS1 expression induces up-regulation of the JAK/STAT inhibitors, SOCS1 and SOCS3. By contrast, treatment of ex vivo human lung tissues with IFN-α results in the up-regulation of a number of IFN-stimulated genes and inhibits both H5N1 and H1N1 virus replication. The data suggest that NS1 can directly interfere with IFN signaling to enhance viral replication, but that treatment with IFN can nevertheless override these inhibitory effects to block H5N1 and H1N1 virus infections.  相似文献   

19.
The influenza A virus NS1 protein, a virus-encoded alpha/beta interferon (IFN-alpha/beta) antagonist, appears to be a key regulator of protein expression in infected cells. We now show that NS1 protein expression results in enhancement of reporter gene activity from transfected plasmids. This effect appears to be mediated at the translational level, and it is reminiscent of the activity of the adenoviral virus-associated I (VAI) RNA, a known inhibitor of the antiviral, IFN-induced, PKR protein. To study the effects of the NS1 protein on viral and cellular protein synthesis during influenza A virus infection, we used recombinant influenza viruses lacking the NS1 gene (delNS1) or expressing truncated NS1 proteins. Our results demonstrate that the NS1 protein is required for efficient viral protein synthesis in COS-7 cells. This activity maps to the amino-terminal domain of the NS1 protein, since cells infected with wild-type virus or with a mutant virus expressing a truncated NS1 protein-lacking approximately half of its carboxy-terminal end-showed similar kinetics of viral and cellular protein expression. Interestingly, no major differences in host cell protein synthesis shutoff or in viral protein expression were found among NS1 mutant viruses in Vero cells. Thus, another viral component(s) different from the NS1 protein is responsible for the inhibition of host protein synthesis during viral infection. In contrast to the earlier proposal suggesting that the NS1 protein regulates the levels of spliced M2 mRNA, no effects on M2 protein accumulation were seen in Vero cells infected with delNS1 virus.  相似文献   

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