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1.
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   

2.
我国部分鸡源H9N2亚型流感病毒NS1基因序列分析   总被引:4,自引:0,他引:4  
对1996年至2001年间自我国部分养鸡场发病鸡或死亡鸡分离鉴定的8株H9N2亚型禽流感病毒的非结构蛋白基因(NS1)进行了扩增和序列测定,并分析和比较了其核苷酸和氨基酸的同源性。结果表明, NS1基因核苷酸和氨基酸同源性分别为96.5%~99.5% 和94.5~98.6%, 说明NS1基因在遗传进化上高度保守,稳定遗传。与中国香港、韩国、巴基斯坦及人源H9N2分离株相比较,发现中国大陆的鸡源H9N2分离株的NS1基因在其羧基端缺少13个氨基酸。系统进化树分析表明,该8株病毒的NS1基因属于相同的进化分支,而且中国的早年分离株A/chicken/Beijing/1/94位于该进化分支的根部,暗示这些分离株的NS1基因是由A/chicken/Beijing/1/94演化而来;尚未发现NS1基因属于A/quail/Hong Kong/G1/97like分支的分离株。同时,系统进化树也说明了我国的H9N2分离株与韩国、巴基斯坦等地的H9N2分离株隶属于不同的进化分支,H9N2亚型禽流感的发生和流行与地域有一定的相关性。  相似文献   

3.
禽流感病毒H5N1亚型NS1基因在大肠杆菌中的表达   总被引:3,自引:0,他引:3  
目的表达H5N1亚型禽流感病毒(AIV)NS1蛋白,用于AIV感染与注射灭活疫苗鸡的鉴别诊断和NS1蛋白功能研究。方法采用RT_PCR方法对H5N1亚型AIVNS1基因进行扩增,将PCR产物克隆于pGEM_T_easy载体,将该基因插入pGEX_4T_1中构建NS1基因原核表达载体,转化BL21大肠杆菌后,在IPTG诱导下表达NS1蛋白,Westernblot鉴定表达NS1蛋白。结果成功克隆H5N1亚型AIV的NS1基因,其核苷酸序列长度为690bp,编码230个氨基酸残基。构建NS1基因原核表达载体在大肠杆菌内表达出约51×103的NS1融合蛋白。Westernblot鉴定表明表达NS1蛋白与H7N2AIV感染鸡血清有反应性。结论在大肠杆菌中成功表达了H5N1亚型AIVNS1基因蛋白,具有与感染H7N2亚型AIV阳性血清反应原性。  相似文献   

4.
华南流感病毒NS1基因特性研究   总被引:7,自引:0,他引:7       下载免费PDF全文
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   

5.
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   

6.
利用RT-PCR方法,扩增了1998~2005年间分离的9株H9N2亚型禽流感病毒的NS1基因,对其进行了序列测定和进化分析.序列分析表明,9株AIV NS1基因完整的阅读框均为654bp,编码217个氨基酸,其核苷酸和推导的氨基酸同源性分别为95.4%~99.8%和93.6%~100%;9株病毒的NS1蛋白的C端均有13个氨基酸的缺失;进化分析表明,9株AIV属于A群,且形成一个独立分支,在该分支中,只有Ck/HN/A3/98株属于Ck/HK/Y280/97-like亚类,且与Ck/BJ/8/98的进化关系最近,其余8株属于Ck/SH/F/98-like亚类,说明Ck/SH/F/98-like亚类的H9N2亚型AIV在中国大陆的鸡群中广泛存在.NS1基因的进化及其编码产物的特性分析,为AIV的毒力变异、致病机制、药物靶位点的设计及鉴别诊断的研究奠定了基础.  相似文献   

7.
对长沙市家禽市场污水来源的H5N1亚型禽流感病毒(Avian influenza viruses,AIV)的非结构蛋白(Non-structural,NS)基因进行进化和分子特征分析,探讨污水中H5N1病毒的传播风险。9份家禽市场环境污水H5N1亚型AIV标本进行NS基因TA克隆测序,测序结果利用Lasergene和Mega5软件进行氨基酸(amine acid,aa)比对和进化树分析。共得到8个阳性克隆,进化树构建显示8个H5N1的NS基因均属于A亚群,其编码的NS1和NS2蛋白与A亚群代表株(A/chicken/Hubei/w h/1999)aa同源性分别为90.1%~92.5%和91.0%~92.6%,8个H5N1的NS1和NS2aa之间的同源性分别为93.8%~100.0%和98.4%~100.0%。8个H5N1的NS1蛋白均具有缺失80~84位aa、C末端携带有ESEV的PL基序和第92位aa为E的高致病性分子特征。家禽市场污水来源的H5N1亚型AIV的NS基因具有高致病性的分子特征,这种基因特征表明污水可能传播H5N1病毒。  相似文献   

8.
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   

9.
本研究采用无特定病原体(specific pathogen free,SPF)鸡胚,从某活禽市场环境中分离出1株H6N6亚型禽流感病毒(A/environment/Zhenjiang/zj18/2013,en/zj18)。通过二代测序技术进行全基因组测序,通过BLASTn 进行同源性检索,并采用MEGA5.0软件构建系统发生树。基因进化树分析表明,分离株en/zj18的所有8个基因节段(PB2、PB1、PA、HA、NP、NA、M和NS)均与近年来中国华东地区流行的H6N6亚型禽流感病毒的相应基因位于同一进化分支,与参考株的核苷酸同源性达96.7%~99.6%。分离株en/zj18的HA蛋白裂解位点为PQIETR↓GL,是低致病性禽流感病毒的分子特征。HA蛋白上关键受体结合位点190和228位(按H3亚型的HA蛋白序列排序)氨基酸分别是E和G,理论上更易与α2,3-半乳糖苷唾液酸受体结合。结果提示,需加强活禽市场禽流感病毒的持续监测,从而为有效应对禽流感病毒对公共卫生的持续威胁提供科学依据。  相似文献   

10.
为了解H5N1亚型流感病毒株的ns1基因特性及其规模制备NS1蛋白,首先将病毒在鸡胚中传代,从收获的尿囊液中提取RNA,采用RT-PCR技术扩增流感病毒全长ns基因。测序显示H5N1亚型流感病毒NS1cDNA全长678bp,编码225个氨基酸。BLAST分析表明,Qa/ST/852/01(H5N1)病毒株ns1基因与近年来从华南地区分离的禽H5N1毒株的ns1基因有很高的同源性。之后采用PCR方法扩增ns1基因的cDNA片段,将其克隆到pGEX-4T-3载体中,与谷胱甘肽巯基转移酶(GST)基因融合,构建重组质粒pGEX-4T-3/NS1cDNA,转化大肠杆菌BL21(DE3)并进行诱导表达。SDS-PAGE和凝胶扫描分析,GST-NS1融合蛋白在大肠杆菌中获得了高效表达,并且以可溶形式存在,重组融合蛋白的表达量占菌体总蛋白的28.5%,表达产物经亲和层析纯化后蛋白质纯度达96%以上。经免疫印记证实重组融合蛋白可以被GST特异性抗体所识别。该表达载体的构建为获得大量NS1蛋白进行功能研究及抗体制备提供了基础。  相似文献   

11.
In the second half of 2005, a large-scale outbreak of influenza in poultry and wild birds was caused by a highly pathogenic H5N1 influenza virus in Russia. The level of pathogenicity is a polygenic trait, and most individual genes contribute to the influenza A virus pathogenicity in birds, animals, and humans. The full-length nucleotide sequences were determined for H5N1 strains isolated in the Kurgan region (Western Siberia). The structure of viral proteins was analyzed using the deduced amino acid sequences. The receptor-binding site of hemagglutinin (HA) in strains A/chicken/Kurgan/05/2005 and A/duck/Kurgan/08/2005 was typical for avian influenza viruses and contained Glu and Gly at positions 226 and 228, respectively. The structure of the basic amino acid cluster located within the HA cleavage site was identical in all isolates: QGERRRKKR. According to the neuraminidase structure, all H5N1 isolates from the Kurgan region were assigned to the Z genotype. Amino acid residues typical for the avian influenza virus were revealed in 30 out of 32 positions of M1, M2, NP, PA, and PB2, determining the host range specificity. One of the strains contained Lys at position 627 of PB2. Isolates from the Kurgan region were shown to have a remantadine-sensitive genotype. Both strains contained Glu at position 92 of NS1, indicating that the virus is interferon-resistant. Phylogenetic analysis related the Kurgan isolates to subclade 2 of clade 2 of highly pathogenic H5N1 influenza viruses.  相似文献   

12.
During the latter half of 2005 a widespread outbreak caused by influenza highly pathogenic H5N1 virus among wild and domestic birds occurred in Russia. As pathogenicity level is a polygenic feature and majority of individual genes of influenza A viruses contribute to pathogenicity of influenza viruses to birds, animals and humans. Nucleotide sequencing of the entire genome of influenza H5N1 virus isolates obtained in Kurgan region (Western Siberia) was performed. Structure of viral proteins was analyzed according to the predicted amino acid sequences. HA receptor-binding site of A/chicken/Kurgan/05/2005 and A/duck/Kurgan/08/2005 strains was typical for avian influenza viruses and contained Glu and Gly at positions 226 and 228, respectively. Structure of the cluster of positively charged amino acid residues at the cleavage site was identical for all isolates: QGERRRKKR. According to the data of neuraminidase structure analysis NA of the H5N1 isolates tested was suggested to belong to Z genotype. Amino acid residues typical for birds were revealed in 30 out of 32 positions of M1, M2, NP, PA and PB2 proteins determining host range specificity. One strain isolated in Kurgan contained lysine in position 627 of PB2 protein. Kurgan isolates was shown to have remantadine-sensitive genotype. Glutamic acid was found at position 92 of NS1 protein in both strains indicating virus resistance to interferon. Phylogenetic analyses allowed relating Kurgan isolates to subclade II of clade II of highly pathogenic H5N1 influenza viruses.  相似文献   

13.
The nonstructural protein NS1 of influenza A virus blocks the development of host antiviral responses by inhibiting polyadenylation of cellular pre-mRNA. NS1 also promotes the synthesis of viral proteins by stimulating mRNA translation. Here, we show that recombinant NS1 proteins of human pandemic H1N1/2009, avian highly pathogenic H5N1, and low pathogenic H5N2 influenza strains differentially affected these two cellular processes: NS1 of the two avian strains, in contrast to NS1 of H1N1/2009, stimulated translation of reporter mRNA in cell-free translation system; NS1 of H5N1 was an effective inhibitor of cellular pre-mRNA polyadenylation in A549 cells, unlike NS1 of H5N2 and H1N1/2009. We identified key amino acids in NS1 that contribute to its activity in these two basic cellular processes. Thus, we identified strain-specific differences between influenza virus NS1 proteins in pre-mRNA polyadenylation and mRNA translation.  相似文献   

14.
从广东省疑似流感发病猪分离到1株H3N2亚型猪流感病毒(A/Swine/Guangdong/01/2005(H3N2)),对其各个基因进行克隆与测序,并与GenBank中收录的其它猪流感、禽流感和人流感的相关基因进行比较,结果表明,HA全基因与广东2003~2004年分离的H3N2猪流感毒株的核苷酸序列同源性在99%以上,与纽约90年代末分离的H3N2人流感毒株同源性在98.5%以上;NA基因与纽约1998~2000年分离的H3N2人流感毒株的核苷酸序列同源性在99%以上;NS基因、M基因的核苷酸序列与H1N1亚型猪流感毒株A/swine/HongKong/273/1994(H1N1)的核苷酸序列同源性较高,分别为97.9%、98.4%,与美洲A/swine/Iowa/17672/1988(H1N1)的核苷酸序列同源性分别为96.7%、97.1%;其他基因的核苷酸序列与H3N2人流感毒株具有很高的同源性。因此,推测其M和NS基因来源于H1N1亚型猪流感病毒,HA、NA及其他基因均来源于H3N2亚型人流感病毒。表明此H3N2亚型猪流感病毒为H3N2亚型人流感病毒和H1N1亚型猪流感病毒经基因重排而得到的重组病毒。  相似文献   

15.
By nature of their segmented RNA genome, influenza A viruses (IAVs) have the potential to generate variants through a reassortment process. The influenza nonstructural (NS) gene is critical for a virus to counteract the antiviral responses of the host. Therefore, a newly acquired NS segment potentially determines the replication efficiency of the reassortant virus in a range of different hosts. In addition, the C-terminal PDZ-binding motif (PBM) has been suggested as a pathogenic determinant of IAVs. To gauge the pandemic potential from human and avian IAV reassortment, we assessed the replication properties of NS-reassorted viruses in cultured cells and in the lungs of mice and determined their transmissibility in guinea pigs. Compared with the recombinant A/Korea/01/2009 virus (rK09; 2009 pandemic H1N1 strain), the rK09/VN:NS virus, in which the NS gene was adopted from the A/Vietnam/1203/2004 virus (a human isolate of the highly pathogenic avian influenza H5N1 virus strains), exhibited attenuated virulence and reduced transmissibility. However, the rK09/VN:NS-PBM virus, harboring the PBM in the C-terminus of the NS1 protein, recovered the attenuated virulence of the rK09/VN:NS virus. In a guinea pig model, the rK09/VN:NS-PBM virus showed even greater transmission efficiency than the rK/09 virus. These results suggest that the PBM in the NS1 protein may determine viral persistence in the human and avian IAV interface.  相似文献   

16.
Due to the high mortality associated with recent, widely circulating strains of H5N1 influenza virus in poultry, the recurring introduction of H5N1 viruses from birds to humans, and the difficulties in H5N1 eradication by elimination of affected flocks, an effective vaccine against HPAI (highly pathogenic avian influenza) is highly desirable. Using reverse genetics, a set of experimental live attenuated vaccine strains based on recombinant H5N1 influenza virus A/Viet Nam/1203/04 was generated. Each virus was attenuated through expression of a hemagglutinin protein in which the polybasic cleavage site had been removed. Viruses were generated which possessed a full-length NS1 or a C-terminally truncated NS1 protein of 73, 99, or 126 amino acids. Viruses with each NS genotype were combined with a PB2 polymerase gene which carried either a lysine or a glutamic acid at position 627. We predicted that glutamic acid at position 627 of PB2 would attenuate the virus in mammalian hosts, thus increasing the safety of the vaccine. All recombinant viruses grew to high titers in 10-day-old embryonated chicken eggs but were attenuated in mammalian cell culture. Induction of high levels of beta interferon by all viruses possessing truncations in the NS1 protein was demonstrated by interferon bioassay. The viruses were each found to be highly attenuated in a mouse model. Vaccination with a single dose of any virus conferred complete protection from death upon challenge with a mouse lethal virus expressing H5N1 hemagglutinin and neuraminidase proteins. In a chicken model, vaccination with a single dose of a selected virus encoding the NS1 1-99 protein completely protected chickens from lethal challenge with homologous HPAI virus A/Viet Nam/1203/04 (H5N1) and provided a high level of protection from a heterologous virus, A/egret/Egypt/01/06 (H5N1). Thus, recombinant influenza A/Viet Nam/1203/04 viruses attenuated through the introduction of mutations in the hemagglutinin, NS1, and PB2 coding regions display characteristics desirable for live attenuated vaccines and hold potential as vaccine candidates in poultry as well as in mammalian hosts.  相似文献   

17.
A型流感病毒NS1蛋白羧基端4个氨基酸可以与PDZ结构域(the domain of PSD95,Dig and ZO-1)相结合,称为PL结构域(PDZ ligand domain).对不同亚型或毒株的流感病毒而言,其NS1蛋白PL结构域的组成存在比较大的差异.有研究发现这种差异能够影响NS1与宿主细胞蛋白的相互作用进而影响病毒的致病力.为进一步探讨PL结构域对NS1蛋白生物学特性的影响,首先构建出4种不同亚型流感病毒(H1N1、H3N2、H5N1、H9N2)来源的NS1绿色荧光蛋白表达质粒.在此基础上,对野生型H3N2病毒NS1表达质粒进行人工改造,将其PL结构域缺失或者替换为其他亚型流感病毒的PL结构域,制备出4种重组NS1蛋白表达质粒.通过比较上述不同NS1蛋白在HeLa细胞中的定位情况发现,只有野生型H3N2病毒的NS1蛋白可以定位于核仁当中,而野生型H1N1、H5N1、H9N2病毒的NS1蛋白以及PL结构域缺失或替代的H3N2病毒NS1蛋白都不能定位于核仁.而通过比较上述NS1蛋白在流感病毒易感的MDCK细胞中的定位,进一步发现所有这些蛋白均不定位于核仁.上述结果表明:PL结构域的不同可以明显影响NS1蛋白在HeLa细胞核内的定位和分布,这有可能造成其生物学功能的差异.同时,NS1蛋白在细胞核内的定位还与宿主细胞的来源有着密切关系.  相似文献   

18.
运用噬菌体表面呈现技术,从禽流感病人恢复期血中获得淋巴细胞,通过基因工程手段,构建了人源抗H5NI禽流感病毒基因工程抗体文库.用纯化的人源H5N1禽流感病毒颗粒(A/Anhui/1/2005)及重组血凝素蛋白HA(A/Viet Nam/1203/2004)对Fab噬菌体抗体库进行富集筛选,成功地获得了抗禽流感病毒H5N1血凝素蛋白HA的人源单抗Fab段基因,并在大肠杆菌中获得有效表达.通过序列测定确定抗体轻重链型别,然后将阳性克隆的轻链和重链Fd段基因分别克隆入全抗体表达载体pAC-L-Fc后转染昆虫Sf9细胞,利用杆状病毒/昆虫细胞系统实现全抗体的分泌型表达.用ELISA、IFA和流式细胞术对所获人源单抗的功能特性进行鉴定.结果表明,我们获得了2株特异性针对H5N1禽流感病毒血凝素蛋白HA而与甲1型和甲3型人流感病毒无交叉反应的人源单抗(AVFlulgG01、AVFlulgG03).微量中和试验结果表明,除A/Guangdong/1/2006外,AVFlu-IgG01能够广泛地中和HA基因进化上属于Clade 2的中国南方、北方及中部地区的H5N1禽流感病毒分离株,同时还对属于Clade Ⅰ的越南H5N1分离株A/Viet Nam/1203/2004具有中和活性;AVFluIgG03虽然不能中和A/Viet Nam/1203/2004,但是对属于Clade 2的所有中国H5N1分离株均具有中和作用.人源中和性抗禽流感病毒H5N1基因工程全抗体的获得不仅为高致病性禽流感病毒H5N1的预防和治疗带来了希望,同时也为其疫苗研制提供了新的思路.  相似文献   

19.
1981~2005年中国H1N1甲型流感病毒血凝素基因的HA1演变特征   总被引:1,自引:0,他引:1  
为了解1981~2005年我国H1N1甲型流感病毒血凝素基因的HA1演变特征,选取H1N1甲型流感病毒370株,提取病毒RNA,经逆转录和聚合酶链反应扩增HA1并测序,测定的序列用生物信息软件分析,与GenBank中相关序列比较,并对推导的编码氨基酸序列进行基因特性分析。结果表明:HA1氨基酸的变异表现为抗原决定簇4个区均有变异,Sb区和Ca区变化较大;HA1受体结合位点(RBS)的前壁130环的第134位赖氨酸从1991年起在部分毒株HA1序列上开始缺失,以后缺失株逐步增多,自2000年起测定的所有毒株上该氨基酸全部缺失,同时这些缺失株的第137位氨基酸也全部由苏氨酸替换为丝氨酸;糖基化位点从增多到减少,最后稳定在7个;1981~2004年我国H1N1甲型流感病毒血凝素HA1编码的氨基酸在种系发育树上同年代基本呈现集中分布,与时间和地域无关,2005年毒株分成两个分支在时间上有明显差异。  相似文献   

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