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1.
利用反向遗传技术获得表达H5亚型禽流感病毒(AIV)血凝素(HA)的新城疫病毒(NDV)。克隆NDV clone 30的全长基因,通过在NDV的融合蛋白基因和血凝素-神经氨酸酶(HN)基因之间插入编码高致病性AIV分离株A/chicken/italy/8/98(H5N2)的血凝素基因开放阅读框从而获得两株重组新城疫病毒NDVH5和NDVH5m。NDVH5感染的细胞可以检测到两种HA转录产物。对于重组病毒NDVH5m,NDV位于HA ORF的转录终止信号序列被沉默突变消除,产生2.7个全长HA转录产物的折叠,从而使修饰过的HA得到稳定地高表达。1日龄小鸡的脑内接种证实了两种重组病毒均无致病性。鸡群在NDVH5m诱导产生的NDV和H5亚型AIV HA特异性抗体的免疫力下能够免于致死剂量的NDV与高致病性AIV的感染。血清学研究结果表明NDVH5m免疫鸡群产生的抗体可结合NP蛋白抗体的检测从而用于区分免疫和感染AIV的动物。因此,NDVH5m重组病毒可作为抗NDV和AIV的"二联疫苗",也可成为控制AJ的标记疫苗。  相似文献   

2.
H9N2型禽流感病毒传播途径分子机制的研究   总被引:2,自引:0,他引:2  
选择禽流感病毒(avian influenza virus,AIV)A/chicken/Zhuhai/154/2003(H9N2)(AZHl54)株作为骨架病毒,与来自A/chicken/Guangdong/SS/94(H9N2)(SS94)AIV的NA基因和HA基因进行H9N2亚型重排.动物传播性实验发现:AZH154、SS94和3株重排的H9N2亚型AIV都可以经直接接触途径传播;5株H9N2 AIV都不经过粪便接触传播;且AZH154株和重组的H9N2亚型AZH154/SSHA能经过气溶胶传播.实验结果表明:AIV(H9N2)的NA基因与该病毒气溶胶传播途径有重要关系,即2003年珠海地区AIV(H9N2)的大流行可能是因为病毒获得气溶胶传播途径的特性,且病毒的NA基因发挥了重要的作用.  相似文献   

3.
H5亚型禽流感病毒单抗-生物素捕获ELISA的建立   总被引:13,自引:0,他引:13  
目的建立一种单克隆抗体介导的、经生物素—亲和素系统放大的H5亚型禽流感病毒捕获ELISA检测方法,为进一步研究检测试剂盒提供基础。方法用亲和层析法纯化抗禽流感病毒H5亚型血凝素单克隆抗体,包被微量反应板,用于捕获病毒抗原,再用生物素标记的单抗和酶标亲和素来检测病毒血凝素抗原,经方阵试验优化ELISA反应体系。用该方法检测H1—H15亚型AIV标准毒株和H5、H7、H9亚型AIV分离株,并与血凝和血凝抑制试验比较,评价其敏感性和特异性。结果纯化后的单抗具有良好的反应活性,生物素标记单抗工作浓度为1∶5000;ELISA对H5亚型AIV的检出限为025个血凝单位。该ELISA反应体系能检出H5N3标准株和所有20株国内H5亚型AIV分离株,而与其他14个血凝素亚型的AIV标准株、15个H9亚型AIV分离株和2个H7亚型AIV分离株均无交叉反应。结论初步建立了检测H5亚型禽流感病毒的单抗—生物素捕获ELISA方法,为研制试剂盒和进一步应用试验提供了基础。  相似文献   

4.
近年来华东地区家鸭中禽流感病毒的亚型分布   总被引:3,自引:0,他引:3  
[目的]为了研究近年来华东地区家鸭中禽流感病毒的亚型分布情况.[方法]对2002-2006年分离自华东地区家鸭的180株禽流感病毒的HA亚型和其中88株禽流感病毒的NA亚型分别进行了测定.[结果]近年来华东地区家鸭中至少存在9种HA亚型和6种NA亚型组成的H1N1,H3N1,H3N2,H3N8,H4N6,H5N1,H5N2,H6N2,H6N8,H8N4,H9N2,H10N3,H11N2共13种亚型的禽流感病毒.[结论]华东地区家鸭中有多种亚型的禽流感病毒分布,应加强家鸭禽流感的监测和防制工作.  相似文献   

5.
用基因疫苗制备H9亚型禽流感病毒单克隆抗体   总被引:1,自引:0,他引:1  
用H9亚型禽流感病毒(AIV)HA基因反转录cDNA第一链PCR扩增其HA基因,PCR产物与pcDNA3.1( )质粒构建重组质粒作为基因疫苗免疫8周龄Balb/C小鼠,细胞融合后用血凝抑制试验(HI)和ELISA试验检测细胞培养上清,各获得一株阳性细胞株,经3次亚克隆后都能稳定分泌H9AIV特异性抗体。特异性检测与NDV、H5亚型AIV、产蛋下降综合症(EDS76)病毒毒株没有反应,2株单抗经亚型鉴定均为IgG2b,轻链的亚型为kappa链。所获得的单克隆抗体将在禽流感快速诊断和疾病预警监控中发挥重要作用。  相似文献   

6.
目的:获得分泌抗H9亚型禽流感病毒(AIV)血凝素单克隆抗体的杂交瘤细胞。方法:以H9N2亚型AIV为免疫原,免疫6~8周龄雌性BALB/c小鼠,取其脾细胞与骨髓瘤细胞Sp2/0-Ag-14,在PEG4000的作用下进行细胞融合,通过血凝抑制(HI)试验筛选分泌抗H9亚型AIV血凝素单克隆抗体的杂交瘤细胞。结果:经过连续3~4次克隆化,获得能稳定分泌抗H9亚型AIV血凝素的单克隆抗体细胞系6株,分别命名为1B2、1C10、1G2、2B7、2E3和5E11。6株细胞培养上清HI效价为24~28,腹水HI效价为210~213。除1G2为IgM外,其余5株均为IgG1。Western blotting结果显示,1B2、1C10、2B7和2E3能与AIVH9蛋白在Mr为75000处反应,表明其是针对AIVH9亚型血凝素蛋白的单抗。特异性试验表明该6株单抗均只与H9亚型AIV发生特异性HI反应,而不与其他14个HA亚型的AIV及新城疫病毒、传染性支气管炎病毒发生交叉反应,显示出良好的特异性。结论:制备了针对H9亚型禽流感病毒血凝素的单克隆抗体,为禽流感的快速诊断和病毒的抗原性分析等奠定了基础。  相似文献   

7.
利用反向遗传技术研究H9N2亚型AIV传播途径的分子机制   总被引:10,自引:0,他引:10  
利用反向遗传技术,通过基因重排方法,产生两个表面基因来自A/Chicken/Guangdong/SS/94(H9N2)禽流感病毒(avian influenza virus,AIV)株和其余基因来自A/Chicken/Shanghai/F/98(H9N2)AIV株的3株H9N2亚型重排AIV,动物传播性试验发现A/Chicken/Shanghai/F/98(H9N2)株、A/Chicken/Guangdong/SS/94(H9N2)AIV株和3株H9N2亚型重排AIV都可以经直接接触途径传播;在粪便接触途径下,3株重排AIV都不经粪便接触传播;只有A/Chicken/Shanghai/F/98(H9N2)株和重排AIV RF7/SSHA能经过气溶胶途径传播。HI试验结果进一步证明了以上的结果。实验结果表明H9N2亚型AIV的NA基因与H9N2亚型AIV气溶胶传播途径有重要的关系,即1998年中国大陆H9N2亚型AIV大流行可能是因为病毒获得气溶胶传播途径的特性,推测病毒的NA基因发挥了重要作用。  相似文献   

8.
番鸭源H6N6亚型禽流感病毒全基因组的分子特征   总被引:2,自引:0,他引:2  
【目的】为了丰富水禽源禽流感病毒的分子流行病学资料,明确我国国内首次分离的番鸭源H6N6亚型禽流感(Avian influenza virus,AIV)病毒A/Muscovy Duck/Fujian/FZ01/2008(H6N6)(以下简称MD/FJ/F1/08)全基因组的分子特征,弄清该病毒的遗传进化特点。【方法】对其8个基因片段分别进行扩增和序列测定,并利用分子生物学软件对测序结果进行序列分析。【结果】MD/FJ/F1/08的HA裂解位点附近的氨基酸序列为PSMKVIV↓GL,为非连续的碱性氨基酸,其静脉接种指数(the intravenoys pathogenicity index,IVPI)为0.15,推测其为一株低致病力AIV。其HA基因、NP基因、M基因和PB2基因均与我国台湾分离株A/duck/Kingmen/E322/04(H6N2)该基因的核苷酸同源性最高,分别高达94.2%、95.7%、97.2%和95.6%,均处于同一遗传进化分支。其NA基因和我国远东分离株A/duck/Eastern China/01/2007(H4N6)同源性最高,达97.1%;其颈部有11个氨基酸的缺失(TNSTTTIINNN),为N6亚型神经氨酸酶基因中首次报道,在遗传进化上和H4N6亚型AIV的NA基因处于相同的分支。NS基因和香港地区分离株A/duck/HongKong/3600/99(H6N2)同源性最高,达96.1%;PB1和PA均与高致病性禽流感病毒株A/duck/HongKong/140/1998(H5N1)同源性最高,达95.6%和96.7%。且MD/FJ/F1/08的8基因与H6N6亚型流感病毒北美洲分离代表株均不处在同一遗传进化分支上,相互之间遗传关系较远。【结论】MD/FJ/F1/08可能是由H6N2、H4N6和H5N1等多亚型AIV基因重组而成。  相似文献   

9.
从鸡组织中获得了一株分离物,能凝集鸡红细胞,经负染后电镜观察可见球形、外被囊膜的病毒颗粒,直径约90~100nm;经血凝抑制和神经氨酸酶抑制试验鉴定为H7N2亚型禽流感病毒(Avian in fluenza virus,AIV),命名为A/Chicken/Hebei/1/2002(H7N2)(简称CK/HB/1/02).将该病毒接种SPF鸡,测得静脉接种致病指数(IVPI)为0.00,剖检可见实验鸡多种组织器官有出血性变化,判为低致病力AIV;接种后7d从实验鸡泄殖腔棉拭中回收到病毒,并在血清中检测到H7亚型AIV抗体.经RT-PCR扩增了病毒HA1基因片段(约1.1kb),测定其核苷酸序列并与GenBank中的序列比较.结果表明,该病毒的HA1基因序列与AIV标准株A/Afri.Star./Eng Q/79(H7N1)的HA1基因同源性最高,为99.4%;与以色列和意大利H7N2AIV的同源性较高,为96.8%~98.2%;与美国H7N2病毒的同源性很低,约为81.0%;其HA裂解位点的氨基酸序列为KGR-GLF-,符合低致病力AIV的特征.  相似文献   

10.
本研究以一株2006年广东省分离的H9N2亚型禽流感病毒A/Chicken/Guangdong/HL/2006(H9N2)(简称Ck/GD/HL/06)为研究对象,用RT-PCR法扩增病毒基因组各片段(包括5′端和3′端的非编码区序列),将扩增片段进行克隆、测序并与参考毒株的相应序列进行比较分析,绘制各基因片段的系统发生树。分析结果表明,Ck/GD/HL/06株的HA基因同1997年中国香港鸭源毒株Dk/HK/Y280/97(H9N2)在同一进化分支,从HA的糖基化位点、受体结合位点等综合分析,该毒株HA基因未发生明显的变异,符合我国大陆H9亚型禽流感病毒的特点。HA的226位氨基酸残基为亮氨酸(Leu),具有同哺乳动物SAα,2-6受体结合的特性。Ck/GD/HL/06的PB1、PA和NP基因,同2004年越南分离的人源高致病性H5N1亚型流感病毒A/VietNam/1203/2004(H5N1)株(简写A/VN/1203/04)的核苷酸序列一致性分别是93.8%、95%和96.8%,在先前的研究中未见有类似特性毒株的报道,而这种特性H9N2亚型AIV的出现,是否会增加在重组过程中产生新的高致病性H5N1亚型AIV的可能性,是值得我们关注的一个问题,也提醒在我国华南地区应更加重视防控H9N2亚型AIV,做好长期对H9N2亚型AIV监控及分子流行病学调查的工作。  相似文献   

11.
[目的]为了探讨高致病性禽流感病毒对水禽致病性差异的分子致病机理.[方法]我们对从野鸭分离到的H5N1亚型禽流感病毒的生物学特性进行鉴定,其中A/mallard/Huadong/Y/2003(Y)是对麻鸭无致病性病毒,而 A/mallard/Huadong/S/2005(S)是对麻鸭高致病性病毒.利用反向遗传技术构建一系列单个和多个基因组合替换基因重排病毒,并验证重排病毒在麻鸭上的致病力.[结果]研究表明,PB2, PB1, PA(3P), HA单基因以及3P基因组合替换的使S病毒对麻鸭的毒力完全致弱,但相应的基因替换后仅使Y病毒对麻鸭的毒力略有上升.两病毒的其它基因对毒力影响较小.[结论]H5N1亚型禽流感病毒对麻鸭的致病力受多基因调控,且这种调控作用在不同病毒骨架上的影响不一致,强毒受影响程度远比弱毒的大.  相似文献   

12.
The role wild bird species play in the transmission and ecology of avian influenza virus (AIV) is well established; however, there are significant gaps in our understanding of the worldwide distribution of these viruses, specifically about the prevalence and/or significance of AIV in Central and South America. As part of an assessment of the ecology of AIV in Guatemala, we conducted active surveillance in wild birds on the Pacific and Atlantic coasts. Cloacal and tracheal swab samples taken from resident and migratory wild birds were collected from February 2007 to January 2010.1913 samples were collected and virus was detected by real time RT-PCR (rRT-PCR) in 28 swab samples from ducks (Anas discors). Virus isolation was attempted for these positive samples, and 15 isolates were obtained from the migratory duck species Blue-winged teal. The subtypes identified included H7N9, H11N2, H3N8, H5N3, H8N4, and H5N4. Phylogenetic analysis of the viral sequences revealed that AIV isolates are highly similar to viruses from the North American lineage suggesting that bird migration dictates the ecology of these viruses in the Guatemalan bird population.  相似文献   

13.
Infectious bronchitis coronavirus (IBV), Newcastle disease virus (NDV), and avian influenza virus (AIV) H9 subtype are major pathogens of chickens causing serious respiratory tract disease and heavy economic losses. To better understand the replication features of these viruses in their target organs and molecular pathogenesis of these different viruses, comparative proteomic analysis was performed to investigate the proteome changes of primary target organ during IBV, NDV, and AIV H9 infections, using 2D‐DIGE followed MALDI‐TOF/TOF‐MS. In total, 44, 39, 41, 48, and 38 proteins were identified in the tracheal tissues of the chickens inoculated with IBV (ck/CH/LDL/97I, H120), NDV (La Sota), and AIV H9, and between ck/CH/LDL/97I and H120, respectively. Bioinformatics analysis showed that IBV, NDV, and AIV H9 induced similar core host responses involved in biosynthetic, catabolic, metabolic, signal transduction, transport, cytoskeleton organization, macromolecular complex assembly, cell death, response to stress, and immune system process. Comparative analysis of host response induced by different viruses indicated differences in protein expression changes induced by IBV, NDV, and AIV H9 may be responsible for the specific pathogenesis of these different viruses. Our result reveals specific host response to IBV, NDV, and AIVH9 infections and provides insights into the distinct pathogenic mechanisms of these avian respiratory viruses.  相似文献   

14.
Prevalence of the infectious respiratory agens, avian influenza virus (AIV), Mycobacterium avium (M. avium), and Mycobacterium avium subspecies paratuberculosis (MAP), was studied in migratory marsh-dwelling passerines captured in the Parížske močiare wetlands in Western Slovakia during 2008. Surveillance of 650 birds revealed a lower prevalence of AIV in spring (13.6%) than in summer (17.5%). A total of 14 different subtypes were detected in samples obtained from birds captured during the spring, with the most prevalent subtypes being H8N3, H6N4, H11N6 and H12N6. Subtypes H12N6, H6N6 and H2N5 were predominant in passerines captured during summer months. In eight cases, different AIV infections were detected in the oropharyngeal and cloacal samples originating from a single bird (H1N1 and H8N3; H1N3 and H9N3; H2N3 and H12N6; H2N1 and H8N1; H4N2 and H9N6; H5N5 and H11N6; H6N4 and H11N6; H7N1 and H10N3 in the oropharynx and cloaca, respectively). M. avium was detected in 9.2% and 0.8% of marsh-dwelling passerines captured during spring and summer, respectively. Only two birds were co-infected with AIV and M. avium. All birds were negative for MAP.  相似文献   

15.
Migratory aquatic birds play an important role in the maintenance and spread of avian influenza viruses (AIV). Many species of aquatic migratory birds tend to use similar migration routes, also known as flyways, which serve as important circuits for the dissemination of AIV. In recent years there has been extensive surveillance of the virus in aquatic birds in the Northern Hemisphere; however in contrast only a few studies have been attempted to detect AIV in wild birds in South America. There are major flyways connecting South America to Central and North America, whereas avian migration routes between South America and the remaining continents are uncommon. As a result, it has been hypothesized that South American AIV strains would be most closely related to the strains from North America than to those from other regions in the world. We characterized the full genome of three AIV subtype H11N9 isolates obtained from ruddy turnstones (Arenaria interpres) on the Amazon coast of Brazil. For all gene segments, all three strains consistently clustered together within evolutionary lineages of AIV that had been previously described from aquatic birds in North America. In particular, the H11N9 isolates were remarkably closely related to AIV strains from shorebirds sampled at the Delaware Bay region, on the Northeastern coast of the USA, more than 5000 km away from where the isolates were retrieved. Additionally, there was also evidence of genetic similarity to AIV strains from ducks and teals from interior USA and Canada. These findings corroborate that migratory flyways of aquatic birds play an important role in determining the genetic structure of AIV in the Western hemisphere, with a strong epidemiological connectivity between North and South America.  相似文献   

16.
Tian  Hong  Wu  Jingyan  Chen  Yan  Zhang  Keshan  Shang  Youjun  Liu  Xiangtao 《Virology journal》2012,9(1):1-4

Background

Virus subtype H13N2, A/mallard/Kr/SH38-45/2010 (H13N2), was first isolated from a mallard fecal sample in South Korea.

Results

Phylogenetic analysis of all eight viral genes revealed that this virus emerged by genetic mixing between Eurasian and North American gene pools, and possibly between wild ducks and gulls. The H13 and N2 surface genes clustered together in a group with Eurasian isolates from gulls and wild birds, respectively. The PB2, PA, NP, M and NS segments belonged to the Eurasian lineage, whereas the PB1 gene clustered in the North American lineage. Furthermore, they showed a bird-dependent pattern in phylogenetic analysis: the M gene was similar to subtype H13 viruses within gulls, whereas other segments were similar to avian influenza viruses of other subtypes from wild ducks.

Conclusions

The data suggests that the novel reassortant H13N2 virus isolated in South Korea might have emerged by genetic reassortment between intercontinental and interspecies transmission in wild birds.  相似文献   

17.
Migratory waterfowl of the world are the natural reservoirs of influenza viruses of all known subtypes. However, it is unknown whether these waterfowl perpetuate highly pathogenic (HP) H5 and H7 avian influenza viruses. Here we report influenza virus surveillance from 2001 to 2006 in wild ducks in Alberta, Canada, and in shorebirds and gulls at Delaware Bay (New Jersey), United States, and examine the frequency of exchange of influenza viruses between the Eurasian and American virus clades, or superfamilies. Influenza viruses belonging to each of the subtypes H1 through H13 and N1 through N9 were detected in these waterfowl, but H14 and H15 were not found. Viruses of the HP Asian H5N1 subtypes were not detected, and serologic studies in adult mallard ducks provided no evidence of their circulation. The recently described H16 subtype of influenza viruses was detected in American shorebirds and gulls but not in ducks. We also found an unusual cluster of H7N3 influenza viruses in shorebirds and gulls that was able to replicate well in chickens and kill chicken embryos. Genetic analysis of 6,767 avian influenza gene segments and 248 complete avian influenza viruses supported the notion that the exchange of entire influenza viruses between the Eurasian and American clades does not occur frequently. Overall, the available evidence does not support the perpetuation of HP H5N1 influenza in migratory birds and suggests that the introduction of HP Asian H5N1 to the Americas by migratory birds is likely to be a rare event.  相似文献   

18.
Ge J  Deng G  Wen Z  Tian G  Wang Y  Shi J  Wang X  Li Y  Hu S  Jiang Y  Yang C  Yu K  Bu Z  Chen H 《Journal of virology》2007,81(1):150-158
H5N1 highly pathogenic avian influenza virus (HPAIV) has continued to spread and poses a significant threat to both animal and human health. Current influenza vaccine strategies have limitations that prevent their effective use for widespread inoculation of animals in the field. Vaccine strains of Newcastle disease virus (NDV), however, have been used successfully to easily vaccinate large numbers of animals. In this study, we used reverse genetics to construct a NDV that expressed an H5 subtype avian influenza virus (AIV) hemagglutinin (HA). Both a wild-type and a mutated HA open reading frame (ORF) from the HPAIV wild bird isolate, A/Bar-headed goose/Qinghai/3/2005 (H5N1), were inserted into the intergenic region between the P and M genes of the LaSota NDV vaccine strain. The recombinant viruses stably expressing the wild-type and mutant HA genes were found to be innocuous after intracerebral inoculation of 1-day-old chickens. A single dose of the recombinant viruses in chickens induced both NDV- and AIV H5-specific antibodies and completely protected chickens from challenge with a lethal dose of both velogenic NDV and homologous and heterologous H5N1 HPAIV. In addition, BALB/c mice immunized with the recombinant NDV-based vaccine produced H5 AIV-specific antibodies and were completely protected from homologous and heterologous lethal virus challenge. Our results indicate that recombinant NDV is suitable as a bivalent live attenuated vaccine against both NDV and AIV infection in poultry. The recombinant NDV vaccine may also have potential use in high-risk human individuals to control the pandemic spread of lethal avian influenza.  相似文献   

19.
[目的]为了研究2006年从广西病猪肺组织中分离的H1N2亚型猪流感病毒(SIV)A/Swine/Guangxi/13/2006(H1N2)(Sw/Gx/13/06)的遗传学特性和8个基因的来源.[方法]运用RT PCR方法对其全基因进行了克隆并运用分子生物学软件对其基因序列进行了遗传进化分析.[结果]血凝素(HA)、核蛋白(NP)、基质蛋白(M)和非结构蛋白(NS)基因来源于猪古典H1N1亚型流感病毒;神经氨酸酶(NA)和聚合酶蛋白(PB1)基因来源于人的H3N2亚型流感病毒;聚合酶蛋白(PA)和聚合酶蛋白(PB2)基因来自于禽流感病毒.[结论]可见Sw/GX/13/06是一株"人-猪-禽"三源基因重排H1N2亚型SIV且与美国(1999-2001年)和韩国(2002年)分离到该型病毒的有明显的亲缘关系.据我们所知,这是中国首次报道含有禽流感病毒基因片段的重排H1N2 SIV,该病毒是否对养猪业和人类公共卫生健康具有潜在的威胁,有待于进一步研究.  相似文献   

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