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1.
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   

2.
禽流感病毒与人禽流感的研究进展   总被引:2,自引:0,他引:2       下载免费PDF全文
禽流感病毒(AIV)与甲型流感病毒同属正黏病毒科(Orthonuxoviridae).迄今根据血凝素H,共有16个亚型,神经氨酸酶N共有9个亚型,可组成144种亚型.虽然H1~16均存在于禽中,但迄今已报道可直接感染人的AIV为H5、H7、H9及H10.其中1997年香港特区流行的亚型是H5N1,有18例患者,6例死亡.1999、2000、2004年在中国内地及香港特区感染人的AIV主要是H9N2亚型.有报道,H7N2、H7N3、H7N7、H10N7亚型分别曾在荷兰、美国、加拿大、埃及感染人,但病例数少,且未有患者死亡.  相似文献   

3.
以H5N1禽流感病毒株Ck/HK/Yu22/02作为抗原,应用常规杂交瘤技术和血凝抑制实验筛选出抗H5亚型禽流感病毒血凝素蛋白的单抗8H5,单抗8H5经免疫荧光鉴定具有很好的H5特异性.选择33株2002~2006年不同地域,不同宿主中分离的不同遗传变异亚系的H5N1病毒代表株,对单抗8H5分别进行血凝抑制实验及中和试验分析,结果显示单抗8H5对所有H5亚型病毒均有较强反应,而对非H5亚型标准病毒株均不反应,说明8H5是一株广谱性抗H5特异性中和单抗,并提示单抗8H5的HA识别表位可能是一个相当保守的中和表位.并且单抗8H5双抗夹心系统的初步评价显示了其在诊断应用上的前景.  相似文献   

4.
抗禽流感病毒H5N1亚型单克隆抗体制备初报   总被引:2,自引:0,他引:2  
目的制备禽流感H5N1亚型病毒的单克隆抗体,为相关研究提供工具。方法以禽流感H5N1亚型病毒免疫BALBc小鼠,取其脾细胞和SP20细胞融合,用血凝抑制试验(HI)和酶联免疫反应(ELISA)检测培养上清,并将阳性融合细胞稀释克隆化3次直至100%孔均为阳性,筛选阳性克隆株,运用免疫荧光法评估单克隆抗体检测病毒感染的犬肾细胞(MDCK)。结果得到三株稳定分泌抗体的细胞并命名为F8、F9、G11,抗体亚型鉴定结果分别为IgG1、IgG2a和IgG2b;在免疫荧光法单克隆抗体能够检测出感染MDCK细胞的病毒。结论建立了3株抗禽流感H5N1亚型病毒的单克隆抗体细胞株,其产生的一株高特异性的McAbG11能够用于H5N1亚型禽流感病毒感染诊断,并可能应用于禽流感病毒H5N1亚型感染的防治。  相似文献   

5.
建立以Real-time PCR为基础的新型高致病性A(H5N8)亚型禽流感病毒NA基因检测方法。针对2016年6月起频繁暴发的H5N8禽流感疫情,从GenBank和Global Initiative on Sharing All Influenza Data(GISAID)下载2014年以来的H5N8亚型禽流感病毒的NA序列,通过序列比对,在相对保守区域设计适用于实时荧光逆转录聚合酶链式反应(rRT-PCR)的引物和探针。选用28株不同NA亚型的流感病毒进行特异性验证,结果显示本文设计的引物探针组合能够特异性检测高致病性H5N8亚型禽流感病毒的NA基因。灵敏度检测结果显示,本文设计的引物探针组合能检出最低23个拷贝的RNA。本文建立了高致病性H5N8亚型禽流感病毒NA基因特异性荧光定量检测方法,与世界卫生组织(WHO)推荐的A型流感病毒M基因、H5基因检测引物探针的最低检测限一致,可以组合用于H5N8亚型禽流感病毒的检测。  相似文献   

6.
为阐明上海地区 H9N2亚型禽流感病毒分离株的遗传变异、分子特征和重组模式,选取2002和2006~2014年分离自活禽市场、家禽养殖场和生猪屠宰场的14株 H9N2亚型禽流感病毒进行分析。这14株病毒分别来源于鸡、鸭、鸽、野鸡咽喉和泄殖腔样品及猪肺脏样品,用 H9亚型荧光反转录‐聚合酶链反应(RT‐PCR)试剂盒检测后,阳性样品经无特定病原体(SPF)级鸡胚尿囊腔接种并分离病毒,用血凝抑制(HI)实验进一步确定其血凝素(HA)亚型。RT‐PCR分别扩增这14株病毒全基因并进行序列测定,分析8个基因片段的遗传发生关系,发现这些分离株主要由 F/98亚系、Y280亚系、G1亚系及未知亚系重组而成。根据8个基因片段的组合情况,这14株病毒可分成5个基因型。2002、2006~2008年分离的5株H9N2亚型禽流感病毒代表了4个不同基因型,2009~2014年分离的9株H9N2亚型禽流感病毒属第5种基因型,推测可能与疫苗免疫选择压力有关。因此,在以后工作中加强H9N2亚型禽流感分子流行病学监测是非常必要的。  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.
为直接根据颜色变化进行可视化检测H1亚型、N1亚型、N2亚型禽流感病毒(AIV),根据环介导等温扩增技术(LAMP),建立针对H1亚型AIV及特异性鉴定N1、N2亚型的逆转录环介导等温扩增(RT-LAMP)检测方法。根据GenBank中的AIV基因序列,设计了三套分别针对H1亚型AIV-HA基因及N1、N2亚型AIV-NA基因的特异性简并引物,并优化反应条件和体系。结果表明建立的检测方法对其它亚型AIV及禽呼吸道病原体无交叉扩增反应并能特异性地检测N1、N2亚型AIV,灵敏度优于传统的RT-PCR方法。整个反应在常规水浴中50min就可完成,反应结束后不需打开反应管盖,可根据反应液的颜色变化对结果直接进行判定。120份临床样品用建立的RT-LAMP方法检测到14份H1N1亚型AIV、8份H1N2亚型AIV,结果与病毒分离结果相符。本研究建立的三种RT-LAMP可视化检测技术特异、灵敏、快速、操作和结果判定简便,适合在基层进行H1亚型AIV的快速检测及N1、N2亚型AIV的分型。  相似文献   

9.
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   

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.
On 15 November 2016, a black swan that had died in a zoo in Akita prefecture, northern Japan, was strongly suspected to have highly pathogenic avian influenza (HPAI); an HPAI virus (HPAIV) belonging to the H5N6 subtype was isolated from specimens taken from the bird. After the initial report, 230 cases of HPAI caused by H5N6 viruses from wild birds, captive birds, and domestic poultry farms were reported throughout the country during the winter season. In the present study, 66 H5N6 HPAIVs isolated from northern Japan were further characterized. Phylogenetic analysis of the hemagglutinin gene showed that the H5N6 viruses isolated in northern Japan clustered into Group C of Clade 2.3.4.4 together with other isolates collected in Japan, Korea and Taiwan during the winter season of 2016–2017. The antigenicity of the Japanese H5N6 isolate differed slightly from that of HPAIVs isolated previously in Japan and China. The virus exhibited high pathogenicity and a high replication capacity in chickens, whereas virus growth was slightly lower in ducks compared with that of an H5N8 HPAIV isolate collected in Japan in 2014. Comprehensive analyses of Japanese isolates, including those from central, western, and southern Japan, as well as rapid publication of this information are essential for facilitating greater control of HPAIVs.
  相似文献   

12.
H5 highly pathogenic avian influenza viruses (HPAIV) have spread in both poultry and wild birds since late 2003. Continued circulation of HPAIV in poultry in several regions of the world has led to antigenic drift. In the present study, we analyzed the antigenic properties of H5 HPAIV isolated in Asia using four neutralizing mAbs recognizing hemagglutinin, which were established using A/chicken/Kumamoto/1‐7/2014 (H5N8), belonging to clade 2.3.4.4 and also using polyclonal antibodies. Viruses of clades 1.1, 2.3.2.1, 2.3.4, and 2.3.4.4 had different reactivity patterns to the panel of mAbs, thereby indicating that the antigenicity of the viruses of clade 2.3.4.4 were similar but differed from the other clades. In particular, the antigenicity of the viruses of clade 2.3.4.4 differed from those of the viruses of clades 2.3.4 and 2.3.2.1, which suggests that the recent H5 HPAIV have further evolved antigenically divergent. In addition, reactivity of antiserum suggests that the antigenicity of viruses of clade 2.3.4.4 differed slightly among groups A, B, and C. Vaccines are still used in poultry in endemic countries, so the antigenicity of H5 HPAIV should be monitored continually to facilitate control of avian influenza. The panel of mAbs established in the present study will be useful for detecting antigenic drift in the H5 viruses that emerge from the current strains.  相似文献   

13.
One of the major causes of death in highly pathogenic avian influenza virus (HPAIV) infection in chickens is acute induction of pro‐inflammatory cytokines (cytokine storm), which leads to severe pathology and acute mortality. DCs and respiratory tract macrophages are the major antigen presenting cells that are exposed to mucosal pathogens. We hypothesized that chicken DCs are a major target for induction of cytokine dysregulation by H5N1 HPAIV. It was found that infection of chicken peripheral blood monocyte‐derived dendritic cells (chMoDCs) with H5N1 HPAIV produces high titers of progeny virus with more rounding and cytotoxicity than with H9N2 LPAIV. Expression of maturation markers (CD40, CD80 and CD83) was weaker in both H5N1 and H9N2 groups than in a LPS control group. INF‐α, ‐β and ‐γ were significantly upregulated in the H5N1 group. Pro‐inflammatory cytokines (IL‐1β, TNF‐α and IL‐18) were highly upregulated in early mid (IL‐1), and late (IL‐6) phases of H5N1 virus infection. IL‐8 (CXCLi2) mRNA expression was significantly stronger in the H5N1 group from 6 hr of infection. TLR3, 7, 15 and 21 were upregulated 24 hr after infection by H5N1 virus compared with H9N2 virus, with maximum expression of TLR 3 mRNA. Similarly, greater H5N1 virus‐induced apoptotic cell death and cytotoxicity, as measured by terminal deoxynucleotidyl transferase‐mediated dUTP nick end labeling and lactate dehydrogenase assays, respectively, were found. Thus, both H5N1 and H9N2 viruses evade the host immune system by inducing impairment of chMoDCs maturation and enhancing cytokine dysregulation in H5N1 HPAIV‐infected cells.  相似文献   

14.
Several species of wild raptors have been found in Eurasia infected with highly pathogenic avian influenza virus (HPAIV) subtype H5N1. Should HPAIV (H5N1) reach North America in migratory birds, species of raptors are at risk not only from environmental exposure, but also from consuming infected birds and carcasses. In this study we used American kestrels as a representative species of a North American raptor to examine the effects of HPAIV (H5N1) infection in terms of dose response, viral shedding, pathology, and survival. Our data showed that kestrels are highly susceptible to HPAIV (H5N1). All birds typically died or were euthanized due to severe neurologic disease within 4–5 days of inoculation and shed significant amounts of virus both orally and cloacally, regardless of dose administered. The most consistent microscopic lesions were necrosis in the brain and pancreas. This is the first experimental study of HPAIV infection in a North American raptor and highlights the potential risks to birds of prey if HPAIV (H5N1) is introduced into North America.  相似文献   

15.
The role of wild birds in the spread of influenza H5N1 virus remains speculative and the ecology of influenza A viruses in nature is largely unstudied. There is an urgent need for multidisciplinary studies to explore the ecology of avian influenza viruses in wild birds and the environment to support ecological interpretation of the source of disease outbreaks in poultry.  相似文献   

16.
[目的]为了对途经三江保护区的野生迁徙水禽携带禽流感病毒(AIV)和新城疫病毒(NDV)的状况进行有效监测.[方法]在2005年10月、2006年4月、2006年10月3个候鸟的迁徙季节从三江保护区采集了158只野鸟的咽拭子和肛拭子样本.应用SPF鸡胚盲传、血凝和血凝抑制试验和RT-PCR等方法进行了病毒的分离和鉴定.[结果]结果共分离到20株AIV和13株NDV.20株AIV均来自2006年10月采集的样品,经常规血清学分型鉴定分为12个亚型,11个亚型来源于绿头鸭,分别为H2N2(2/20),H2N6(2/20),H3N4(1/20),H3N6(2/20),H3N7(2/20),H3N8(2/20),H6N2(2/20),H11N2(1/20),H11N3(1/20),H11N5(2/20),H11N6(1/20),另外一株来源于白眉鸭,为H5N2(1/20).13株NDV则来自3个迁徙季节的5种不同水禽采,其中包括绿头鸭(8/13),豆雁(1/13),白额雁(1/13),绿翅鸭(1/13)和鸳鸯(2/13).[结论]这一结果表明,拥有极大种群数量、在世界范围内广泛分布的绿头鸭,被认为可能是AIV和NDV最重要的自然宿主之一,并在病毒的传播上比其他野生鸟类具有更为重要的生态学意义.  相似文献   

17.
禽流感病毒(Avian influenza virus,AIV)不仅严重危害禽类,而且对人类生命健康造成严重威胁。鸽作为留鸟,具有作为AIV从野生鸟类传播至人类中间宿主的潜能。鸽对AIV的易感性以及在病毒传播中的作用却存在争议。通过分析AIV自然感染、人工感染鸽的流行病学以及实验研究数据,同时回顾了禽流感病毒感染鸽的机制,发现随着病毒的进化和时间的推移,鸽群AIV的感染率也在递增;尤其随着近年具有双受体结合特性的高致病性禽流感病毒(highly pathogenic avian influenza virus,HPAIV)clade2.3.4.4分支H5Nx毒株的出现,其感染鸽后排毒量上升以及鸽体间直接接触传播能力增强。为了有效防控AIV的跨种间传播,有必要加强对鸽感染AIV的流行病学监测和传播特性的研究,特别需要密切关注具双受体结合特性的H5Nx和H7N9 HPAIV对鸽易感性的发展趋势。  相似文献   

18.
The isolation of an H5N1 influenza A virus from a tree sparrow (Passer montanus) captured in East Java, Indonesia in 2010 is reported here. Its hemagglutinin and neuraminidase were genetically similar to those of human isolates from 2006-2007 in Indonesia. The finding of a tree sparrow H5N1 virus that possesses genetically similar surface molecules to those of human viruses highlights the importance of monitoring resident wild birds, as well as migratory birds, for pandemic preparedness.  相似文献   

19.
Multiple reassortment events within poultry and wild birds had resulted in the establishment of another novel avian influenza A(H10N8) virus, and finally resulted in human death in Nanchang, China. However, there was a paucity of information on the prevalence of avian influenza virus in poultry and wild birds in Nanchang area. We investigated avian influenza virus in poultry and wild birds from live poultry markets, poultry countyards, delivery vehicles, and wild-bird habitats in Nanchang. We analyzed 1036 samples from wild birds and domestic poultry collected from December 2013 to February 2014. Original biological samples were tested for the presence of avian influenza virus using specific primer and probe sets of H5, H7, H9, H10 and N8 subtypes by real-time RT-PCR. In our analysis, the majority (97.98%) of positive samples were from live poultry markets. Among the poultry samples from chickens and ducks, AIV prevalence was 26.05 and 30.81%, respectively. Mixed infection of different HA subtypes was very common. Additionally, H10 subtypes coexistence with N8 was the most prevalent agent during the emergence of H10N8. This event illustrated a long-term surveillance was so helpful for pandemic preparedness and response.  相似文献   

20.
A novel Clade 2.3.2.1c H5N1 reassortant virus caused several outbreaks in wild birds in some regions of China from late 2014 to 2015. Based on the genetic and phylogenetic analyses, the viruses possess a stable gene constellation with a Clade 2.3.2.1c HA, a H9N2-derived PB2 gene and the other six genes of Asian H5N1-origin. The Clade 2.3.2.1c H5N1 reassortants displayed a high genetic relationship to a human H5N1 strain (A/Alberta/01/2014). Further analysis showed that similar viruses have been circulating in wild birds in China, Russia, Dubai (Western Asia), Bulgaria and Romania (Europe), as well as domestic poultry in some regions of Africa. The affected areas include the Central Asian, East Asian-Australasian, West Asian-East African, and Black Sea/Mediterranean flyways. These results show that the novel Clade 2.3.2.1c reassortant viruses are circulating worldwide and may have gained a selective advantage in migratory birds, thus posing a serious threat to wild birds and potentially humans.
  相似文献   

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