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1.
H5N1禽流感病毒在禽类中广泛流行,对家禽养殖业造成严重经济损失。1997年香港地区首次出现人感染H5N1禽流感病例,2003年之后多个国家相继出现H5N1禽流感病毒感染人事件,目前已有16个国家650人感染发病,患者死亡率高达60%以上。随着H5N1禽流感病毒的持续流行与进化,该病毒仍然对公共卫生具有严重威胁。综述了H5N1禽流感病毒的进化特点、流行情况以及致病性。  相似文献   

2.
流感病毒的不断变异是造成流感经常流行的主要原因.研究表明人流感病毒的来源与禽流感病毒的存在密切相关.最近出现的禽流感病毒跨种属感染人的事件,预示引起下一次爆发的流感病毒流行可能直接来源于禽流感病毒.因人类对新出现的病毒缺乏免疫力,开发有效疫苗仍然是预防流感流行的关键.对流感灭活疫苗包括灭活疫苗有效成分的改良,H5N1、H9N2型人.禽流感疫苗研究和应用反向遗传技术制备流感灭活疫苗等方面的研究进展进行了探讨.  相似文献   

3.
H5N1禽流感的威胁与全球应对   总被引:1,自引:0,他引:1  
当前H5N1禽流感在迁徙禽类、家禽中的暴发,以及越来越多的人感染病例的发生,使流感全球大流行的可能性持续存在。简要综述了H5N1禽流感在鸟类和其他动物中的暴发情况,H5N1禽流感的人感染病例,以及全球禽流感应对计划及疫苗、药物、病原体基础研究的进展。  相似文献   

4.
禽流感病毒跨种属感染人的机制研究进展   总被引:7,自引:0,他引:7  
禽流感病毒(avian influenza virus,简称AIV)不仅引起禽类感染和流行,而且可以打破种属屏障(speciesbarrier)、引起人或其他哺乳动物感染和传播。近年来对人呼吸道抗禽流感病毒感染的非特异屏障机制、禽流感病毒对人感染的机制研究不断取得新的进展。  相似文献   

5.
禽流感病毒(avian influenza virus,简称AIV)不仅引起禽类感染和流行,而且可以打破种属屏障(spec ies barrier)、引起人或其他哺乳动物感染和传播。近年来对人呼吸道抗禽流感病毒感染的非特异屏障机制、禽流感病毒对人感染的机制研究不断取得新的进展。  相似文献   

6.
野禽(主要是雁形目和鸻形目)被认为是禽流感病毒的天然宿主。北美和欧洲自二十世纪七十年代后陆续开展野禽禽流感病毒的监测。研究发现从野鸭和滨鸟及鸥类能分离到所有HA和NA亚型的禽流感病毒,而且野禽中禽流感病毒与家禽和人感染禽流感病毒的疫情密切相关。因而野禽禽流感病毒对家禽养殖业和人类健康构成了极大的威胁。本文将从禽流感病毒在野禽、家禽和人群中的传播、全球野禽禽流感病毒监测的主要结果以及监测方法、采样类型和检测方法进行归纳总结,以期能帮助我们更好地了解野禽禽流感病毒的生态分布和流行规律,从而使我们更为有效地预防和控制禽流感,应对未来可能出现的流感大流行。  相似文献   

7.
禽流感:一种人畜共患病   总被引:4,自引:0,他引:4  
禽流感 (AvianInfluenza ,AI)是严重危害畜牧业与人类健康的一种传染性疾病。多年来在世界上许多国家和地区都发生过此病 ,危害严重 ,经济损失巨大。禽流感病毒可感染多种动物 ,包括人、猪、马、鲸、海豹和雪貂。禽流感病毒经变异或基因重组 ,已具备感染人的能力 ,有可能成为人类新型流感流行的潜在病原。本文对与禽流感病毒相关的流感疫情进行历史性的回顾 ,并对其人畜共患机制做了初步探讨  相似文献   

8.
禽流感病毒在全球好些地方流行,尽管未发现在人之间传染,但接触染病物(如瘟鸡等)可直接传染,染病后造成伤亡,特别禽流感病毒H5N1型有潜在的危险性。WHO高度重视。据称对这种禽流感尚无特效药。当前,防治禽流感病毒除了隔离、灭杂、注射禽流感疫苗之外,还有药物研发的几条途径有  相似文献   

9.
禽流感病毒H9N2亚型在多种陆禽流行并反复感染哺乳动物猪和人,其对公共卫生安全呈潜在巨大威胁。本文应用体外禽流感病毒H9N2亚型感染人肺组织和免疫组化实验,探讨禽流感病毒H9N2亚型跨种间感染人的机制、H9N2病毒在人肺组织复制特性及组织嗜性。结果显示,禽流感病毒H9N2亚型(Ck/GX/1875/04、Ck/GX/187/05)和季节性人流感病毒H3N2亚型(A/ST/602/05)均可感染人肺组织;免疫组化检测流感病毒核蛋白(Nucleoprotein,NP),病毒复制的主要靶细胞为肺泡细胞、呼吸细支气管上皮细胞和细支气管上皮细胞;免疫组化和免疫荧光双重染色法检测流感病毒感染肺泡类型,禽流感病毒H9N2亚型感染II型肺泡细胞。结果提示,禽流感病毒H9N2可适应宿主人以及在人肺上皮细胞有效复制,病毒持续感染人有助于病毒基因进化进而演变成大流行新型流感病毒的潜能。  相似文献   

10.
刘超  陈薇  李艳梅 《生命科学》2011,(10):1034-1039
2009年4月初,在墨西哥和美国出现一种新型甲型(H1N1)流感病毒。该病毒通过人-人传播迅速在全球范围蔓延。该病毒拥有来自人流感病毒、禽流感病毒和猪流感病毒的基因片段,其HA基因与引发1918年大流行的流感病毒株的HA基因同源性很高。该病毒倾向于感染儿童、青少年、孕妇,以及具有心肺疾病的人。据观察,它在人群中的传播能力高于季节性流感。部分感染患者具有在季节性流感中罕见的呕吐和腹泻症状。先前的流感病毒大流行和2009年爆发的甲型H1N1流感病毒大流行表明,由于流感病毒变异速度快、容易发生基因重排,新产生的变异毒株很可能造成新的大流行,威胁人类健康。由于禽流感病毒和人流感病毒都能感染猪,猪被认为是通过基因重排生成新的大流行病毒的"混合容器"。  相似文献   

11.
A mathematical model is proposed to interpret the spread of avian influenza from the bird world to the human world. Our mathematical model warns that two types of the outbreak of avian influenza may occur if the humans do not prevent the spread of avian influenza. Moreover, it suggests that we cannot feel relieved although the total infected humans are kept at low level. In order to prevent spread of avian influenza in the human world, we must take the measures not only for the birds infected with avian influenza to exterminate but also for the humans infected with mutant avian influenza to quarantine when mutant avian influenza has already occurred. In particular, the latter measure is shown to be important to stop the second pandemic of avian influenza.  相似文献   

12.
禽流感与猪流感病毒:跨越物种传播的新认识   总被引:5,自引:1,他引:4  
今年在墨西哥暴发的流感疫情来源于一种新的流感病毒:甲型H1N1病毒.这种病毒包括人源,禽源和猪源等甲型流感病毒基因片段,为混合毒株.比较了禽、猪和人的流感病毒在其天然宿主中的致病机理,主要目的是评估猪和禽的流感病毒成为人兽共患病的可能性,同时还评估猪在禽流感病毒传入人的过程中可能起到的作用.禽流感和猪流感作为人畜共患疾病,在流感病毒从动物到人的传播过程中起到关键的作用.猪作为流感病毒的中间宿主,具有混合器作用,人、猪、禽流感病毒可在其体内进行基因重排产生新病毒,并可能跨越种间屏障感染人类.但是流感病毒本身的跨越种间障碍传播不足以引起人流感的大暴发,动物流感病毒必须经过显著的遗传变异后才能使其在人群中长期存在.  相似文献   

13.
Evolution and ecology of influenza A viruses.   总被引:148,自引:0,他引:148       下载免费PDF全文
In this review we examine the hypothesis that aquatic birds are the primordial source of all influenza viruses in other species and study the ecological features that permit the perpetuation of influenza viruses in aquatic avian species. Phylogenetic analysis of the nucleotide sequence of influenza A virus RNA segments coding for the spike proteins (HA, NA, and M2) and the internal proteins (PB2, PB1, PA, NP, M, and NS) from a wide range of hosts, geographical regions, and influenza A virus subtypes support the following conclusions. (i) Two partly overlapping reservoirs of influenza A viruses exist in migrating waterfowl and shorebirds throughout the world. These species harbor influenza viruses of all the known HA and NA subtypes. (ii) Influenza viruses have evolved into a number of host-specific lineages that are exemplified by the NP gene and include equine Prague/56, recent equine strains, classical swine and human strains, H13 gull strains, and all other avian strains. Other genes show similar patterns, but with extensive evidence of genetic reassortment. Geographical as well as host-specific lineages are evident. (iii) All of the influenza A viruses of mammalian sources originated from the avian gene pool, and it is possible that influenza B viruses also arose from the same source. (iv) The different virus lineages are predominantly host specific, but there are periodic exchanges of influenza virus genes or whole viruses between species, giving rise to pandemics of disease in humans, lower animals, and birds. (v) The influenza viruses currently circulating in humans and pigs in North America originated by transmission of all genes from the avian reservoir prior to the 1918 Spanish influenza pandemic; some of the genes have subsequently been replaced by others from the influenza gene pool in birds. (vi) The influenza virus gene pool in aquatic birds of the world is probably perpetuated by low-level transmission within that species throughout the year. (vii) There is evidence that most new human pandemic strains and variants have originated in southern China. (viii) There is speculation that pigs may serve as the intermediate host in genetic exchange between influenza viruses in avian and humans, but experimental evidence is lacking. (ix) Once the ecological properties of influenza viruses are understood, it may be possible to interdict the introduction of new influenza viruses into humans.  相似文献   

14.
In April 2009, a novel influenza A subtype H1N1 triple reassortant virus (novel H1N1 2009), composed of genes from swine, avian, and human influenza A viruses, emerged in humans in the United States and Mexico and spread person-to-person around the world to become the first influenza pandemic of the 21st century. The virus is believed to have emerged from a reassortment event involving a swine virus some time in the past 10 to 20 years, but pigs, pork, and pork products have not been involved with infection or spread of the virus to or among people. Because countries quickly implemented recently developed pandemic influenza plans, the disease was detected and reported and public health authorities instituted control measures in a timely fashion. But the news media's unfortunate and inappropriate naming of the disease as the "swine flu" led to a drop in the demand for pork and several countries banned pork imports from affected countries, resulting in serious negative economic impacts on the pork industry. With the continual circulation and interspecies transmission of human, swine, and avian influenza viruses in countries around the world, there are calls for strengthening influenza surveillance in pigs, birds, and other animals to aid in monitoring and assessing the risk of future pandemic virus emergence involving different species. We identify and discuss several lessons to be learned from pandemic H1N1 2009 from a One Health perspective, as stronger collaboration among human, animal, and environmental health sectors is necessary to more effectively prevent or detect and respond to influenza pandemics and thus improve human, animal, and environmental health and well-being.  相似文献   

15.
The emerging threat of a human pandemic caused by the H5N1 avian influenza virus strain magnifies the need for controlling the incidence of H5N1 infection in domestic bird populations. Culling is one of the most widely used control measures and has proved effective for isolated outbreaks. However, the socio-economic impacts of mass culling, in the face of a disease which has become endemic in many regions of the world, can affect the implementation and success of culling as a control measure. We use mathematical modeling to understand the dynamics of avian influenza under different culling approaches. We incorporate culling into an SI model by considering the per capita culling rates to be general functions of the number of infected birds. Complex dynamics of the system, such as backward bifurcation and forward hysteresis, along with bi-stability, are detected and analyzed for two distinct culling scenarios. In these cases, employing other control measures temporarily can drastically change the dynamics of the solutions to a more favorable outcome for disease control.  相似文献   

16.
Kida H 《Uirusu》2004,54(1):93-96
Recent outbreaks of highly pathogenic avian influenza in chickens and ducks that occurred in 9 Asian countries including Japan alarmed to realize that there is no border for infections and gave a rise to great concern for human health as well as for agriculture. This H5N1 virus jumped the species barrier and caused severe disease with high mortality in humans in Viet Nam and Thailand; 15 deaths of 22 cases and 8 of 12, respectively. A second concern was the possibility that the situation could give rise to another influenza pandemic in humans since genetic reassortment may occur between avian and human influenza viruses when a person is concurrently infected with viruses from both species. This process of gene swapping inside the human body can give rise to a new subtype of the influenza virus to which humans would not have immunity. The outbreaks also emphasized the need to continue active surveillance on avian influenza throughout the year to undertake aggressive emergency control measures as soon as an infection is detected.  相似文献   

17.
禽流感及其免疫防制研究   总被引:2,自引:0,他引:2  
禽流感一直是严重危害世界各国养禽业发展的头号大敌,近期又成为继严重急性呼吸道综合症(SARS)后又一严重威胁人类生命安全的重要疾病,由于禽流感病毒抗原及其致病力的易变性,这就要求未来的防制策略要采取快速检测,并用先进的分子生物学技术进行病毒鉴定、检疫及免疫保护等措施,建立全国性甚至全球性禽流感检测防制网络,并且搞清禽流感与人类流感的关系,从而保证人和动物的安全.  相似文献   

18.
Since the first human case of H5N1 avian influenza virus infection was reported in 1997, this highly pathogenic virus has infected hundreds of people around the world and resulted in many deaths. The ability of H5N1 to cross species boundaries, and the presence of polymorphisms that enhance virulence, present challenges to developing clear strategies to prevent the pandemic spread of this highly pathogenic avian influenza (HPAI) virus. This review summarizes the current understanding of, and recent research on, the avian influenza H5N1 virus, including transmission, virulence, pathogenesis, clinical characteristics, treatment and prevention.  相似文献   

19.
An avian influenza A virus, A/Mallard/NY/6750/78(H2N2), was restricted in in replication in the respiratory tract of squirrel monkeys. Avian-human influenza A reassortant viruses possessing the six RNA segments coding for nonsurface proteins (i.e., internal genes) of this avian virus were as restricted in replication in squirrel monkeys as their avian influenza parent. These findings indicated that restriction of replication of the avian influenza virus is a function of one or more of its internal genes. For an investigation of which of the avian influenza genes was responsible for restricted replication in the respiratory tract of primates, reassortant viruses were produced that contained human influenza virus surface antigens from the A/Udorn/72(H3N2) virus and one or more of the internal genes derived from the avian influenza virus parent. Avian-human reassortant influenza A viruses containing only the nucleoprotein or matrix protein RNA segment from the avian influenza virus parent were as restricted in their growth as an avian-human influenza reassortant virus containing each of the six avian influenza internal genes. In addition, an avian-human influenza reassortant virus possessing only the avian RNA 1 and nonstructural genes (which by themselves do not specify restricted replication) manifested a significant reduction of virus replication in squirrel monkey tracheas. Thus, the avian nucleoprotein and matrix genes appear to play a major role in the host range restriction exhibited by the A/Mallard/78 virus and its reassortants, but the combination of RNA 1 and nonstructural genes also contributes to restriction of replication.  相似文献   

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