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1.
目的建立敏感的SARS小动物模型。方法通过显微注射技术,将编码SARS-CoV细胞受体的人血管紧张素转换酶(hACE2)基因导入小鼠的基因组中制备了hACE2转基因小鼠,在小鼠ACE2(mACE2)启动子的调控下,hACE2蛋白在转基因小鼠的肺脏、心脏、肾脏和小肠表达。我们观察了野生型和转基因小鼠在SARS冠状病毒接种后病原学和病理学方面的反应。结果在接种后第3天和第7天,病毒能够更有效地在转基因小鼠的肺脏复制,而且转基因小鼠出现更严重的肺损伤。肺组织的损伤包括肺间质充血、出血,单核细胞、淋巴细胞浸润及血浆蛋白的渗出,肺泡上皮细胞增生、脱落,此外,在转基因小鼠的某些器官还发现了血管炎、变性和坏死等病理变化。在转基因小鼠的肺上皮细胞、血管内皮细胞和脑神经细胞检测到病毒抗原。结论转基因小鼠比野生型小鼠对SARS病毒更易感,而且表现出更接近SARS患者的病理变化。  相似文献   

2.
目的通过观察SARS-CoV感染Lewis大鼠后,病理学、免疫学以及病毒的复制与外排情况变化,探讨其能否作为有效的SARS动物模型。方法SARS病毒感染9只Lewis大鼠,在感染后不同时间安乐死动物,应用光镜对动物的各脏器进行病理观察研究;用病毒分离和RT-PCR方法检测病毒外排与复制的情况;用ELISA法检测动物产生特异性抗体情况。结果在SARS-CoV感染Lewis大鼠后,肺组织出现一定的与人类SARS疾病相似的病理改变,在动物体内可检测到活病毒或病毒核酸,并可检测到特异性IgG抗体的存在。结论Lewis大鼠出现了特异的免疫反应及特征性病理改变,可做为灵长类SARS动物模型的有益补充用于SARS发病机理及疫苗的研发等。  相似文献   

3.
目的综合对比SARS-CoV感染的恒河猴、布氏田鼠及Lewis大鼠的病理学、免疫学以及病毒的复制与外排情况的变化,来探讨此三种动物在建立SARS模型上的特点。方法SARS病毒感染8只恒河猴、9只Lewis大鼠和20只布氏田鼠,在感染后不同时间安乐死动物,应用光镜对动物的各脏器进行病理观察研究;用病毒分离和RT-PCR方法检测病毒外排与复制的情况;用ELISA法检测动物产生特异性抗体情况。结果在SARS-CoV感染恒河猴、Lewis大鼠和布氏田鼠后,肺组织均出现一定的与人类SARS疾病相似的病理改变,在动物体内均可检测到活病毒或病毒核酸,并可检测到特异性IgG抗体的存在。在病死率上布氏田鼠最高;在病毒的复制与外排方面恒河猴的检出率最高,持续时间最长;在抗体产生情况上恒河猴与Lewis大鼠基本相似;在病理变化上恒河猴病变最重且最为复杂,与人类SARS疾病的病理变化最为接近。结论布氏田鼠,Lewis大鼠,特别是恒河猴动物模型可以用于SARS发病机制、疫苗和药物的研发,恒河猴动物模型是目前研究SARS疾病最理想的动物模型。  相似文献   

4.
SARS-CoV恒河猴模型动物中组织病理学动态变化   总被引:1,自引:0,他引:1  
目的在感染的8只恒河猴的SARS-CoV模型动物中,观察肺等组织中出现的系列病理学改变,为针对抗SARS药物筛选、疫苗评价中的免疫病理反应等奠定实验依据。方法SARS-CoV经鼻腔接种8只恒河猴,在感染的第5、7、10、15、20、30和60天,分别安乐处死动物,组织病理取材,制片,观察。结果经病毒分离和RT-PCR证实动物感染是成功的。系列病理改变表明,早期肺组织可见间质性肺炎,水肿、结构破坏、出血,巨噬细胞浸润;后期出现内皮细胞受损及再生,透明膜形成,小血管玻璃样变,肺组织纤维化及肺气肿形成,肺泡网状纤维和弹力纤维破坏并增生等,脾脏、淋巴结生发中心早期有萎缩,后期有恢复等病理学改变均和SARS患者相似。结论感染恒河猴出现与SARS患者类似的临床和病理学改变,为进一步研究该病毒的病原特性、发病机理、药物筛选、疫苗评价等方面的研究奠定了重要基础。  相似文献   

5.
采用鼻腔喷雾法(CCID50=105.7)研究了SARS冠状病毒(SARS-CoV)对成年和幼年布氏田鼠的感染效果.成年动物攻毒后出现死亡,表现为口鼻有出血,肠道出血;肺组织呈出血性间质性肺炎改变,肝、脾、肾、胰腺组织均呈淤血性改变;存活动物肺组织呈间质性肺炎,局灶出血及肺气肿改变,其他脏器未见明显病变.幼年动物攻毒后未见死亡但行动较为迟缓,主要脏器未见明显异常;早期肺组织有局限性肺炎改变,且病毒分离为阳性;同居对照组的一只动物有肺组织局灶性肺炎.结果表明,SARS-CoV可以很强地感染布氏田鼠;成年布氏田鼠比幼年动物对SARS-CoV更敏感;布氏田鼠有望成为一种比较理想的小型SARS动物模型。  相似文献   

6.
重症急性呼吸综合征(SARS)是由SARS冠状病毒(SARS-CoV)引起的一种急性传染病,在其序列被测出后几个月内人们就找到了SARS-CoV的受体血管紧张素转换酶2(ACE2)。因病毒受体与病毒入侵细胞密切相关,因而有必要深入研究ACE2与SARS-CoV之间的关系。本文总结了ACE2在各组织器官的分布及功能,分析了ACE2基因的变异与病毒进入及SARS疾病严重程度之间的关系、ACE2基因的表达水平与病毒进入及SARS疾病严重程度之间的关系。这些研究将为理解SARS-CoV与ACE2之间的相互作用及设计针对ACE2的抗SARS药物提供重要的理论依据。  相似文献   

7.
国际动态     
SARS病毒感染金黄地鼠研究RobertsA等人为了评价疫苗和抗SARS病毒药物的有效性,建立了金黄地鼠小动物模型。他们用滴鼻的方法用SARS病毒感染了5周龄金黄地鼠。根据检测结果,SARS病毒在肺脏和鼻甲骨中以高滴度复制。下呼吸道的病毒滴度在攻毒第2天达到高峰,第7天后消失。在攻毒后第14天,在部分地鼠鼻甲骨检测出有低滴度病毒复制。病毒在攻毒早期就在上呼吸道复制,病理检查发现呼吸道上皮细胞坏死,随后引起炎症反应,局部硬化,病毒被清除,肺组织最终被修复。在呼吸道中,病毒复制滴度较高,病理变化明显,但地鼠没有发病。在攻毒后第7天可…  相似文献   

8.
刘崇海  杨锡强  李瑗 《病毒学报》2006,22(5):345-349
探讨用灵长类动物树鼠句建立呼吸道合胞病毒(RSV)感染动物模型的可行性。28只树鼠句随机分为7组,每组4只,鼻内滴入106PFU RSV,感染后每24h检测1组。另取7只树鼠句鼻内滴入100μl Hep-2细胞培养液,滴鼻后每24h检测1只作对照。无菌取树鼠句肺组织进行病毒分离、空斑形成实验检测病毒滴度、病理检查和RT-PCR检测肺组织内RSV mRNA表达。结果显示:树鼠句感染RSV后,无明显呼吸道感染症状;树鼠句肺组织匀浆接种于Hep-2细胞上,第3、4、5实验组出现细胞病变效应(CPE);树鼠句感染RSV后肺部病理改变在3~7d较为明显,主要为间质改变;在106PFU感染浓度下树鼠句肺组织内RSV处于低水平复制,复制的高峰期在3~5d,峰值在第4d。提示:树鼠句可以用来建立RSV感染的动物模型。  相似文献   

9.
为建立恒河猴严重急性呼吸道综合征(SARS)的模型并对其致病特点进行观察,采用病毒分离、免疫荧光、光镜及RT-PCR方法对病毒感染组和非感染组恒河猴不同时间、不同组织或分泌物进行检测.结果显示从恒河猴不同组织中分离到病毒,而且在病毒感染后第2d和第5d的血液、第7、9d的鼻咽分泌物、第3d的粪、第5d的粪尿中均检测到SARS-CoV RNA.光镜观察到病毒感染组肺组织肺泡间隔增宽,有大量淋巴细胞、单核细胞浸润,肺泡腔有渗出,甚至形成透明膜样物;多个肺泡形成机化性肺炎的表现.感染组肝组织可见较大的坏死灶,并伴有大量炎性细胞浸润.结论认为已成功建立了恒河猴SARS模型,可用于评价抗SARS药物和疫苗的研究.  相似文献   

10.
[目的]建立禽流感H5N1病毒感染恒河猴的动物模型,探讨禽流感在哺乳类动物的发病机制。[方法]通过“环甲膜穿刺术”经气管注射鸡胚培养的禽流感H5N1病毒(AF148678;ACGoose/Guangdong/11961H5N1)感染恒河猴,观察恒河猴染毒后出现的临床体征,用显微计数法检测外周血白细胞的动态变化,用ELISA检测禽流感病毒特异性抗体变化规律,用流式细胞仪检测外周血T淋巴细胞及其亚群的动态变化。在染毒后第1天、第3天、第10天和第14天分别剖杀染毒组恒河猴1只,HE染色观察主要组织器官的病理变化,用病毒分离、免疫组化和RT-PCR三种方法分析禽流感病毒侵袭机体的特点。[结果]临床症状和体征:急性起病,表现为发热,呼吸困难,精神状态下降,活动度明显减少,食欲下降,咳嗽,紫绀等,肺部听诊双肺可闻及干、湿音。1、病理特点:以肺部损伤为主,伴多器官病变。肺部的病变主要表现为弥漫性肺泡损伤,先后经历渗出期、增生期和纤维化期;在肝脏、肾脏和中枢神经系统中也观察到变性、坏死等病理变化。2、病毒侵袭机体的特点:病毒只在呼吸系统中复制,不在呼吸道以外的组织器官中复制;肺内支气管上皮细胞、肺泡上皮细胞和肺巨噬细胞是禽流感病毒侵犯的主要细胞类型。3、外周血象特点:外周血白细胞总数、淋巴细胞数出现短暂的下降,中性粒细胞数先升后降,但均于感染第7天后逐渐恢复到正常水平。4、抗体变化特点:感染后第7~11天,抗体水平持续快速升高;感染第11天后,抗体水平呈逐渐缓慢升高趋势(观察到染毒后50天为止)。5、细胞免疫特点:细胞免疫功能受损,表现为CD3+T淋巴细、CD3+CD4+T淋巴细胞和CD3+CD8+T淋巴细胞均出现短暂的下降,但这种细胞免疫功能受损是可逆的,到感染第7天后逐渐恢复回升至正常。[结论]1、恒河猴感染后的临床特点、病理变化、外周血象、免疫反应等均与人禽流感严重病例相类似,表明该模型是成功的,可为禽流感病毒在人体内致病机理的研究以及抗禽流感病毒的药物和疫苗评价提供最近似于人类的动物模型。2、综合本研究的实验结果,我们认为,H5N1禽流感毒主要攻击的对象为呼吸系统,不在呼吸道以外的组织器官中复制。禽流感病毒感染引起的急性弥漫性肺损伤是发病的中心环节,其发病可能经过病毒侵入、复制阶段,免疫损伤阶段和多器官功能损伤阶段。  相似文献   

11.
Newly emerging viruses often circulate as a heterogeneous swarm in wild animal reservoirs prior to their emergence in humans, and their antigenic identities are often unknown until an outbreak situation. The newly emerging severe acute respiratory syndrome coronavirus (SARS-CoV) and reemerging influenza virus cause disproportionate disease in the aged, who are also notoriously difficult to successfully vaccinate, likely due to immunosenescence. To protect against future emerging strains, vaccine platforms should induce broad cross-reactive immunity that is sufficient to protect from homologous and heterologous challenge in all ages. From initial studies, we hypothesized that attenuated Venezuelan equine encephalitis virus (VEE) replicon particle (VRP) vaccine glycoproteins mediated vaccine failure in the aged. We then compared the efficacies of vaccines bearing attenuated (VRP(3014)) or wild-type VEE glycoproteins (VRP(3000)) in young and aged mice within novel models of severe SARS-CoV pathogenesis. Aged animals receiving VRP(3000)-based vaccines were protected from SARS-CoV disease, while animals receiving the VRP(3014)-based vaccines were not. The superior protection for the aged observed with VRP(3000)-based vaccines was confirmed in a lethal influenza virus challenge model. While the VRP(3000) vaccine's immune responses in the aged were sufficient to protect against lethal homologous and heterologous challenge, our data suggest that innate defects within the VRP(3014) platform mediate vaccine failure. Exploration into the mechanism(s) of successful vaccination in the immunosenescent should aid in the development of successful vaccine strategies for other viral diseases disproportionately affecting the elderly, like West Nile virus, influenza virus, norovirus, or other emerging viruses of the future.  相似文献   

12.
To establish a small animal model of severe acute respiratory syndrome (SARS), we developed a mouse model of human severe acute respiratory syndrome coronavirus (SARS-CoV) infection by introducing the human gene for angiotensin-converting enzyme 2 (hACE2) (the cellular receptor of SARS-CoV), driven by the mouse ACE2 promoter, into the mouse genome. The hACE2 gene was expressed in lung, heart, kidney, and intestine. We also evaluated the responses of wild-type and transgenic mice to SARS-CoV inoculation. At days 3 and 7 postinoculation, SARS-CoV replicated more efficiently in the lungs of transgenic mice than in those of wild-type mice. In addition, transgenic mice had more severe pulmonary lesions, including interstitial hyperemia and hemorrhage, monocytic and lymphocytic infiltration, protein exudation, and alveolar epithelial cell proliferation and desquamation. Other pathologic changes, including vasculitis, degeneration, and necrosis, were found in the extrapulmonary organs of transgenic mice, and viral antigen was found in brain. Therefore, transgenic mice were more susceptible to SARS-CoV than were wild-type mice, and susceptibility was associated with severe pathologic changes that resembled human SARS infection. These mice will be valuable for testing potential vaccine and antiviral drug therapies and for furthering our understanding of SARS pathogenesis.  相似文献   

13.
The severe acute respiratory syndrome (SARS), caused by a novel coronavirus (SARS-CoV), resulted in substantial morbidity, mortality, and economic losses during the 2003 epidemic. While SARS-CoV infection has not recurred to a significant extent since 2003, it still remains a potential threat. Understanding of SARS and development of therapeutic approaches have been hampered by the absence of an animal model that mimics the human disease and is reproducible. Here we show that transgenic mice that express the SARS-CoV receptor (human angiotensin-converting enzyme 2 [hACE2]) in airway and other epithelia develop a rapidly lethal infection after intranasal inoculation with a human strain of the virus. Infection begins in airway epithelia, with subsequent alveolar involvement and extrapulmonary virus spread to the brain. Infection results in macrophage and lymphocyte infiltration in the lungs and upregulation of proinflammatory cytokines and chemokines in both the lung and the brain. This model of lethal infection with SARS-CoV should be useful for studies of pathogenesis and for the development of antiviral therapies.  相似文献   

14.
No single animal model for severe acute respiratory syndrome (SARS) reproduces all aspects of the human disease. Young inbred mice support SARS-coronavirus (SARS-CoV) replication in the respiratory tract and are available in sufficient numbers for statistical evaluation. They are relatively inexpensive and easily accessible, but their use in SARS research is limited because they do not develop illness following infection. Older (12- to 14-mo-old) BALB/c mice develop clinical illness and pneumonitis, but they can be hard to procure, and immune senescence complicates pathogenesis studies. We adapted the SARS-CoV (Urbani strain) by serial passage in the respiratory tract of young BALB/c mice. Fifteen passages resulted in a virus (MA15) that is lethal for mice following intranasal inoculation. Lethality is preceded by rapid and high titer viral replication in lungs, viremia, and dissemination of virus to extrapulmonary sites accompanied by lymphopenia, neutrophilia, and pathological changes in the lungs. Abundant viral antigen is extensively distributed in bronchial epithelial cells and alveolar pneumocytes, and necrotic cellular debris is present in airways and alveoli, with only mild and focal pneumonitis. These observations suggest that mice infected with MA15 die from an overwhelming viral infection with extensive, virally mediated destruction of pneumocytes and ciliated epithelial cells. The MA15 virus has six coding mutations associated with adaptation and increased virulence; when introduced into a recombinant SARS-CoV, these mutations result in a highly virulent and lethal virus (rMA15), duplicating the phenotype of the biologically derived MA15 virus. Intranasal inoculation with MA15 reproduces many aspects of disease seen in severe human cases of SARS. The availability of the MA15 virus will enhance the use of the mouse model for SARS because infection with MA15 causes morbidity, mortality, and pulmonary pathology. This virus will be of value as a stringent challenge in evaluation of the efficacy of vaccines and antivirals.  相似文献   

15.
16.
To understand the pathogenesis and develop an animal model of severe acute respiratory syndrome (SARS)-associated coronavirus (SARS-CoV), the Frankfurt 1 SARS-CoV isolate was passaged serially in young F344 rats. Young rats were susceptible to SARS-CoV but cleared the virus rapidly within 3 to 5 days of intranasal inoculation. After 10 serial passages, replication and virulence of SARS-CoV were increased in the respiratory tract of young rats without clinical signs. By contrast, adult rats infected with the passaged virus showed respiratory symptoms and severe pathological lesions in the lung. Levels of inflammatory cytokines in sera and lung tissues were significantly higher in adult F344 rats than in young rats. During in vivo passage of SARS-CoV, a single amino acid substitution was introduced within the binding domain of the viral spike protein recognizing angiotensin-converting enzyme 2 (ACE2), which is known as a SARS-CoV receptor. The rat-passaged virus more efficiently infected CHO cells expressing rat ACE2 than did the original isolate. These results strongly indicate that host and virus factors such as advanced age and virus adaptation are critical for the development of SARS in rats.  相似文献   

17.
目的研究肠道病毒71型经不同途径感染不同日龄ICR小鼠后的感染状况,了解肠道病毒71型的感染特点,为了解EV71小鼠感染机制和模型制备提供实验信息和技术支撑。方法分别通过口腔途径、颅腔途径、肌肉途径及腹腔途径感染1日龄、7日龄及3~4周龄SPF级ICR小鼠,定期安乐动物,采集各器官组织进行病原学诊断,确定EV71病毒感染情况;同时建立一步RT-PCR、病毒分离、IFA及IEA等方法。结果经腹腔途径感染成年鼠出现竖毛、弓背、消瘦症状,其他各途径感染小鼠感染后未见竖毛、弓背、觅食减少、体重减轻、精神呆滞及神经系统症状。颅腔注射3~4周龄ICR小鼠能在脑组织检测到病毒RNA,腹腔注射和肌肉注射1日龄乳鼠能在肌肉组织和肠道检测到病毒RNA,其中,肌肉组织病毒分离可检测到活病毒。本研究同时建立了分子生物学、血清学方法,为今后研究其它适合EV71的动物模型奠定了基础。结论临床分离的EV71毒株通过口腔接种、颅腔、肌肉、腹腔注射途径感染1日龄、7日龄及3~4周龄SPF级ICR小鼠的疾病程度和病毒检出不同,ICR乳鼠及成年鼠可作为该病毒感染机制、病毒体内分布等基础研究,但用作EV71动物模型应用,感染程度尚不十分理想。  相似文献   

18.
Infection of humans with the severe acute respiratory syndrome coronavirus (SARS-CoV) results in substantial morbidity and mortality, with death resulting primarily from respiratory failure. While the lungs are the major site of infection, the brain is also infected in some patients. Brain infection may result in long-term neurological sequelae, but little is known about the pathogenesis of SARS-CoV in this organ. We previously showed that the brain was a major target organ for infection in mice that are transgenic for the SARS-CoV receptor (human angiotensin-converting enzyme 2). Herein, we use these mice to show that virus enters the brain primarily via the olfactory bulb, and infection results in rapid, transneuronal spread to connected areas of the brain. This extensive neuronal infection is the main cause of death because intracranial inoculation with low doses of virus results in a uniformly lethal disease even though little infection is detected in the lungs. Death of the animal likely results from dysfunction and/or death of infected neurons, especially those located in cardiorespiratory centers in the medulla. Remarkably, the virus induces minimal cellular infiltration in the brain. Our results show that neurons are a highly susceptible target for SARS-CoV and that only the absence of the host cell receptor prevents severe murine brain disease.  相似文献   

19.
SARS动物模型的研究   总被引:2,自引:0,他引:2  
利用分离的SARS CoV毒株BJ 0 1,经滴鼻等途径感染大鼠、豚鼠、黑线仓鼠、白化仓鼠和雏鸡等 5个种属的动物 ,筛选对SARS易感的小动物。在此基础上 ,选择食蟹猴和恒河猴进行SARS的人工感染实验 ,评价其作为SARS动物模型的可能性。结果表明 ,大鼠、豚鼠、黑线仓鼠、白化仓鼠和雏鸡等动物对SARS均不易感 ,感染后未观察到任何的临床及病理学改变 ,不过从感染 2周后的大鼠和豚鼠的肺和咽等组织样本中检测到了的特异的核酸 ,提示SARS CoV能够在这两种动物的体内复制。从感染猴子的分泌物和脏器中分离出了病毒 ,证明SARS CoV也能够在猴子体内复制。临床和病理组织学检查结果显示 ,SARS病毒接种食蟹猴和恒河猴后 ,可以引起所有实验猴发生间质性肺炎 ,其病理学改变与人类感染SARS病毒后肺部病变近似 ,但病变的严重程度比较人类的轻得多 ,除此之外无任何其它的明显的临床表现及组织病理学改变 ,按照动物模型的指标判断食蟹猴和恒河猴并不是SARS的理想动物模型 ,不过在目前尚没有更理想的动物模型情况下 ,以间质性肺炎为病理学检查指标 ,恒河猴和食蟹猴可以作为评价抗SARS药物和疫苗的模型动物  相似文献   

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