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1.
Duck virus enteritis (DVE) is an acute and contagious herpes virus infection of duck, geese and swans with high morbidity and mortality. The development of specific mucosal immune system against duck enteritis virus (DEV) infection for ducks has been hindered by a lack of knowledge concerning the purification of immunoglobulin A (IgA) of duck. In the present work, the method for purification of duck immunoglobulin A was developed, and the induction of intestinal mucosal immune responses against DEV was studied by orally infected ducklings with virulent DEV. The results showed that a continuous increased DEV DNA levels were observed in blood and various organs examined of orally infected ducklings throughout the infection, which was accompanied by the development of infection in ducklings from mild progressed to severe pathological lesions. Furthermore, a marked increased level of DEV-specific IgA and IgG antibodies in bile, serum and the intestinal tract, as well as the density of IgA+ cells in intestine were detected between 1 and 12 days p.i., followed by a drastic reduction of the antibody levels and the density of IgA+ cells at 15 days p.i. The results indicate that the DVE infection can stimulate both IgA-dominated antibody immune responses in the intestinal tract, and IgG-dominated antibody systemic immunity in the serum of ducklings orally inoculated with virulent DEV. The severe lesions of the villus epithelial cells and the lymphoid organs can suppress the intestinal mucosal immune responses.  相似文献   

2.
Qi X  Yang X  Cheng A  Wang M  Zhu D  Jia R 《Avian diseases》2008,52(2):338-344
To better understand the pathogenesis of duck virus enteritis (DVE), the levels of viral DNA in various tissues of ducklings during acute stage of virulent duck enteritis virus (DEV) infection were investigated by using quantitative real-time polymerase chain reaction. The results show that the viral levels of DEV in systemic organs have a close correlation with the progression of disease. The rapid dissemination and active replication of virulent DEV in multiple systemic organs at the early phase of acute infection accelerate the progression of disease. The levels of viral DNA increase sharply soon after developed clinical signs of disease, and the extent of increase and the magnitude of DEV DNA load in various tissues of ducklings after the exhibition of clinical signs may be a critical determinant of the outcome of DEV infection. The relatively high levels of DEV in bursa and small intestine tissues of dead ducklings most likely reflect the abundance of target epithelial and lymphoid cells in these tissues, which therefore play a key role in the pathogenesis of acute DVE and manifest as severe tissue lesions on the bursa and small intestine.  相似文献   

3.
Yu X  Jia R  Huang J  Shu B  Zhu D  Liu Q  Gao X  Lin M  Yin Z  Wang M  Chen S  Wang Y  Chen X  Cheng A 《Veterinary research》2012,43(1):56
Orally delivered DNA vaccines against duck enteritis virus (DEV) were developed using live attenuated Salmonella typhimurium (SL7207) as a carrier and Escherichia coli heat labile enterotoxin B subunit (LTB) as a mucosal adjuvant. DNA vaccine plasmids pVAX-UL24 and pVAX-LTB-UL24 were constructed and transformed into attenuated Salmonella typhimurium SL7207 resulting SL7207 (pVAX-UL24) and SL7207 (pVAX-LTB-UL24) respectively. After ducklings were orally inoculated with SL7207 (pVAX-UL24) or SL7207 (pVAX-LTB-UL24), the anti-DEV mucosal and systemic immune responses were recorded. To identify the optimum dose that confers maximum protection, we used different doses of the candidate vaccine SL7207 (pVAX-LTB-UL24) during oral immunization. The strongest mucosal and systemic immune responses developed in the SL7207 (pVAX-LTB-UL24) (1011 CFU) immunized group. Accordingly, oral immunization of ducklings with SL7207 (pVAX-LTB-UL24) showed superior efficacy of protection (60-80%) against a lethal DEV challenge (1000 LD50), compared with the limited survival rate (40%) of ducklings immunized with SL7207 (pVAX-UL24). Our study suggests that the SL7207 (pVAX-LTB-UL24) can be a candidate DEV vaccine.  相似文献   

4.
鸭瘟病毒强毒株在感染鸭实质器官内的增殖与分布   总被引:2,自引:0,他引:2  
鸭瘟病毒(DPV)CHv强毒株经皮下注射、滴鼻和口服3种途径分别感染20日龄天府肉鸭,于攻毒后10、30、60、90min以及4、12、48、72h和9、15d每组分别剖杀2只鸭,采集心、肝、脾、肺、肾、脑、胸腺、法氏囊、哈德氏腺等实质器官,应用TaqMan-MGB探针实时荧光定量PCR对DPV在这些器官的分布和增殖进行检测。结果表明,DPV分布到具体器官的速度与感染的途径、鸭的解剖结构密切相关,其中皮下注射是DPV分布到各实质器官速度最快的途径。30min于皮下感染鸭的肝、脾、胸腺、法氏囊、哈德氏腺、肺、脑、肾,口服感染鸭的肺和法氏囊,滴鼻感染鸭的心脏和哈德氏腺均检测到DPV-DNA;90min所有受检样品中检测到DPV-DNA。鸭抗DPV感染的免疫器官的重要性依次是脾、胸腺、法氏囊和哈德氏腺,30min内DPV-DNA分布到脾、胸腺、法氏囊的速度和数量决定了DPV感染的潜伏期和疾病的严重程度。不同途经感染鸭的相同器官在同一时间内的DPV-DNA拷贝数大多以皮下感染鸭为最高。DPV致死鸭的法氏囊和肾是DPV-DNA含量最高的实质器官。  相似文献   

5.
Duck virus enteritis (DVE), also called duck plague, is one of the major contagious and fatal diseases of ducks, geese and swan. It is caused by duck enteritis virus (DEV)/Anatid herpesvirus-1 of the genus Mardivirus, family Herpesviridae, and subfamily Alpha-herpesvirinae. Of note, DVE has worldwide distribution, wherein migratory waterfowl plays a crucial role in its transmission within and between continents. Furthermore, horizontal and/ or vertical transmission plays a significant role in disease spread through oral-fecal discharges. Either of sexes from varying age groups of ducks is vulnerable to DVE. The disease is characterized by sudden death, vascular damage and subsequent internal hemorrhage, lesions in lymphoid organs, digestive mucosal eruptions, severe diarrhea and degenerative lesions in parenchymatous organs. Huge economic losses are connected with acute nature of the disease, increased morbidity and mortality (5%–100%), condemnations of carcasses, decreased egg production and hatchability. Although clinical manifestations and histopathology can provide preliminary diagnosis, the confirmatory diagnosis involves virus isolation and detection using serological and molecular tests. For prophylaxis, both live-attenuated and killed vaccines are being used in broiler and breeder ducks above 2 weeks of age. Since DEV is capable of becoming latent as well as shed intermittently, recombinant subunit and DNA vaccines either alone or in combination (polyvalent) are being targeted for its benign prevention. This review describes DEV, epidemiology, transmission, the disease (DVE), pathogenesis, and advances in diagnosis, vaccination and antiviral agents/therapies along with appropriate prevention and control strategies.  相似文献   

6.
Duck is susceptible to many pathogens, such as duck hepatitis virus, duck enteritis virus (DEV), duck tembusu virus, H5N1 highly pathogenic avian influenza virus (HPAIV) in particular. With the significant role of duck in the evolution of H5N1 HPAIV, control and eradication of H5N1 HPAIV in duck through vaccine immunization is considered an effective method in minimizing the threat of a pandemic outbreak. Consequently, a practical strategy to construct a vaccine against these pathogens should be determined. In this study, the DEV was examined as a candidate vaccine vector to deliver the hemagglutinin (HA) gene of H5N1, and its potential as a polyvalent vaccine was evaluated. A modified mini-F vector was inserted into the gB and UL26 gene junction of the attenuated DEV vaccine strain C-KCE genome to generate an infectious bacterial artificial chromosome (BAC) of C-KCE (vBAC-C-KCE). The HA gene of A/duck/Hubei/xn/2007 (H5N1) was inserted into the C-KCE genome via the mating-assisted genetically integrated cloning (MAGIC) to generate the recombinant vector pBAC-C-KCE-HA. A bivalent vaccine C-KCE-HA was developed by eliminating the BAC backbone. Ducks immunized with C-KCE-HA induced both the cross-reactive antibodies and T cell response against H5. Moreover, C-KCE-HA-immunized ducks provided rapid and long-lasting protection against homologous and heterologous HPAIV H5N1 and DEV clinical signs, death, and primary viral replication. In conclusion, our BAC-C-KCE is a promising platform for developing a polyvalent live attenuated vaccine.

Electronic supplementary material

The online version of this article (doi:10.1186/s13567-015-0174-3) contains supplementary material, which is available to authorized users.  相似文献   

7.
本实验应用了免疫组织化学的单克隆抗体间接酶标染色法,对人工感染鸭瘟病毒雏鸭的组织切片进行染色观察。旨在研究病毒在鸭体内分布,对其进行定位。研究结果显示,鸭的心脏、肝脏、脾、胸腺、肠、法氏囊、胰、肺、肾等组织的细胞浆内均出现了染色的特异阳性反应物。结果表明,鸭瘟病毒广泛分布于感染雏鸭的各种组织器官,并造成一定的组织病理变化。  相似文献   

8.
商品肉鸭鸭瘟病毒的分离与鉴定   总被引:1,自引:0,他引:1  
采用鸭胚成纤维细胞培养从山东和北京两地暴发的鸭瘟临床病例中分离到两株鸭肠炎病毒(DEV),分别命名为SD和BJ。以单抗介导的间接免疫荧光(IFA)检测方法,对两个分离株感染细胞滴片进行间接IFA检测,可见感染细胞内有明显的蓝绿色荧光。试验感染7日龄北京鸭可引起鸭瘟的典型临床症状.死亡率为100%(3/3),取试验感染死亡鸭肝脏、法氏囊和脑组织等制备石蜡包埋切片,利用单抗进行免疫组化检验,除脑组织外均检测到病毒抗原。根据在GenBank上已发表的DEV两段序列设计两对引物,采用聚合酶链式反应(PCR)对野毒sD株人工感染鸭肝脏和BJ珠自然发病鸭肝脏病科提取核酸为模板进行扩增,得到预期大小为765bp和1954bp的目的片段,对长片段进行测序,与发表序列进行比较,毒株间的碱基序列同源性达到99.73%。  相似文献   

9.
将鸭甲肝病毒鸡胚化弱毒MY株Vp1基因原核表达工程菌(pET32a+Vp1,BL21(DE3)PlysS)对基因Yp1进行大量表达和纯化,得到鸭甲肝弱毒MY株Vp1重组蛋白作为抗原制备亚单位疫苗,免疫雏鸭,用间接ELISA检测方法对免疫后抗体生成水平进行监测,并通过动物攻毒试验评价免疫保护效果.结果显示:Vp1重组蛋白免疫家兔后血清检测琼扩效价≥1∶64,细胞中和试验效价为1/45;雏鸭免疫后抗体生成水平呈明显上升趋势,对攻毒起到了保护作用.首次揭示了DHAV-1结构蛋白Vp1刺激机体产生抗体使雏鸭获得保护的能力.  相似文献   

10.
为了建立重组鸭瘟病毒技术,构建了鸭瘟病毒转移质粒。在对鸭瘟强毒和弱毒株TK基因进行测序分析后,将鸭瘟病毒TK-UL24DNA片段克隆于pUC18载体中,构建了质粒pTK;将PCR扩增的GFP真核表达盒插入pTK质粒的TK基因内部,获得转移载体质粒pTK-GFP。鸭瘟病毒TK-UL24测序分析表明鸭瘟强、弱毒株TK基因序列完全相同;转移载体携带Pcmv-GFP-SV40pA表达盒,测序验证其序列与源序列一致。pTK-GFP在脂质体介导下,转染鸭胚成纤维细胞和鸭肾细胞,在荧光显微镜下观察绿色荧光蛋白表达情况。质粒转染细胞后,绿色荧光蛋白得到了有效的表达,为进一步开展重组鸭瘟病毒的研究和构建具有遗传标记的鸭瘟疫苗奠定了基础。  相似文献   

11.
Latency sites and reactivation of duck enteritis virus   总被引:16,自引:0,他引:16  
Shawky S  Schat KA 《Avian diseases》2002,46(2):308-313
Duck virus enteritis (DVE) is a contagious disease caused by herpesvirus in waterfowl populations. Recovered birds become carriers and shed the virus periodically. Reactivation of latent duck enteritis virus (DEV) has been implicated in outbreaks of DVE in domestic and migrating waterfowl populations. In this study, the sites for virus latency were determined in white Pekin ducks infected with the DEV-97 strain. At 3 wk postinfection, infectious virus was not detectable in tissues or cloacal swabs (CSs). At 7 and 9 weeks postinfection, the viral DNA was detected by polymerase chain reaction in the trigeminal ganglia (TG), suggesting that the virus is latent. Viral DNA was detected in the peripheral blood lymphocytes (PBL), spleen, thymus, bursa, and CSs only after in vitro cocultivation. In vivo virus reactivation was demonstrated when dexamethasone or a combination of dexamethasone and cyclophosphamide was inoculated in latently infected ducks. The reactivation of DEV occurred without any clinical evidence of the disease, but the virus was detected in PBL and CSs. We conclude from this study that DEV establishes latency in TG and lymphoid tissues including PBL.  相似文献   

12.
为探究中药茜草对鸭肠炎病毒感染所致鸭免疫器官组织病理损伤的影响,将30日龄健康三穗麻鸭随机分成给药组(中药干预)、模型组(病毒感染组)和对照组,经相应处理后于处理66、90和114 h时扑杀,采集相关组织和血清样本进行病原核酸PCR扩增、免疫器官指数测定、血清生化指标检测和病理组织切片观察.结果 显示:与模型组相比,给...  相似文献   

13.
We studied apoptosis induced by duck enteritis virus (DEV) in vivo, focusing on the lymphoid organs that constitute the main targets for infection: thymus, bursa of Fabricius (BF), and spleen. Fifty Pekin ducks were inoculated subcutaneously with a virulent strain of DEV. The morphology of lymphoid organs of these infected ducks was observed by light microscopy and transmission electron microscopy. Cell death by classical necrosis was observed in lymphocytes of the DEV-infected thymus, BF, and spleen. Lymphocyte apoptosis also was observed at the same time, and it was further confirmed by in situ terminal deoxynucleotidyl transferase dUTP nick-end labeling and agarose gel electrophoresis. We conclude that apoptosis and necrosis of lymphocytes induced by DEV infection resulted in the depletion of lymphocytes and that apoptosis of lymphocytes may play an important role in the pathogenesis of duck viral enteritis.  相似文献   

14.
为研究鸭病毒性肠炎病毒(DEV)基因组异构体的存在形式,本研究在已建立的以pCC1FOS为载体的DEV疫苗株基因文库基础上对DEV全序列进行了测定,并进一步对DEV基因组的异构体进行了研究。对261个重组fosmid中的DEV基因组片段的末端序列进行测序及序列分析,初步证明了DEV基因组有3种异构体,即P型、IS型和ILS型,未发现IL型的存在。并且,以上3种异构体在基因组中所占比例分别为77.1%、8.6%和14.3%。通过对11个重组fosmid的全序列测定,进一步确认了以上3种异构体的存在。该结果为DEV的分类提供了重要实验依据。  相似文献   

15.
为建立一种快速鸭疱疹病毒1型(Anatid herpesvirus 1,AHV-1),又名鸭肠炎病毒(duck enteritis virus,DEV)病原检测方法,本研究根据GenBank上登录的DEV基因序列,设计合成内、外2对引物,建立了检测DEV的套式PCR方法。该方法对正常鸭胚、健康鸭肝肠组织、鸡传染性喉气管炎病毒、伪狂犬病病毒、减蛋综合征病毒、鸭肝炎病毒和新城疫病毒的扩增结果均为阴性;该方法第1次扩增的敏感性是10 ng,第2次扩增的敏感性是0.1 ng,第2次比第1次扩增的敏感性高100倍。建立的套式PCR方法具有良好的特异性、敏感性,可以准确快速检测出极低含量的DEV,将为鸭病毒性肠炎的病原检测及分子流行病学调查等提供一种高效、快速、特异、灵敏的检测方法。  相似文献   

16.
W Lin  K M Lam  W E Clark 《Avian diseases》1984,28(3):641-650
A herpesvirus isolated from waterfowl dying of duck enteritis (DE) was tentatively designated the Sheridan-83. It was serologically related to the original Holland and Lake Andes (LA) strains of duck enteritis viruses (DEV). Other biological characteristics indicated that the Sheridan-83 was more closely related to the Holland strain than to the LA virus. The Sheridan-83 was nonpathogenic to ducks, and ducks inoculated with this virus developed resistance to challenge with the virulent strain LA.  相似文献   

17.
本试验对388只含有母源抗体雏麻鸭和118只无母源抗体雏北京鸭分别进行了早期免疫接种。前者进行了不同日龄(1、5、10、15)、不同免疫途径(肌肉,皮下、点滴、饮水)鸭瘟弱毒疫苗的一次性免疫,后者进行了1日龄、不同途径(肌肉、皮下、滴鼻、喷雾)鸭瘟弱毒疫苗的首免和二免。无母源抗体雏鸭可采用肌肉和皮下途径免疫,最佳时间从1日龄开始首次免疫,免疫30天后进行二次免疫。对含母源抗体雏鸭也可采用肌肉、皮下途径,最佳时间从10日龄开始免疫,经过对含母源抗体和无母源抗体免疫雏鸭2个月的观察,前者经得住鸭瘟强毒10~(-8)的攻击,后者经得住10~(-3)的攻击;免疫效果高,免疫期达2个月仍保持着令人满意的免疫力,保护率达100%。含有母源抗体雏鸭,采用饮水和点滴途径免疫,前者最佳时间从1日龄开始免疫,后者从10日龄开始免疫,其安全性好,免疫效力高,免疫期达2个月,保护率达100%。用肌肉和饮水途径接种鸭瘟弱毒苗的方法进行大规模的预防接种,更为简便易行。 在试验中,还对早期免疫程序进行了探讨。  相似文献   

18.
人工感染鸭病毒性肠炎急性病例超微结构变化   总被引:1,自引:0,他引:1  
用鸭病毒性肠炎病毒(Duck enteritis virus,DEV)CH强毒株感染成年鸭复制鸭病毒性肠炎急性病例,分别于接种后不同时间,取心、肝、肾、脾、胸腺、十二指肠、法氏囊、脑和胰组织,制作超薄切片,电镜观察。结果表明:病变最早发生于肝和肾,而鸭死亡后以免疫器官和消化器官损伤最严重;各种细胞的变化主要表现为细胞肿胀,染色质或浓缩、碎裂或溶解,线粒体溶解成空泡样结构,其他细胞器破坏;脾、胸腺、法氏囊以及小肠固有层中的淋巴细胞在感染24h后,在出现细胞坏死的同时还出现较为明显的细胞凋亡变化;而鸭死亡后淋巴细胞主要表现为黑洞核样变化,整个细胞凝聚深染,染色质固缩,细胞浆均质深染,细胞膜模糊或不完整。  相似文献   

19.
依据GenBank登录的鸭肠炎病毒(DEV)核苷酸序列设计引物,利用长片段PCR技术扩增了DEV基因组UL36与UL43基因之间的未知序列,扩增所得片段长度约为15 kb.经EcoRV单酶切,将其中的3.9 kb片段克隆到pUC18中.序列分析表明该3.9 kb EcoR V片段含有2个完整的转录方向相反的与单纯疱疹病毒(HSV)UL41和UL42基因同源的ORF,命名为DEV UL41和ULA2基因.通过氨基酸序列比对发现:DEV UL41基因含有5个高度保守位点,而UL42含有2个,进化树分析表明DEV与疱疹病毒科a疱疹病毒亚科的马立克病毒、火鸡疱疹病毒的进化关系非常相近,为DEV的分类提供了参考依据.  相似文献   

20.
鸭瘟病毒的分子生物学研究进展   总被引:6,自引:0,他引:6  
鸭瘟病毒属疱疹病毒科、α-疱疹病毒亚科。其核酸结构为线状双股 DNA,衣壳为二十面体对称 ,有囊膜。鸭瘟病毒的 DNA具典型的疱疹病毒 DNA的特征 ,大小约为 1 50 kb,两端为末端重复序列 ,中间有内部重复序列。囊膜蛋白为疱疹病毒的主要保护性抗原 ,它在介导病毒进入细胞 ,以及病毒的成熟与释放中均起重要的作用。疱疹病毒的囊膜蛋白主要有糖蛋白 B( Glycoprotein B,g B)、g C、g D、g E、g I等。其他蛋白如 Ul3 6、Ul3 7等在病毒的成熟与释放中也起重要的作用。国内外已有多人建立起鸭瘟的PCR检测方法 ,而其基因工程疫苗的研究报道较少。但参考其他疱疹病毒特别是伪狂犬病的基因工程疫苗的研究 ,可以推测鸭瘟的基因工程疫苗研究也大有可为。  相似文献   

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