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1.
根据一些病毒的DNA多聚酶氨基酸序列中特有的保守序列VYGDTD设计的简并寡核苷酸 ,经地高辛标记后与对虾白斑综合征病毒基因库克隆杂交 ,筛选出一段长度为 70 7bp的EcoRI基因片段 ,该片段在一个开放阅读框内。并含DNA多聚酶B家族特有的保守序列YGDTDS。经与基因库比较 ,其氨基酸序列与藻类DNA病毒科 (Phycodnaviridae)的几株藻类病毒的DNA多聚酶片段有部分相似 ,因此推测该核苷酸片段为对虾白斑综合征病毒DNA多聚酶基因的部分序列。  相似文献   

2.
根据一些病毒的DNA多聚酶氨基酸序列中特有的保守序列VYGDTD设计的简并寡核苷酸,经地高辛标记后与对虾白斑综合征病毒基因库克隆杂交,筛选出一段长度为707bp的EcoRI基因片段,该片段在一个开放阅读框内。并含DNA多聚酶B家族特有的保守序列YGDTDS。经与基因库比较,其氨基酸序列与藻类DNA病毒科(Phycodnaviridae)的几株藻类病毒的DNA多聚酶片段有部分相似,因此推测该核苷酸片  相似文献   

3.
在对虾白斑综合征病毒(White spot syndrome virus,WSSV)的基因组中发现一个具有细胞因子受体特征的开放阅读框,该阅读框全长2022个核苷酸,编码674个氨基酸,蛋白质理论分子量为76kDa。该基因含有真核生物细胞因子gp130受体特征序列。为了研究该基因的功能,采用PCR方法从病毒基因组中扩增出基因片段,克隆到pGEM-T Easy载体中,经BamH I和Sal I双酶切后插入pET28b表达载体中。重组质粒转化到大肠杆菌BL21中,IPTG诱导后,经SDS-PAGE电泳表明在。76kDa处有目的蛋白表达。用冰浴超声波对诱导后的菌液进行处理以获得初步纯化的蛋白,作为抗原人工免疫实验兔子以获得含特异性抗体的抗血清。该基因的表达成功,为其功能的进一步深入研究奠定了基础。  相似文献   

4.
康桦华  陆承平 《病毒学报》2007,23(6):490-493
对虾白斑综合征病毒(White spot syndromevirus,WSSV)是对虾养殖的主要病原之一,它是目前发现的基因组最大的动物病毒,为环状双链DNA病毒[1,2],全基因组序列分析结果显示,对虾白斑综合征病毒和其他杆状病毒相差甚远,最新病毒分类报告已将该病毒划归新建立的线头病毒科(Nima-viridae)白斑病毒属(Whispovirus)[3,4]。目前Gen-Bank公布有3个版本的WSSV全序列[1,2],其基因组大小的测定结果相差较大。不同的WSSV毒株可能在形态结构、理化性质上无法区分,但病毒基因组限制酶切片段长度多态性(RFLP)可以将之区分开来,Marks等[6,7]通过计…  相似文献   

5.
钱娟  齐义鹏 《病毒学报》2005,21(6):461-467
对虾白斑综合征是一种严重危害对虾养殖业的病毒性疾病.由于目前对其病原体对虾白斑综合征病毒(WSSV)的研究不够深入,所以对WSSV的有效防治仍然是一大难题.为此,用完整的对虾白斑综合征病毒粒子作为靶抗原固相包被,淘选噬菌体展示单链抗体文库,得到两个能够与WSSV结合的单链抗体:E2和H4.单链抗体H4能够结合病毒并抑制病毒对原代培养的对虾淋巴细胞的感染,这些结果表明此单链抗体具有开发为诊断试剂盒和抗病毒药物的潜力.  相似文献   

6.
对虾白斑综合征病毒的细胞因子受体基因的分析与表达   总被引:1,自引:1,他引:1  
在对虾白斑综合征病毒(White spot syndrome virus,WSSV)的基因组中发现一个具有细胞因子受体特征的开放阅读框,该阅读框全长2022个核苷酸,编码674个氨基酸,蛋白质理论分子量为76kDa.该基因含有真核生物细胞因子gpl30受体特征序列.为了研究该基因的功能,采用PCR方法从病毒基因组中扩增出基因片段,克隆到pGEM-T Easy载体中,经BamH I和Sal I双酶切后插入pET28b表达载体中.重组质粒转化到大肠杆菌BL21中,IPTG诱导后,经SDS-PAGE电泳表明在76kDa处有目的蛋白表达.用冰浴超声波对诱导后的菌液进行处理以获得初步纯化的蛋白,作为抗原人工免疫实验兔子以获得含特异性抗体的抗血清.该基因的表达成功,为其功能的进一步深入研究奠定了基础.  相似文献   

7.
The envelope proteins of White spot syndrome virus (WSSV) are very fragile and easy to be destroyed during purification. It was difficult to obtain a large quantity of intact virions by routine sucrose gradient centrifugation. After modifying the sucrose gradient by adding citrate sodium, we can obtain a large quantity of intact virions and nucleocapsids. This purified virions and nucleocapsids were subsequently used for analyzing viral structural proteins and DNA extraction. The result showed that this modified techniaue is very efficient for virus purification.  相似文献   

8.
对虾白斑综合征病毒厦门分离株ORF220编码真核生物GP130受体同源蛋白。将ORF220和绿色荧光蛋白编码基因融合在一起克隆到昆虫杆状病毒表达载体pFastBacI,然后与AcBacmid共同转染DH10B细胞。用PCR鉴定含有ORF220和EGFP基因的重组质粒,提取纯化重组质粒并转染昆虫细胞进行表达。结果发现,DNA转染后3-5d可以在荧光显微镜下观察到绿色荧光,表明融合蛋白在昆虫系统内成功表达。用病毒上清液感染昆虫细胞进行时相观察,结果表明,ORF220蛋白在昆虫细胞的细胞质和细胞核内呈随机分布,没有特异的细胞定位。  相似文献   

9.
家蚕核多角体病毒(NPV)感染的中肠组织中的DNA多聚酶,经过磷酸纤维素柱层析纯化,正常家蚕中肠与NPV感染的家蚕中肠NPV多聚酶都表现了前和后两个活力峰,感染NPV的家蚕中肠DNA多聚酶前、后峰的比活力比正常家蚕中肠DNA多聚酶前,后峰的比活力分别提高10~15倍,总活力回收为56~60%。研究了DNA多聚酶的性质,讨论了与NPV复制的关系。  相似文献   

10.
对虾白斑综合征病毒厦门分离株ORF220编码真核生物GP130受体同源蛋白.将ORF220和绿色荧光蛋白编码基因融合在一起克隆到昆虫杆状病毒表达载体pFastBacI,然后与AcBacmid共同转染DH10B细胞.用PCR鉴定含有ORF220和EGFP基因的重组质粒,提取纯化重组质粒并转染昆虫细胞进行表达.结果发现,DNA转染后3-5d可以在荧光显微镜下观察到绿色荧光,表明融合蛋白在昆虫系统内成功表达.用病毒上清液感染昆虫细胞进行时相观察,结果表明,ORF220蛋白在昆虫细胞的细胞质和细胞核内呈随机分布,没有特异的细胞定位.  相似文献   

11.
比较我国沿海不同海域对虾白斑综合征杆状病毒三个分离株:即唐海分离株(渤海湾)、宁波分离株(东海),深圳分离株(南海)的同源性。三个WSSV分离株基因组的限制笥内切酶(Sac Ⅰ,HindⅢ,PstⅠ)酶切多态(RFLP)以及病毒结构蛋白图谱完全一致,证实造成我国从南对北对虾爆发性流行病的对虾白斑杆状病毒为同一种病毒。利用高保真Taq酶,分别以报道的日本对虾杆状病毒(RV-PJ-PRDV),斑节对虾白斑综合征杆状病毒(WSBV-PmNOBⅢ)基因组核酸片段特异性引物进行PCR扩增,结果均能从中国一杆状病毒(WSSV)基因组中扩增得到相应大小的PCR产物,扩增产物序列分析表明中国对虾白斑杆状病毒(WSSV)与斑节对虾白斑综合征杆状病毒(WSBV-PmNOBⅢ),日本对虾相状RV-PJ=PRDV)同源率分别为100%与97%,其结果为证实亚洲及太平洋地区对虾白斑综合征杆状病毒为同一种病毒或同一种病毒的不同株系提供了依据。  相似文献   

12.
对虾白斑综合征杆状病毒同源性比较的研究   总被引:3,自引:1,他引:3  
比较我国沿海不同海域对虾白斑综合征杆状病毒三个分离株即唐海分离株(渤海湾),宁波分离株(东海),深圳分离株(南海)的同源性。三个WSSV分离株基因组的限制性内切酶(Sac I,Hind III,Pst I)酶切多态(RFLP)以及病毒结构蛋白图谱完全一致,证实造成我国从南至北对虾爆发性流行病的对虾白斑杆状病毒为同一种病毒。利用高保真Taq酶,分别以报道的日本对虾杆状病毒(RV-PJ=PRDV),斑节对虾白斑综合征杆状病毒(WSBV=PmNOBIII)基因组核酸片段特异性引物进行PCR扩增,结果均能从中国对虾白斑杆状病毒(WSSV)基因组中扩增得到相应大小的PCR产物,扩增产物序列分析表明中国对虾白斑杆状病毒(WSSV)与斑节对虾白斑综合征杆状病毒(WSBV=PmNOBIII),日本对虾杆状病毒(RV-PJ=PRDV)同源率分别为100%与97%,其结果为证实亚洲及太平洋地区对虾白斑综合征杆状病毒为同一种病毒或同一种病毒的不同株系提供了证据。  相似文献   

13.
White spot syndrome virus (WSSV) is currently the most serious global threat for cultured shrimp production. Although its large, double-stranded DNA genome has been completely characterized, most putative protein functions remain obscure. To provide more informative knowledge about this virus, a proteomic-scale network of WSSV-WSSV protein interactions was carried out using a comprehensive yeast two-hybrid analysis. An array of yeast transformants containing each WSSV open reading frame fused with GAL4 DNA binding domain and GAL4 activation domain was constructed yielding 187 bait and 182 prey constructs, respectively. On screening of ∼28,000 pairwise combinations, 710 interactions were obtained from 143 baits. An independent coimmunoprecipitation assay (co-IP) was performed to validate the selected protein interaction pairs identified from the yeast two-hybrid approach. The program Cytoscape was employed to create a WSSV protein–protein interaction (PPI) network. The topology of the WSSV PPI network was based on the Barabási-Albert model and consisted of a scale-free network that resembled other established viral protein interaction networks. Using the RNA interference approach, knocking down either of two candidate hub proteins gave shrimp more protection against WSSV than knocking down a nonhub gene. The WSSV protein interaction map established in this study provides novel guidance for further studies on shrimp viral pathogenesis, host-viral protein interaction and potential targets for therapeutic and preventative antiviral strategies in shrimp aquaculture.White spot syndrome virus (WSSV)1 is the causative agent of white spot disease (WSD) and is one of the most serious viral pathogens that threaten the shrimp culture industry worldwide. Because WSD causes rapid and high mortality up to 100% within 3–10 days after viral infection (1), it causes dramatic economic losses on farms. WSSV is a large enveloped, ovoid to bacilliform, double-stranded DNA (dsDNA) virus with a genome of ∼300 kb (See reviews in (2, 3)). The WSSV genome has been completely characterized for isolates from Thailand (GenBank accession number AF369029), China (accession number AF332093) and Taiwan (accession number AF440570). To expand its basic genetic information, various genomic and proteomic approaches have been applied to gain more insight into the molecular mechanisms of WSSV pathogenesis (See reviews in (2, 3)). However, the roles of most of the WSSV proteins still remain to be elucidated. This is due to the fact that many of its putative open reading frames (ORFs) lack homology to known proteins in the database. Protein–protein interaction studies can provide a valuable framework for understanding the roles of protein functions. Interaction studies of WSSV proteins have particularly focused on viral structural proteins (415). However, so far there has been no report on a protein–protein interaction (PPI) network for WSSV or any other crustacean virus. By contrast, several PPI networks for cellular organisms such as Saccharomyces cerevisiae (16, 17), Helicobacter pylori (18), Drosophila melanogaster (19), Caenarhabitis elegans (20), Plasmodium falciparum (21), and Homo sapiens (22, 23) and pathogens such as bacteriophage T7 (24), vaccinia virus (25), hepatitis C virus (26), and herpesviruses (2729) have already been established. Therefore, the present study aimed to obtain a more fundamental understanding of WSSV protein interactions. A comprehensive yeast two-hybrid assay was employed to generate viral fusion proteins with DNA binding (BD) and activation (AD) domains in an array format that effectively allowed searching every possible binary interaction in WSSV. The interaction results from the yeast two-hybrid assays were subsequently validated by coimmunoprecipitation (co-IP). Topological properties of the WSSV PPI network were assessed and compared with previously published viral networks. Candidate viral hub proteins with high numbers of interacting partners were identified in this study and their significance was investigated using an RNA interference approach.  相似文献   

14.
White spot syndrome virus (WSSV) is a major pathogen in shrimp cultures. The interactions between viral proteins and their receptors on the surface of cells in a frontier target tissue are crucial for triggering an infection. In this study, a yeast two-hybrid (Y2H) library was constructed using cDNA obtained from the stomach and gut of Litopenaeus vannamei, to ascertain the role of envelope proteins in WSSV infection. For this purpose, VP37 was used as the bait in the Y2H library screening. Forty positive clones were detected after screening. The positive clones were analyzed and discriminated, and two clones belonging to the peritrophin family were subsequently confirmed as genuine positive clones. Sequence analysis revealed that both clones could be considered as the same gene, LV-peritrophin (LvPT). Co-immunoprecipitation confirmed the interaction between LvPT and VP37. Further studies in the Y2H system revealed that LvPT could also interact with other WSSV envelope proteins such as VP32, VP38A, VP39B, and VP41A. The distribution of LvPT in tissues revealed that LvPT was mainly expressed in the stomach than in other tissues. In addition, LvPT was found to be a secretory protein, and its chitin-binding ability was also confirmed.  相似文献   

15.
In this study we found that a blue shrimp (Litopenaeus stylirostris) lysozyme gene (Lslzm) was up-regulated in WSSV-infected shrimp, suggesting that lysozyme is involved in the innate response of shrimp to this virus. Shrimp were intramuscularly injected with Lslzm protein to identify how this recombinant protein protects L. stylirostris from WSSV infection and to determine how this protein influences nonspecific cellular and humoral defense mechanisms. Higher survival rates and a lower viral load (compared with controls) were reported for shrimps that were first injected with the Lslzm protein and then infected with WSSV. In addition, the Lslzm expression level and the immunological parameters (including THC, phagocytic activity, respiratory burst activity, phenoloxidase activity and lysozyme activity) were all significantly higher in the WSSV-infected shrimp treated with the Lslzm protein, compared with the controls. These results indicate that lysozyme is effective at blocking WSSV infection in L. stylirostris and that lysozyme modulates the cellular and humoral defense mechanisms after they are suppressed by the WSSV virus.  相似文献   

16.
17.
White spot syndrome virus (WSSV) causes large economic losses to the shrimp aquaculture industry, and thus far there are no efficient therapeutic treatments available against this lethal virus. In this study, we present the development of a novel real time isothermal recombinase polymerase amplification (RPA) assay for WSSV detection on a small ESEQuant Tube Scanner device. The RPA sensitivity, specificity and rapidity were evaluated by using a plasmid standard as well as viral and shrimp genomic DNAs. Compared with qPCR, the RPA assay revealed more satisfactory performance. It reached a detection limit up to 10 molecules in 95% of cases as determined by probit analysis of 8 independent experiments within 6.41±0.17 min at 39°C. Consequently, this rapid RPA method has great application potential for field use or point of care diagnostics.  相似文献   

18.
An in vivo expression system to produce large amounts of virus-derived dsRNAs in bacteria to provide a practical control of white spot syndrome virus (WSSV) in shrimp was developed. The bacterially synthesized dsRNA specific to VP28 gene of WSSV promoted gene-specific interference with the WSSV infection in shrimp. Virus infectivity was significantly reduced in WSSV-challenged shrimp injected with VP28-dsRNA and 100% survival was recorded. The inhibition of the expression of WSSV VP28 gene in experimentally challenged animals by VP28-dsRNA was confirmed by RT-PCR and Western blot analyses. Furthermore, we have demonstrated the efficacy of bacterially expressed VP28-dsRNA to silence VP28 gene expression in SISK cell line transfected with eukaryotic expression vector (pcDNA3.1) inserted with VP28 gene of WSSV. The expression level of VP28 gene in SISK cells was determined by fluorescent microscopy and ELISA. The results showed that the expression was significantly reduced in cells transfected with VP28dsRNA, whereas the cells transected with pcDNA-VP28 alone showed higher expression. The in vivo production of dsRNA using prokaryotic expression system could be an alternative to in vitro method for large-scale production of dsRNA corresponding to VP28 gene of WSSV for practical application to control the WSSV in shrimp farming.  相似文献   

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