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非洲猪瘟病毒间接ELISA抗体检测方法的建立   总被引:1,自引:0,他引:1  
非洲猪瘟(African swine fever,ASF)是一种急性、热性、高度接触性动物传染病,其病原为非洲猪瘟病毒(African swine fever virus,ASFV),临床上以高热、网状内皮系统出血和高死亡率为特征,易感猪群病死率高达100%。为了建立一种基于合成肽技术的非洲猪瘟病毒(African swine fever virus,ASFV)抗体血清学检测方法。本研究根据ASFV p30、p54和p72三种重要抗原设计3条合成肽,以此为包被抗原建立了ASFV间接ELISA抗体检测方法,并验证其敏感性、特异性、稳定性以及与进口试剂盒的符合率。结果显示,建立的间接ELISA方法的敏感性为91.4%,特异性为98.1%,批内和批间变异系数分别为3.7%~10.1%和4.7%~14.9%。与进口试剂盒比较,符合率为92.9%。结果表明该方法检测结果准确性高、且稳定性好,可检测ASFV特异性抗体。  相似文献   

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康力  周仕君  宋洁  李江南  翁长江 《病毒学报》2021,37(5):1128-1134
非洲猪瘟(African swine fever,ASF)是由非洲猪瘟病毒(African swine fever virus,ASFV)感染家猪和野猪引起的一种高致病性传染病,家猪感染ASFV强毒株后死亡率接近100%.为了研究ASFV的致病机制,利用绿色荧光蛋白(EGFP)作为报告基因构建重组病毒已经广泛应用,但易于定量检测且适用于高通量筛选的重组ASFV目前没有报道.本研究以ASFVHLJ/18分离株为亲本病毒,采用CRISPR/Cas9基因编辑技术和同源重组技术将表达Gaussia荧光素酶(Gluc)和EGFP的报告基因表达盒插入到ASFV的K145R基因的位置,构建可以同时表达Gluc和EGFP的重组ASFV(rASFV-Gluc-EGFP).通过PCR鉴定、Gluc和EGFP表达的检测,确定获得的重组ASFV能够感染猪肺泡巨噬细胞且表达Gluc和EGFP.对构建的重组病毒和亲本病毒进行生长曲线比较,结果表明插入的报告基因不影响病毒在猪肺泡巨噬细胞中的复制.F5、F10和F15代重组病毒基因鉴定和报告基因表达检测结果表明,重组病毒能稳定表达插入的双报告基因.本研究成功构建了表达Gluc和EGFP的重组ASFV,可以针对报告基因进行定量检测和高通量筛选,为ASFV的感染和致病机制研究奠定坚实的基础.  相似文献   

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2018年8月我国发现非洲猪瘟(African swine fever,ASF),并在多地蔓延,由于尚无疫苗和有效的治疗方法,病死率高达100%,给养猪业带来巨大的损失。目前控制该病,主要依靠快速、准确的诊断方法,尽早发现、处理,防止扩散。为制备特异性的非洲猪瘟病毒(African swine fever virus,ASFV)p54蛋白单克隆抗体,本研究利用大肠杆菌表达ASFV p54蛋白C端胞内区片段,构建能表达ASFV p54蛋白的工程菌E.coli BL21/pET-p54,经IPTG诱导表达可溶性的p54蛋白。用纯化后的可溶性蛋白免疫BALB/c小鼠,将免疫小鼠的脾细胞与骨髓瘤细胞融合,经4次筛选和3次亚克隆获得了21株分泌ASFV p54蛋白单克隆抗体的细胞株。通过ELISA测定腹水效价,结果均在1︰40 000~1︰5 120 000范围之内。以免疫组织化学染色法鉴定单克隆抗体,结果有9株可以特异性检出ASFV抗原。对免疫组化阳性的单克隆抗体进行亚类鉴定,结果 5株为IgG1,4株为IgG2a。以免疫印迹试验(Western Blot)和间接免疫荧光法(Indirect ...  相似文献   

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非洲猪瘟病毒跨膜蛋白CD2v的结构与功能研究进展   总被引:1,自引:0,他引:1  
非洲猪瘟(African swine fever,ASF)是由非洲猪瘟病毒(African swine fever virus,ASF V)感染家猪和野猪,引起的高度传染性和致死性动物传染病,不同品种和年龄阶段的猪均易感,发病率和死亡率可高达100%.ASFV是全球生猪产业的重点疫病之一,目前无商品化疫苗.ASFV是一种大而复杂的双链DNA双层囊膜病毒.ASFV主要跨膜蛋白CD2v是介导血细胞吸附(Hemadsorption,HAD)和鉴定病毒血清型的关键蛋白,它参与ASFV宿主免疫应答、免疫逃逸和病毒复制等生理生化过程,且是ASFV疫苗和抗病毒分子研发的潜在重要靶点.探究CD2v在ASFV感染中的作用及机制渐成热点.因此,本文对ASFV CD2v的结构及其生物学功能研究报道进行分析综述,将为阐明ASFV致病机理和疫苗研发等提供重要参考.  相似文献   

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由非洲猪瘟病毒(ASFV)引起的非洲猪瘟(ASF)给我国养猪业带来了不可估量的经济损失,严重阻碍了我国养猪业的发展,研发ASFV快速诊断试剂是目前最重要的内容之一。CP204L基因编码ASFV结构蛋白p30。本研究以克隆ASFV的CP204L基因为基础,通过基因重组技术,加入His标签,将构建的重组质粒命名为pET-28a-CP204L。将重组质粒转化至大肠杆菌BL21(DE3)感受态细胞,37℃经1mmol/L异丙基-β-D-硫代半乳糖苷(IPTG)诱导表达6h,表达蛋白进行SDS-PAGE鉴定和Western Blot检测。重组蛋白纯化后免疫小鼠制备筛选单克隆抗体,Western Blot和IFA验证单抗的结合特异性。结果表明,重组的pET-28a-CP204L诱导后表达蛋白为30kD,以不可溶性包涵体形式存在;表达蛋白利用His标签进行纯化,获得纯化蛋白2mg,单克隆抗体筛选获得5株IgG亚型的ASFV p30蛋白的单抗,且均具有良好的结合活性。本研究为发展ASFV检测方法提供了基础。  相似文献   

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曾喻兵  李飞  朱玲  徐志文 《病毒学报》2021,37(4):957-963
非洲猪瘟(African swine fever,ASF)是由非洲猪瘟病毒(African swine fever virus,ASFV)感染引起的一种急性、热性、高度接触性、致死性动物传染病.由于ASFV基因组庞大,变异能力强,免疫逃逸机制复杂,至今无有效药物和疫苗.近年来,对多基因家族的研究取得了很大的进展,可变区多基因家族拷贝数变化是导致ASFV变异的主要原因,且陆续发现多基因家族在决定细胞宿主范围、影响病毒毒力强弱、抑制Ⅰ型干扰素信号通路、抑制干扰素抗病毒效应和促进病毒蜱源感染中具有重要作用.本文对当前的ASFV多基因家族研究进展进行总结,阐述其在基因变异和病毒感染中的作用,以期为非洲猪瘟免疫逃逸机制的探索和疫苗的研发提供理论依据.  相似文献   

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African swine fever virus (ASFV), like other complex DNA viruses, deploys a variety of strategies to evade the host''s defence systems, such as inflammatory and immune responses and cell death. Here, we analyse the modifications in the translational machinery induced by ASFV. During ASFV infection, eIF4G and eIF4E are phosphorylated (Ser1108 and Ser209, respectively), whereas 4E-BP1 is hyperphosphorylated at early times post infection and hypophosphorylated after 18 h. Indeed, a potent increase in eIF4F assembly is observed in ASFV-infected cells, which is prevented by rapamycin treatment. Phosphorylation of eIF4E, eIF4GI and 4E-BP1 is important to enhance viral protein production, but is not essential for ASFV infection as observed in rapamycin- or CGP57380-treated cells. Nevertheless, eIF4F components are indispensable for ASFV protein synthesis and virus spread, since eIF4E or eIF4G depletion in COS-7 or Vero cells strongly prevents accumulation of viral proteins and decreases virus titre. In addition, eIF4F is not only activated but also redistributed within the viral factories at early times of infection, while eIF4G and eIF4E are surrounding these areas at late times. In fact, other components of translational machinery such as eIF2α, eIF3b, eIF4E, eEF2 and ribosomal P protein are enriched in areas surrounding ASFV factories. Notably, the mitochondrial network is polarized in ASFV-infected cells co-localizing with ribosomes. Thus, translation and ATP synthesis seem to be coupled and compartmentalized at the periphery of viral factories. At later times after ASFV infection, polyadenylated mRNAs disappear from the cytoplasm of Vero cells, except within the viral factories. The distribution of these pools of mRNAs is similar to the localization of viral late mRNAs. Therefore, degradation of cellular polyadenylated mRNAs and recruitment of the translation machinery to viral factories may contribute to the inhibition of host protein synthesis, facilitating ASFV protein production in infected cells.  相似文献   

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非洲猪瘟(African swine fever,ASF)是由非洲猪瘟病毒(African swine fever virus,ASFV)引起的一种致死率可高达100%的猪烈性传染病。ASF的传播方式复杂多样,目前无商品化疫苗可用,仅能依靠检疫结合扑杀进行防控,严重威胁全球养猪及相关行业的健康发展。阻碍ASF疫苗研发的主要因素是ASFV的基因型众多、结构复杂,以及对ASFV致病和免疫逃逸机制的认识不足。本文从基因组学、转录组学、蛋白质组学和代谢组学等层面多角度综述ASFV的生物学特性及其致病和免疫逃逸机制,以期揭开ASF这个"杀手"的神秘面纱,为ASFV的致病机制研究和ASF的防控提供参考。  相似文献   

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非洲猪瘟(African swine fever,ASF)是由非洲猪瘟病毒(African swine fever virus,ASFV)引起猪的一种急性、高度致死性传染病.该病在全世界多个地方流行,导致该病流行的原因之一是缺乏有效的预防及治疗药物、疫苗等.尽管ASFV基因总的突变率相对其基因组来说较低,但是,与其它病毒相比,其基因突变总数则相当巨大.研究发现ASFV的多个基因具有高突变率的特性,表现为基因多样性,此外,由于该病毒为核质大DNA病毒,编码大量蛋白,其抗原也表现为多样性.本文总结了 ASFV基因多样性和抗原多样性,分析其发生原理并综述了最新研究成果,以期为研究ASFV病毒遗传演化、开发疫苗及指导疫情防控提供思路.  相似文献   

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African swine fever (ASF) virus is a large DNA virus that shares the striking icosahedral symmetry of iridoviruses and the genomic organization of poxviruses. Both groups of viruses have a complex envelope structure. In this study, the mechanism of formation of the inner envelope of ASF virus was investigated. Examination of thin cryosections by electron microscopy showed two internal membranes in mature intracellular virions and all structural intermediates. These membranes were in continuity with intracellular membrane compartments, suggesting that the virus gained two membranes from intracellular membrane cisternae. Immunogold electron microscopy showed the viral structural protein p17 and resident membrane proteins of the endoplasmic reticulum (ER) within virus assembly sites, virus assembly intermediates, and mature virions. Resident ER proteins were also detected by Western blotting of isolated virions. The data suggested the ASF virus was wrapped by the ER. Analysis of the published sequence of ASF virus (R. J. Yanez et al., Virology 208:249–278, 1995) revealed a reading frame, XP124L, that encoded a protein predicted to translocate into the lumen of the ER. Pulse-chase immunoprecipitation and glycosylation analysis of pXP124L, the product of the XP124L gene, showed that pXP124L was retained in the ER lumen after synthesis. When analyzed by immunogold electron microscopy, pXP124L localized to virus assembly intermediates and fully assembled virions. Western blot analysis detected pXP124L in virions isolated from Percoll gradients. The packaging of pXP124L from the lumen of the ER into the virion is consistent with ASF virus being wrapped by ER cisternae: a mechanism which explains the presence of two membranes in the viral envelope.African swine fever (ASF) virus is a large icosahedral enveloped DNA virus that causes a lethal hemorrhagic disease in domestic pigs. The virus is endemic in areas of southern Europe and in Africa where it causes major problems for the development of pig industries. At present there are no vaccines, and the disease is controlled through the slaughter of infected animals. The economic importance of ASF virus has made the virus the focus of much research since it was first described in 1921 (32). ASF virus is unique among animal viruses, and its classification has been controversial. ASF virus shares the striking icosahedral symmetry of iridoviruses (5, 8, 13, 34), while the presence of inverted terminal repeats and covalently linked ends in the 170-kDa genome suggests similarities with poxviruses (16). The ASF virus genome encoding at least 150 proteins has been sequenced (17, 51), and the amino acid sequences of at least 11 structural proteins are known. p73 is the major structural protein (14, 28) and has sequence similarities to the capsid protein of iridoviruses (39). The ordered proteolysis of pp220 produces p150, p37/p34 and p14 (40), which together comprise 25% of the viral proteins (3). These proteins localize to the interior of the virion (3). Three proteins, J13L/p54, I1L/p17, and p22, with membrane-spanning domains localize to the viral envelope (10, 37, 41, 43). Three other structural proteins, p14.5 encoded by E120R (30), p10 encoded by K78R (35), and p5AR encoded by A104R (7), have DNA-binding properties (51) and may be involved in DNA packaging. The virus has been the subject of several detailed electron microscopy studies (24, 8, 9, 11, 13, 34, 47). Electron micrographs of sections taken through ASF virus assembly sites reveal fully assembled virions as 200-nm hexagons and an ordered series of assembly intermediates with one to six sides of a hexagon. Close inspection of intracellular virions identifies multiple concentric layers of differing electron densities. According to recent models, the layers represent a central electron-dense nucleocapsid core, surrounded by an inner core shell, an inner envelope, and an outer capsid layer (3). The mechanism of formation of the inner envelope of ASF virus has not been resolved.Most viruses gain a single membrane envelope by budding into intracellular membrane compartments or from the plasma membrane, as reviewed in reference 21. When viruses bud into an intracellular compartment, the domains of the membrane proteins that are initially located in the lumen of membrane compartments are exposed on the outside of the virion after release from the cell (Fig. (Fig.1a).1a). A second mechanism of envelopment, described recently for poxviruses and herpesviruses (18, 20, 24, 38, 42, 46, 50), is more complex and involves the wrapping of virions by membrane cisternae derived from specific membrane compartments. Wrapping provides two membrane envelopes in one step and leaves the virion free in the cytoplasm. When compared with budding, wrapping reverses the orientation of membrane proteins within the virus such that the domains of membrane proteins located in the lumen of the wrapping organelle are confined to the interior of the virus after release from the cell, whereas cytoplasmic tails are exposed on the outside of the virus (Fig. (Fig.1b).1b). Given these important consequences for understanding the mechanism of assembly of the virus and for determining the final orientation of membrane proteins in virions, we have set out to determine whether ASF virus acquires its membranes by the conventional budding mechanism or whether the virus is wrapped by intracellular membrane compartments before release from the cell. Open in a separate windowFIG. 1Schematic comparison of budding and wrapping mechanisms of virus envelopment. (a) Budding. Viral nucleoprotein complexes bind to the cytoplasmic domains of virally encoded integral membrane proteins (|, membrane glycoproteins). Interactions between viral proteins lead to membrane curvature, and the virion gains a single membrane by budding into the lumen of the membrane compartment. When the virion is released from the cell, oligosaccharides () are exposed on the surface of the virus, and the cytoplasmic tail of the membrane glycoprotein is buried within the virion. (b) Wrapping. Viral nucleoprotein complexes bind to the cytoplasmic domains of virally encoded integral membrane proteins. The nucleoprotein complex is then wrapped by the membrane cisternae, and the virus gains two membranes. The particle remains in the cytosol. When the virion is released from the cell by cell lysis, oligosaccharides () are buried within the two membranes of the virion while the cytoplasmic tail of the membrane glycoprotein is exposed on the surface of the virus.In this study we have taken advantage of thin cryoelectron microscopic sections to enhance the definition of viral membranes. The micrographs show two membranes within mature intracellular virions and all structural intermediates. They also show assembly intermediates in continuity with cellular membrane compartments. Consistent with our earlier study showing that p73 was enveloped by the endoplasmic reticulum (ER) (15), immunogold labelling experiments show resident proteins of the ER within membranes found at assembly sites, in virus assembly intermediates, and in mature virions. Importantly, we have identified a protein (pXP124L) encoded by ASF virus that translocates completely into the lumen of the ER and is incorporated as a structural protein of the virus. The presence of two membranes within intracellular virions and structural intermediates and the packaging of a structural protein from the lumen of the ER into the virus, strongly suggest that ASF virus is wrapped by the ER.  相似文献   

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非洲猪瘟是由非洲猪瘟病毒感染家猪或野猪后引发的一种急性、烈性传染病,主要通过病猪及其周围环境传播,蜱是中间宿主。1921年该病首次暴发于非洲肯尼亚,2018年8月传入我国,目前已有24个省级行政区发生疫情。非洲猪瘟病毒主要经呼吸道和消化道进入猪体内,感染靶细胞主要是单核-巨噬细胞,目前受体还不明确。非洲猪瘟病毒是单分子双链DNA病毒,长度为170~190kb,编码150~200种蛋白,包括多种免疫调控蛋白,可以抵抗机体免疫。非洲猪瘟病毒疫苗研究较多,包括灭活疫苗、减毒疫苗、亚单位疫苗和基因疫苗等,但迄今这些疫苗都不能保护家猪免受非洲猪瘟病毒感染。今后需要对非洲猪瘟病毒及其发病机制做详细系统的研究,为开发有效防治方案提供资料。  相似文献   

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Ten commercially available disinfectants were tested at high pH in 2% sodium hydroxide and low pH in 2% acetic acid as inactivants for African swine fever (ASF) in a protein-rich blood-spleen homogenate. As assayed in leukocyte cultures, sodium hydroxide and acetic acid, sodium meta silicate and Roccal did not inactivate ASF virus in 1 hr at 22 to 25 C. Some viricidal activity as assayed in leukocyte cultures was found with Weladol, Triton X-100 Amphyl, pHisoHex, sodium dodecyl sulfate, LpH, Environ, Environ D, and One-Stroke Environ. Of these, the last four appeared to be most promising. When assayed in pigs, only One-Stroke Environ (1/E) was viricidal. Concentrations of 1.0, 0.75, and 0.5 were effective, but, at 0.25%, virus was not inactivated. The minimal time to inactivate ASF virus by 1% 1/E is 60 min. A room contaminated with ASF virus was made safe for pigs after 1 hr by spraying with 1% 1/E. The most active component of 1/E is o-phenylphenol. Although another component of 1/E, i.e., o-benzyl-p-chlorophenol, also has some activity, the mixture of the active components of 1/E is most effective against ASF virus. One of the soluble antigens associated with ASF virus is destroyed by 1/E.  相似文献   

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人工合成VP73基因全长序列,利用DNAstar软件确定其中抗原性较高的区域,利用Primer Premier5.0设计一对特异性引物,通过PCR扩增得到243bp的非洲猪瘟病毒VP73基因片段(vp73l)。将该片段与表达载体pET-32a连接克隆至大肠杆菌Escherichia coli(E.coli)DH5α菌株,经测序、菌落PCR和酶切鉴定,选取VP73L基因正向插入,读码框正确的阳性克隆。构建重组质粒并转化BL21(DE3),经IPTG诱导,融合蛋白以可溶性形式在E.coli BL2(DE3)高效表达,经His亲和层析柱得以纯化。Western blotting显示,该融合蛋白能与兔抗非洲猪瘟病毒VP73多克隆抗体发生特异性反应。所得结果为进一步研究:分离纯化该重组融合蛋白;确证目标抗原蛋白VP73L免疫原性及其特异性,进而达到建立非洲猪瘟病毒的免疫检测方法奠定了必要的材料与技术基础。  相似文献   

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