Agriculture Ministry Key Laboratory of Healthy Freshwater Aquaculture, Key Laboratory of Fish, Health and Nutrition of Zhejiang Province, Zhejiang Institute of Freshwater Fisheries, Huzhou 313001, China.
J Zhejiang Univ Sci B. 2019;20(9):728-739. doi: 10.1631/jzus.B1900027.
As one of the most important aquatic fish, Micropterus salmoides suffers lethal and epidemic disease caused by rhabdovirus at the juvenile stage. In this study, a new strain of M. salmoides rhabdovirus (MSRV) was isolated from Yuhang, Zhejiang Province, China, and named MSRV-YH01. The virus infected the grass carp ovary (GCO) cell line and displayed virion particles with atypical bullet shape, 300-500 nm in length and 100-200 nm in diameter under transmission electron microscopy. The complete genome sequence of this isolate was determined to include 11 526 nucleotides and to encode five classical structural proteins. The construction of the phylogenetic tree indicated that this new isolate is clustered into the Vesiculovirus genus and most closely related to the Siniperca chuatsi rhabdovirus. To explore the potential for a vaccine against MSRV, a glycoprotein (1-458 amino acid residues) of MSRV-YH01 was successfully amplified and cloned into the plasmid pFastBac1. The high-purity recombinant bacmid-glycoprotein was obtained from DH10Bac through screening and identification. Based on polymerase chain reaction (PCR), western blot, and immunofluorescence assay, recombinant virus, including the MSRV-YH01 glycoprotein gene, was produced by transfection of SF9 cells using the pFastBac1-gE2, and then repeatedly amplified to express the glycoprotein protein. We anticipate that this recombinant bacmid system could be used to challenge the silkworm and develop a corresponding oral vaccine for fish.
作为最重要的淡水鱼类之一,斑点叉尾鮰在幼鱼阶段会受到弹状病毒引起的致命性和流行性疾病的影响。本研究从中国浙江余杭分离到一种新的斑点叉尾鮰弹状病毒(MSRV),并将其命名为 MSRV-YH01。该病毒感染草鱼卵巢(GCO)细胞系,在透射电子显微镜下显示出具有非典型子弹形状的病毒粒子,长度为 300-500nm,直径为 100-200nm。该分离株的全基因组序列确定为包含 11526 个核苷酸,并编码五个经典结构蛋白。构建的系统发育树表明,该新分离株聚类到 Vesiculovirus 属,与翘嘴红鲌弹状病毒最为密切相关。为了探索针对 MSRV 的潜在疫苗,成功扩增并克隆了 MSRV-YH01 的糖蛋白(1-458 个氨基酸残基)到质粒 pFastBac1 中。通过筛选和鉴定,从 DH10Bac 中获得了高纯度的重组 bacmid-糖蛋白。基于聚合酶链反应(PCR)、western blot 和免疫荧光分析,使用 pFastBac1-gE2 转染 SF9 细胞产生了包含 MSRV-YH01 糖蛋白基因的重组病毒,并通过反复扩增来表达糖蛋白蛋白。我们预计,该重组 bacmid 系统可用于挑战家蚕并开发相应的鱼类口服疫苗。