日本脑炎
毒力
病毒学
生物
日本脑炎疫苗
串行通道
减毒疫苗
病毒
维罗细胞
复归
衣壳
人口
突变
脑炎
表型
遗传学
基因
医学
环境卫生
作者
Dong Yang,Xiaofeng Li,Qing Ye,Hong-Jiang Wang,Yong‐Qiang Deng,Shun-Ya Zhu,Yu Zhang,Shihua Li,Cheng‐Feng Qin
出处
期刊:Vaccine
[Elsevier BV]
日期:2014-04-04
卷期号:32 (23): 2675-2681
被引量:35
标识
DOI:10.1016/j.vaccine.2014.03.074
摘要
The live attenuated Japanese encephalitis (JE) vaccine SA14-14-2 was licensed decades ago and now approved for clinical use in most JE endemic countries. Large-scale clinical trials demonstrate ideal safety and efficacy profile of this Chinese vaccine. The SA14-14-2 vaccine was derived from a virulent strain SA14 after hundreds of serial passaging in cells and animals, concern about virulence reversion remains exist. In the present study, to study the in vitro and in vivo genetic and attenuation stability of the vaccine virus, SA14-14-2 was serially passaged in Vero cells and mouse brain followed by sequence comparison and attenuation phenotype analysis. The results showed that no significant mutation was acquired after serial passaging in Vero cells except a single Ser66Leu mutation within capsid protein, which had no effect on viral virulence in mice. Importantly, serial passaging of SA14-14-2 in suckling mouse brain resulted in emergence of adaptive mutations and increased virulence in mice. Population and plaque-purified clone consensus sequence analysis showed four adaptive mutations in envelope (E) protein, F107L, K138E, T226R and I270T, sequentially occurred and become predominant during serial passaging in suckling mouse brain. Especially, these adaptive mutations were close related with the enhanced neurovirulence and neuroinvasiveness in mice. Our results provide experimental evidence of highly genetic and attenuation stability of SA14-14-2 following passaging in Vero cells, and reveal the potential virulence reversion during passaging in mouse brain in association with critical adaptive mutations in E protein. These findings are important for quality control and evaluation of live JE vaccines and will help understand the attenuation mechanism of flavivirus vaccine.
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