期刊文献+

Generation and characterization of a cold-adapted attenuated live H3N2 subtype influenza virus vaccine candidate 被引量:2

Generation and characterization of a cold-adapted attenuated live H3N2 subtype influenza virus vaccine candidate
原文传递
导出
摘要 Background H3N2 subtype influenza A viruses have been identified in humans worldwide, raising concerns about their pandemic potential and prompting the development of candidate vaccines to protect humans against this subtype of influenza A virus. The aim of this study was to establish a system for rescuing of a cold-adapted high-yielding H3N2 subtype human influenza virus by reverse genetics, Methods In order to generate better and safer vaccine candidate viruses, a cold-adapted high yielding reassortant H3N2 influenza A virus was genetically constructed by reverse genetics and was designated as rgAA-H3N2. The rgAA-H3N2 virus contained HA and NA genes from an epidemic strain A/Wisconsin/67/2005 (H3N2) in a background of internal genes derived from the master donor viruses (MDV), cold-adapted (ca), temperature sensitive (ts), live attenuated influenza virus strain A/Ann Arbor/6/60 (MDV-A). Results In this presentation, the virus HA titer of rgAA-H3N2 in the allantoic fluid from infected embryonated eggs was as high as 1:1024. A fluorescent focus assay (FFU) was performed 24-36 hours post-infection using a specific antibody and bright staining was used for determining the virus titer. The allantoic fluid containing the recovered influenza virus was analyzed in a hemagglutination inhibition (HI) test and the specific inhibition was found. Conclusion The results mentioned above demonstrated that cold-adapted, attenuated reassortant H3N2 subtype influenza A virus was successfully generated, which laid a good foundation for the further related research. Background H3N2 subtype influenza A viruses have been identified in humans worldwide, raising concerns about their pandemic potential and prompting the development of candidate vaccines to protect humans against this subtype of influenza A virus. The aim of this study was to establish a system for rescuing of a cold-adapted high-yielding H3N2 subtype human influenza virus by reverse genetics, Methods In order to generate better and safer vaccine candidate viruses, a cold-adapted high yielding reassortant H3N2 influenza A virus was genetically constructed by reverse genetics and was designated as rgAA-H3N2. The rgAA-H3N2 virus contained HA and NA genes from an epidemic strain A/Wisconsin/67/2005 (H3N2) in a background of internal genes derived from the master donor viruses (MDV), cold-adapted (ca), temperature sensitive (ts), live attenuated influenza virus strain A/Ann Arbor/6/60 (MDV-A). Results In this presentation, the virus HA titer of rgAA-H3N2 in the allantoic fluid from infected embryonated eggs was as high as 1:1024. A fluorescent focus assay (FFU) was performed 24-36 hours post-infection using a specific antibody and bright staining was used for determining the virus titer. The allantoic fluid containing the recovered influenza virus was analyzed in a hemagglutination inhibition (HI) test and the specific inhibition was found. Conclusion The results mentioned above demonstrated that cold-adapted, attenuated reassortant H3N2 subtype influenza A virus was successfully generated, which laid a good foundation for the further related research.
出处 《Chinese Medical Journal》 SCIE CAS CSCD 2009年第23期2880-2885,共6页 中华医学杂志(英文版)
关键词 influenza A virus H3N2 subtype reverse genetics reassortant influenza virus influenza A virus, H3N2 subtype reverse genetics, reassortant influenza virus
  • 相关文献

参考文献4

二级参考文献14

  • 1施建忠,田国彬,李雁冰,陈化兰.重组高繁殖力疫苗株H5N2(H5/PR8)病毒的制备和鉴定[J].中国预防兽医学报,2005,27(6):530-534. 被引量:6
  • 2刘明,张云,刘春国,潘蔚绮,刘超男,杨涛.利用反向遗传学技术构建H5亚型禽流感高产疫苗株[J].生物工程学报,2006,22(5):720-726. 被引量:17
  • 3Webby R, Swenson S, Krauss S, et al. Evolution of swine H3N2 influenza viruses in the United States [J]. J Virol, 2000, 74(18): 8243-8251.
  • 4Olsen C. The emergence of novel swine influenza viruses in North America [J]. Virus Res, 2002, 85(2): 199- 210.
  • 5Toshihiro I, Coueeiro J, Kelm S, et al. Molecular basis for the generation in pigs of influenza A viruses with pandemic potential [J]. J Virol, 1998, 72 (9) : 7367- 7373.
  • 6Webster R, Bean W, Gorman O, et al. Evolution and ecology of influenza A viruses[J]. Microbiol Rev, 1992, 56(1): 152-179.
  • 7Youil R, Sua Q, Toner T, et al. Comparative study of influenza virus replication in Vero and MDCK cell lines [J]. J Virol Meth, 2004, 120(1): 23-31.
  • 8Voeten J, Brands R, Palach A, et al. Characterization of high-growth reassortant influenza A viruses generated in MDCK cells cultured in serum-free medium[J]. Vaccine,1999,17(15-16):1942-1950.
  • 9Halperin S, Smith B, Mabrouk T, et al. Safety and immunogenicity of a trivalent, inactivated, mammalian cell culture-derived influenza vaccine in healthy adults, seniors, and children[J]. Vaccine, 2002, 20 (7-8): 1240- 1247.
  • 10Kemble G, Greenberg H. Novel generations of influenza vaccines [J]. Vaccine, 2003,21(16) : 1789-1795.

共引文献21

同被引文献8

引证文献2

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部