Novartis Vaccines and Diagnostics, 45 Sidney Street, Cambridge, MA 02139, United States.
Vaccine. 2013 Oct 1;31(42):4736-43. doi: 10.1016/j.vaccine.2013.08.026. Epub 2013 Aug 20.
Reverse genetics approaches can simplify and accelerate the process of vaccine manufacturing by combining the desired genome segments encoding the surface glycoproteins from influenza strains with genome segments (backbone segments) encoding internal and non-structural proteins from high-growth strains. We have developed three optimized high-growth backbones for use in producing vaccine seed viruses for group A influenza strains. Here we show that we can further enhance the productivity of our three optimized backbones by using chimeric hemagglutinin (HA) and neuraminidase (NA) genome segments containing terminal regions (non-coding regions (NCRs) and coding regions for the signal peptide (SP), transmembrane domain (TMD), and cytoplasmic tail (CT)) from two MDCK-adapted high growth strains (PR8x and Hes) and the sequences encoding the ectodomains of the A/Brisbane/10/2010 (H1N1) HA and NA proteins. Viruses in which both the HA and NA genome segments had the high-growth terminal regions produced higher HA yields than viruses that contained one WT and one chimeric HA or NA genome segment. Studies on our best-performing backbone indicated that the increases in HA yield were also reflected in an increase in HA content in partially purified preparations. Our results show that the use of chimeric HA and NA segments with high-growth backbones is a viable strategy that could improve influenza vaccine manufacturing. Possible mechanisms for the enhancement of HA yield are discussed.
反向遗传学方法可以通过将编码流感株表面糖蛋白的所需基因组片段与编码高生长株内部和非结构蛋白的基因组片段(骨架片段)结合,从而简化和加速疫苗制造过程。我们已经开发了三种用于生产 A 型流感株疫苗种子病毒的优化高生长骨架。在这里,我们展示了我们可以通过使用包含来自两个适应 MDCK 的高生长株(PR8x 和 Hes)的末端区域(非编码区域(NCR)和信号肽(SP)、跨膜结构域(TMD)和细胞质尾(CT)的编码区)的嵌合血凝素(HA)和神经氨酸酶(NA)基因组片段,以及编码 A/Brisbane/10/2010(H1N1)HA 和 NA 蛋白的外显子的序列,进一步提高我们三种优化骨架的生产力。同时具有高生长末端区域的 HA 和 NA 基因组片段的病毒产生的 HA 产量高于含有一个 WT 和一个嵌合 HA 或 NA 基因组片段的病毒。对表现最佳的骨架的研究表明,HA 产量的增加也反映在部分纯化制剂中 HA 含量的增加。我们的结果表明,使用具有高生长骨架的嵌合 HA 和 NA 片段是一种可行的策略,可以提高流感疫苗的制造效率。讨论了增强 HA 产量的可能机制。