College of Veterinary Medicine and Bio-Safety Research Institute, Chonbuk National University, Iksan campus, Gobong-ro-79 Iksan 54596, South Korea.
Sci Rep. 2017 Mar 23;7:45139. doi: 10.1038/srep45139.
Bacterial ghosts (BGs) are empty cell envelopes derived from Gram-negative bacteria by bacteriophage ɸX174 gene E mediated lysis. They represent a novel inactivated vaccine platform; however, the practical application of BGs for human vaccines seems to be limited due to the safety concerns on the presence of viable cells in BGs. Therefore, to improve the lysis efficiency of the gene E, we exploited the peptidoglycan hydrolyzing ability of the λ phage holin-endolysins to expedite the process of current BG production system. In this report, we constructed a novel ghost plasmid encoding protein E and holin-endolysins in tandem. We observed that sequential expressions of the gene E and the holin-endolysins elicited rapid and highly efficient Salmonella lysis compared to the lysis mediated by gene E only. These lysed BGs displayed improved immunogenicity in mice compared to the gene E mediated BGs. Consequently, seventy percent of the mice immunized with these novel ghosts survived against a lethal challenge while all the mice vaccinated with gene E mediated ghosts died by day 9 post-infection. We conclude that this novel strategy has the potential to generate highly efficient inactivated candidate vaccines that could replace the currently available bacterial vaccines.
细菌体(BGs)是通过噬菌体 ɸX174 基因 E 介导的裂解从革兰氏阴性细菌中获得的空细胞包膜。它们代表了一种新型的灭活疫苗平台;然而,由于 BGs 中存在活细胞的安全性问题,BGs 似乎在人类疫苗中的实际应用受到限制。因此,为了提高基因 E 的裂解效率,我们利用 λ噬菌体溶原性 holin-endolysins 的肽聚糖水解能力来加速当前 BG 生产系统的进程。在本报告中,我们构建了一种新型的空质粒,串联编码蛋白 E 和 holin-endolysins。我们观察到,与仅由基因 E 介导的裂解相比,基因 E 和 holin-endolysins 的顺序表达引起了快速且高效的沙门氏菌裂解。与基因 E 介导的 BGs 相比,这些裂解的 BGs 在小鼠中显示出改善的免疫原性。因此,用这些新型 BGs 免疫的 70%的小鼠在致命性挑战中存活下来,而所有用基因 E 介导的 BGs 接种的小鼠在感染后第 9 天全部死亡。我们得出结论,这种新策略有可能产生高效的灭活候选疫苗,可以替代目前可用的细菌疫苗。