抗原
微生物学
细菌外膜
佐剂
免疫系统
肺炎链球菌
异源的
生物
接种疫苗
沙门氏菌
免疫学
细菌
病毒学
大肠杆菌
抗生素
基因
生物化学
遗传学
作者
Kirsten Kuipers,Maria H. Daleke-Schermerhorn,Wouter S.P. Jong,Corinne M. ten Hagen‐Jongman,Fred van Opzeeland,Elles Simonetti,Joen Luirink,Marien I. de Jonge
出处
期刊:Vaccine
[Elsevier BV]
日期:2015-03-14
卷期号:33 (17): 2022-2029
被引量:114
标识
DOI:10.1016/j.vaccine.2015.03.010
摘要
Bacterial outer membrane vesicles (OMVs) are attractive vaccine formulations because they have intrinsic immunostimulatory properties. In principle, heterologous antigens incorporated into OMVs will elicit specific immune responses, especially if presented at the vesicle surface and thus optimally exposed to the immune system. In this study, we explored the feasibility of our recently developed autotransporter Hbp platform, designed to efficiently and simultaneously display multiple antigens at the surface of bacterial OMVs, for vaccine development. Using two Streptococcus pneumoniae proteins as model antigens, we showed that intranasally administered Salmonella OMVs displaying high levels of antigens at the surface induced strong protection in a murine model of pneumococcal colonization, without the need for a mucosal adjuvant. Importantly, reduction in bacterial recovery from the nasal cavity was correlated with local production of antigen-specific IL-17A. Furthermore, the protective efficacy and the production of antigen-specific IL-17A, and local and systemic IgGs, were all improved at increased concentrations of the displayed antigen. This discovery highlights the importance of an adequate antigen expression system for development of recombinant OMV vaccines. In conclusion, our findings demonstrate the suitability of the Hbp platform for development of a new generation of OMV vaccines, and illustrate the potential of using this approach to develop a broadly protective mucosal pneumococcal vaccine.
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