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Published on: August 21, 2019
An Intein-Spliced Nipah G Protein Ferritin Nanoparticle Vaccine Provides Complete Protection against Lethal Nipah
Shaohong Chen1,2, Xinghai Zhang1, Yanfeng Yao3
1State Key Laboratory of Virology and Biosafety, Wuhan Institute of Virology, Chinese Academy of Sciences, Wuhan 430062, P. R. China.
Abstract:
Nipah virus (NiV) is a serious hazard to human health since it can cause severe respiratory infections and viral encephalitis with a high fatality rate. Given the lack of a licensed NiV vaccine, there is an urgent need to develop one to protect public health. Previously, we developed NiV G protein nanoparticle vaccines by loading G protein onto ferritin nanoparticles (FeNP) via SpyCatcher/SpyTag technology, resulting in nanoparticles with three layers (FeNP-SC/ST-Ghead), including the inner core of ferritin (20 kDa), the intermediate layer of covalently linked SpyCatcher/SpyTag (11.2 kDa) and the outer layer of G protein. The intermediate layer is unnecessary in terms of immunization and occupies immune resources in the body. In this study, we used a split-intein to conjugate NiV Ghead onto FeNP, yielding FeNP-Ghead with two layers. In BALB/c mice, FeNP-Ghead could avoid immune response against SpyCatcher, elicit high levels of specific humoral immune responses for up to 217 days and long-lasting Th1-biased cellular immune responses. Furthermore, FeNP-Ghead showed potent protection efficacy in the hamster model, with immunization of 1 μg providing 100% protection against challenge with 1000 LD50 of NiV, and even as low as 0.2 μg being partially protective (83% survival). Since FeNP-Ghead has a lower protein content than FeNP-SC/ST-Ghead, it will occupy fewer immune resources in vivo, thereby reduce the potential for adverse immune side effect.

