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Cross-Protection against MERS-CoV by Prime-Boost Vaccination Using Viral Spike DNA and Protein
Jung-Ah Choi1, Junghyun Goo1, Eunji Yang1
1Science Unit, International Vaccine Institute, Seoul, South Korea.
Abstract:
Middle East respiratory syndrome coronavirus (MERS-CoV) causes severe respiratory illness and has a high mortality of ∼34%. However, since its discovery in 2012, an effective vaccine has not been developed for it. To develop a vaccine against multiple strains of MERS-CoV, we targeted spike glycoprotein (S) using prime-boost vaccination with DNA and insect cell-expressed recombinant proteins for the receptor-binding domain (RBD), S1, S2, SΔTM, or SΔER. Our S subunits were generated using an S sequence derived from the MERS-CoV EMC/2012 strain. We examined humoral and cellular immune responses of various combinations with DNA plasmids and recombinant proteins in mice. Mouse sera immunized with SΔER DNA priming/SΔTM protein boosting showed cross-neutralization against 15 variants of S-pseudovirions and the wild-type KOR/KNIH/002 strain. In addition, these immunizations provided full protection against the KOR/KNIH/002 strain challenge in human DPP4 knock-in mice. These findings suggest that vaccination with the S subunits derived from one viral strain can provide cross-protection against variant MERS-CoV strains with mutations in S. DNA priming/protein boosting increased gamma interferon production, while protein-alone immunization did not. The RBD subunit alone was insufficient to induce neutralizing antibodies, suggesting the importance of structural conformation. In conclusion, heterologous DNA priming with protein boosting is an effective way to induce both neutralizing antibodies and cell-mediated immune responses for MERS-CoV vaccine development. This study suggests a strategy for selecting a suitable platform for developing vaccines against MERS-CoV or other emerging coronaviruses.IMPORTANCE Coronavirus is an RNA virus with a higher mutation rate than DNA viruses. Therefore, a mutation in S-protein, which mediates viral infection by binding to a human cellular receptor, is expected to cause difficulties in vaccine development. Given that DNA-protein vaccines promote stronger cell-mediated immune responses than protein-only vaccination, we immunized mice with various combinations of DNA priming and protein boosting using the S-subunit sequences of the MERS-CoV EMC/2012 strain. We demonstrated a cross-protective effect against wild-type KOR/KNIH/002, a strain with two mutations in the S amino acids, including one in its RBD. The vaccine also provided cross-neutralization against 15 different S-pseudotyped viruses. These suggested that a vaccine targeting one variant of S can provide cross-protection against multiple viral strains with mutations in S. The regimen of DNA priming/Protein boosting can be applied to the development of other coronavirus vaccines.
Insights
Developing a Middle East respiratory syndrome coronavirus (MERS-CoV) vaccine is challenging due to viral mutations. A prime-boost strategy using MERS-CoV spike protein DNA and protein subunits induced cross-protection against variant strains in mice.
Area of Science:
- Virology
- Immunology
- Vaccinology
Background:
- Middle East respiratory syndrome coronavirus (MERS-CoV) causes severe illness with high mortality.
- No effective vaccine currently exists for MERS-CoV.
- Viral mutations, particularly in the spike (S) protein, complicate vaccine development.
Purpose of the Study:
- To develop a vaccine strategy against multiple MERS-CoV strains.
- To evaluate the efficacy of prime-boost vaccination using DNA and recombinant protein subunits of the MERS-CoV S protein.
- To assess the induction of humoral and cellular immune responses and cross-protection.
Main Methods:
- Generated MERS-CoV S protein subunits (RBD, S1, S2, SΔTM, SΔER) from the EMC/2012 strain.
- Administered prime-boost vaccination in mice using various combinations of DNA plasmids and insect cell-expressed recombinant proteins.
- Assessed humoral immunity via pseudovirus neutralization assays and cellular immunity via gamma interferon production.
- Challenged immunized human DPP4 knock-in mice with the KOR/KNIH/002 MERS-CoV strain.
Main Results:
- SΔER DNA priming followed by SΔTM protein boosting demonstrated cross-neutralization against 15 MERS-CoV variants and the wild-type KOR/KNIH/002 strain.
- This vaccination regimen provided full protection against the KOR/KNIH/002 strain challenge in mice.
- DNA priming/protein boosting enhanced gamma interferon production, indicating robust cell-mediated immunity, unlike protein-alone immunization.
- The receptor-binding domain (RBD) subunit alone was insufficient for inducing neutralizing antibodies.
Conclusions:
- Heterologous DNA priming with protein boosting is an effective strategy for MERS-CoV vaccine development, inducing both neutralizing antibodies and cell-mediated immunity.
- Vaccination targeting S protein subunits from a single viral strain can confer cross-protection against MERS-CoV variants with mutations.
- This approach offers a potential strategy for developing vaccines against MERS-CoV and other emerging coronaviruses.
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