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.

Journal of Virology
|September 24, 2020
PubMed

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.