Fc-Based Recombinant Henipavirus Vaccines Elicit Broad Neutralizing Antibody Responses in Mice
Yaohui Li1, Ruihua Li1, Meirong Wang1
1Laboratory of Vaccine and Antibody Engineering, Beijing Institute of Biotechnology, Beijing, China.
Abstract:
The genus Henipavirus (HNVs) includes two fatal viruses, namely Nipah virus (NiV) and Hendra virus (HeV). Since 1994, NiV and HeV have been endemic to the Asia-Pacific region and responsible for more than 600 cases of infections. Two emerging HNVs, Ghana virus (GhV) and Mojiang virus (MojV), are speculated to be associated with unrecognized human diseases in Africa and China, respectively. Despite many efforts to develop vaccines against henipaviral diseases, there is presently no licensed human vaccine. As HNVs are highly pathogenic and diverse, it is necessary to develop universal vaccines to prevent future outbreaks. The attachment enveloped glycoprotein (G protein) of HNVs mediates HNV attachment to the host cell's surface receptors. G proteins have been used as a protective antigen in many vaccine candidates for HNVs. We performed quantitative studies on the antibody responses elicited by the G proteins of NiV, HeV, GhV, and MojV. We found that the G proteins of NiV and HeV elicited only a limited cross-reactive antibody response. Further, there was no cross-protection between MojV, GhV, and highly pathogenic HNVs. We then constructed a bivalent vaccine where the G proteins of NiV and HeV were fused with the human IgG1 Fc domain. The immunogenicity of the bivalent vaccine was compared with that of monovalent vaccines. Our results revealed that the Fc-based bivalent vaccine elicited a potent antibody response against both NiV and HeV. We also constructed a tetravalent Fc heterodimer fusion protein that contains the G protein domains of four HNVs. Immunization with the tetravalent vaccine elicited broad antibody responses against NiV, HeV, GhV, and MojV in mice, indicating compatibility among the four antigens in the Fc-fusion protein. These data suggest that our novel bivalent and tetravalent Fc-fusion proteins may be efficient candidates to prevent HNV infection.
Insights
Developing universal vaccines against henipaviruses (HNVs) is crucial. Novel Fc-fusion vaccines, including bivalent and tetravalent options, show promise in eliciting broad antibody responses against Nipah virus, Hendra virus, Ghana virus, and Mojiang virus.
Area of Science:
- Virology
- Immunology
- Vaccine Development
Background:
- Henipaviruses (HNVs), including Nipah virus (NiV) and Hendra virus (HeV), are highly pathogenic zoonotic viruses responsible for significant human morbidity and mortality.
- Despite the threat posed by emerging HNVs like Ghana virus (GhV) and Mojiang virus (MojV), no licensed human vaccine is currently available.
- The G protein of HNVs is a key target for vaccine development due to its role in host cell attachment.
Purpose of the Study:
- To evaluate the immunogenicity and cross-reactivity of G proteins from four HNVs (NiV, HeV, GhV, MojV).
- To develop and assess novel bivalent and tetravalent Fc-fusion vaccines for broad protection against HNV infections.
Main Methods:
- Quantitative analysis of antibody responses to individual HNV G proteins.
- Construction and immunization of mice with bivalent (NiV/HeV) and tetravalent (NiV/HeV/GhV/MojV) Fc-fusion vaccines.
- Assessment of antibody responses elicited by the novel vaccine candidates.
Main Results:
- G proteins of NiV and HeV elicited limited cross-reactive antibody responses.
- No cross-protection was observed between MojV/GhV and the highly pathogenic NiV/HeV.
- The bivalent Fc-fusion vaccine induced potent antibody responses against NiV and HeV.
- The tetravalent Fc-fusion vaccine elicited broad antibody responses against all four HNVs in mice.
Conclusions:
- Existing G protein-based vaccines show limited cross-reactivity, necessitating broader approaches.
- Novel bivalent and tetravalent Fc-fusion proteins demonstrate potential as effective vaccine candidates for preventing HNV infections.
- These Fc-fusion vaccines offer a promising strategy for developing universal protection against diverse and highly pathogenic henipaviruses.


