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Dissecting Host-virus Interaction in Lytic Replication of a Model Herpesvirus
Published on: October 7, 2011
Replication-dead gammaherpesvirus vaccine protects against acute replication, reactivation from latency, and lethal
Wesley A Bland1, Shana Owens1, Kyle McEvoy2
1Department of Microbiology and Immunology, University of Arkansas for Medical Sciences, Little Rock, Arkansas, USA.
Abstract:
Gammaherpesviruses (GHVs) are oncogenic viruses that establish lifelong infections and are significant causes of human morbidity and mortality. While several vaccine strategies to limit GHV infection and disease are in development, there are no FDA-approved vaccines for human GHVs. As a new approach to gammaherpesvirus vaccination, we developed and tested a replication-dead virus (RDV) platform, using murine gammaherpesvirus 68 (MHV68), a well-established mouse model for gammaherpesvirus pathogenesis studies and preclinical therapeutic evaluations. We employed codon-shuffling-based complementation to generate revertant-free RDV lacking expression of the essential replication and transactivator protein (RTA) encoded by ORF50 to arrest viral gene expression early after de novo infection. Inoculation with RDV-50.stop exposes the host to intact virion particles and leads to limited lytic gene expression in infected cells. Prime-boost vaccination of mice with RDV-50.stop elicited virus-specific neutralizing antibody and effector T cell responses in the lung and spleen. Vaccination with RDV-50.stop resulted in a near complete abolishment of virus replication in the lung 7 days post-challenge and virus reactivation from spleen 16 days post-challenge with WT MHV68. Ifnar1-/- mice, which lack the type I interferon receptor, exhibit severe disease upon infection with WT MHV68. RDV-50.stop vaccination of Ifnar1-/- mice prevented wasting and mortality upon challenge with WT MHV68. These results demonstrate that prime-boost vaccination with a GHV that is unable to undergo lytic replication offers protection against acute replication, reactivation, and severe disease upon WT virus challenge.
Insights
A novel replication-dead virus (RDV) vaccine platform using gammaherpesviruses (GHVs) successfully prevented viral replication and severe disease in mice. This RDV strategy offers a promising new approach for GHV vaccination, addressing a critical unmet medical need.
Area of Science:
- Virology
- Immunology
- Vaccine Development
Background:
- Gammaherpesviruses (GHVs) are oncogenic and cause significant human disease, yet no FDA-approved vaccines exist.
- Current vaccine development for GHVs faces challenges, necessitating novel approaches.
Conclusions:
- Prime-boost vaccination with a replication-incompetent gammaherpesvirus provides robust protection against acute replication, reactivation, and severe disease.
- The RDV platform is a promising strategy for developing effective vaccines against gammaherpesviruses.

