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Simplified Reverse Genetics Method to Recover Recombinant Rotaviruses Expressing Reporter Proteins
Published on: April 17, 2020
Generation of single-round infectious rotavirus with a mutation in the intermediate capsid protein VP6
Tomohiro Kotaki1, Yuta Kanai1, Megumi Onishi1
1Department of Virology, Research Institute for Microbial Diseases, Osaka University, Osaka, Japan.
Insights
This study developed a novel single-round infectious rotavirus vaccine platform by modifying the VP6 protein. This safe and effective rotavirus vaccine candidate induces high neutralizing antibody titers and is suitable for oral administration.
Area of Science:
- Virology
- Vaccinology
- Molecular Biology
Background:
- Rotavirus is a major cause of infant diarrhea globally, leading to significant mortality.
- Current live attenuated rotavirus vaccines carry a risk of vaccine-derived infections.
- Next-generation rotavirus vaccines are needed for improved safety and efficacy.
Purpose of the Study:
- To develop a single-round infectious rotavirus (SR-IRV) platform for vaccine development.
- To engineer SR-IRV by impairing the function of the viral intermediate capsid protein VP6.
- To assess the safety, immunogenicity, and potential as a vaccine vector.
Main Methods:
- Utilized a reverse genetics system to create recombinant rotaviruses with mutations in VP6, targeting virion assembly.
- Assessed viral replication in wild-type and VP6-expressing cells.
- Evaluated infectivity in mice and immunogenicity through antibody titer analysis.
- Tested the feasibility of foreign gene insertion and gene segment replacement.
Main Results:
- Successfully generated a VP6-mutated rotavirus that replicates only in VP6-expressing cells, confirming it as a single-round infectious rotavirus.
- Demonstrated successful insertion of foreign genes and replacement of the VP7 gene segment.
- Confirmed no infectious virion detection in mice.
- Showed that immunization with the SR-IRV induced neutralizing antibody titers comparable to wild-type rotavirus.
Conclusions:
- The developed single-round infectious rotavirus is a promising candidate for a safe and effective next-generation rotavirus vaccine.
- The SR-IRV platform is replication-deficient in vivo, enhancing its safety profile.
- This system is adaptable for creating safe, orally administrable viral vectors for other pathogens.
Abstract:
Rotavirus causes severe diarrhea in infants. Although live attenuated rotavirus vaccines are available, vaccine-derived infections have been reported, which warrants development of next-generation rotavirus vaccines. A single-round infectious virus is a promising vaccine platform; however, this platform has not been studied extensively in the context of rotavirus. Here, we aimed to develop a single-round infectious rotavirus by impairing the function of the viral intermediate capsid protein VP6. Recombinant rotaviruses harboring mutations in VP6 were rescued using a reverse genetics system. Mutations were targeted at VP6 residues involved in virion assembly. Although the VP6-mutated rotavirus expressed viral proteins, it did not produce progeny virions in wild-type cells; however, the virus did produce progeny virions in VP6-expressing cells. This indicates that the VP6-mutated rotavirus is a single-round infectious rotavirus. Insertion of a foreign gene, and replacement of the VP7 gene segment with that of human rotavirus clinical isolates, was successful. No infectious virions were detected in mice infected with the single-round infectious rotavirus. Immunizing mice with the single-round infectious rotavirus induced neutralizing antibody titers as high as those induced by wild-type rotavirus. Taken together, the data suggest that this single-round infectious rotavirus has potential as a safe and effective rotavirus vaccine. This system is also applicable for generation of safe and orally administrable viral vectors.IMPORTANCERotavirus, a leading cause of acute gastroenteritis in infants, causes an annual estimated 128,500 infant deaths worldwide. Although live attenuated rotavirus vaccines are available, they are replicable and may cause vaccine-derived infections. Thus, development of safe and effective rotavirus vaccine is important. In this study, we report the development of a single-round infectious rotavirus that can replicate only in cells expressing viral VP6 protein. We demonstrated that (1) the single-round infectious rotavirus did not replicate in wild-type cells or in mice; (2) insertion of foreign genes and replacement of the outer capsid gene were possible; and (3) it was as immunogenic as the wild-type virus. Thus, the mutated virus shows promise as a next-generation rotavirus vaccine. The system is also applicable to orally administrable viral vectors, facilitating development of vaccines against other enteric pathogens.
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