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Review

Human Rotavirus Reverse Genetics Systems to Study Viral Replication and Pathogenesis

Department of Virology and Parasitology, Fujita Health University School of Medicine, Toyoake 470-1192, Japan
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Author to whom correspondence should be addressed.
Viruses 2021, 13(9), 1791; https://doi.org/10.3390/v13091791
Submission received: 14 July 2021 / Revised: 4 September 2021 / Accepted: 5 September 2021 / Published: 8 September 2021

Abstract

Human rotaviruses (HuRVAs) are highly important causes of acute gastroenteritis in infants and young children worldwide. A lack of reliable and reproducible reverse genetics systems for HuRVAs has limited a proper understanding of HuRVA biology and also the rational design of live-attenuated vaccines. Since the development of the first reverse genetics system for RVAs (partially plasmid-based reverse genetics system) in 2006, there have been many efforts with the goal of generating infectious recombinant HuRVAs entirely from cloned cDNAs. However, the establishment of a HuRVA reverse genetics system was very challenging until 2019. This review article provides an overview of the historical background of the recent development of long-awaited HuRVA reverse genetics systems, beginning with the generation of recombinant human-simian reassortant RVAs with the aid of a helper virus in 2006 and the generation of recombinant animal (simian) RVAs in a helper virus-free manner in 2017, and culminating in the generation of recombinant HuRVAs entirely from plasmid cDNAs in 2019. Notably, the original HuRVA reverse genetics system has already been optimized to increase the efficiency of virus generation. Although the application of HuRVA reverse genetics systems has only just been initiated, these technologies will help to answer HuRVA research questions regarding viral replication and pathogenicity that could not be addressed before, and to develop next-generation vaccines and intestine-specific rotaviral vectors.
Keywords: human rotavirus; reverse genetics; rescue T7 plasmid; helper expression plasmid; 11 plasmid-only system human rotavirus; reverse genetics; rescue T7 plasmid; helper expression plasmid; 11 plasmid-only system

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MDPI and ACS Style

Komoto, S.; Fukuda, S.; Murata, T.; Taniguchi, K. Human Rotavirus Reverse Genetics Systems to Study Viral Replication and Pathogenesis. Viruses 2021, 13, 1791. https://doi.org/10.3390/v13091791

AMA Style

Komoto S, Fukuda S, Murata T, Taniguchi K. Human Rotavirus Reverse Genetics Systems to Study Viral Replication and Pathogenesis. Viruses. 2021; 13(9):1791. https://doi.org/10.3390/v13091791

Chicago/Turabian Style

Komoto, Satoshi, Saori Fukuda, Takayuki Murata, and Koki Taniguchi. 2021. "Human Rotavirus Reverse Genetics Systems to Study Viral Replication and Pathogenesis" Viruses 13, no. 9: 1791. https://doi.org/10.3390/v13091791

APA Style

Komoto, S., Fukuda, S., Murata, T., & Taniguchi, K. (2021). Human Rotavirus Reverse Genetics Systems to Study Viral Replication and Pathogenesis. Viruses, 13(9), 1791. https://doi.org/10.3390/v13091791

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