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Rotavirus NSP1 contributes to intestinal viral replication, pathogenesis, and transmission

Gaopeng Hou, Qiru Zeng, View ORCID ProfileJelle Matthijnssens, View ORCID ProfileHarry B. Greenberg, Siyuan Ding
doi: https://doi.org/10.1101/2021.06.17.448915
Gaopeng Hou
1Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, MO, USA
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Qiru Zeng
1Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, MO, USA
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Jelle Matthijnssens
2KU Leuven-University of Leuven, Department of Microbiology, Immunology and Transplantation, Rega Institute for Medical Research, Leuven, Belgium
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  • ORCID record for Jelle Matthijnssens
Harry B. Greenberg
3VA Palo Alto Health Care System, Department of Veterans Affairs, Palo Alto, CA, USA
4Department of Medicine, Division of Gastroenterology and Hepatology, and Department of Microbiology and Immunology, Stanford School of Medicine, Stanford, CA, USA
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Siyuan Ding
1Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, MO, USA
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  • For correspondence: siyuan.ding@wustl.edu
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ABSTRACT

Rotavirus (RV)-encoded non-structural protein 1 (NSP1), the product of gene segment 5, effectively antagonizes host interferon (IFN) signaling via multiple mechanisms. Recent studies with the newly established RV reverse genetics system indicate that NSP1 is not essential for the replication of simian RV SA11 strain in cell culture. However, the role of NSP1 in RV infection in vivo remains poorly characterized due to the limited replication of heterologous simian RVs in the suckling mouse model. Here, we used an optimized reverse genetics system and successfully recovered recombinant murine RVs with or without NSP1 expression. While the NSP1-null virus replicated comparably with the parental murine RV in IFN-deficient and IFN-competent cell lines in vitro, it was highly attenuated in 5-day-old wild-type suckling pups. In the absence of NSP1 expression, murine RV had significantly reduced replication in the ileum, systemic spread to mesenteric lymph nodes, fecal shedding, diarrhea occurrence, and transmission to uninoculated littermates. Of interest, the replication and pathogenesis defects of NSP1-null RV were only minimally rescued in Stat1 knockout pups, suggesting that NSP1 facilitates RV replication in an IFN-independent manner. Our findings highlight a pivotal function of NSP1 during homologous RV infections in vivo and identify NSP1 as an ideal viral protein for targeted attenuation for future vaccine development.

IMPORTANCE Rotavirus remains one of the most important causes of severe diarrhea and dehydration in young children worldwide. Although NSP1 is dispensable for rotavirus replication in cell culture, its exact role in virus infection in vivo remains unclear. In this study, we demonstrate that in the context of a fully replication-competent, pathogenic, and transmissible murine rotavirus, loss of NSP1 expression substantially attenuated virus replication in the gastrointestinal tract, diarrheal disease, and virus transmission in suckling mice. Notably, the NSP1-deficient murine rotavirus also replicated poorly in mice lacking host interferon signaling. Our data provide the first piece of evidence that NSP1 is essential for murine rotavirus replication in vivo, making it an attractable target for developing improved next-generation rotavirus vaccines better suited for socioeconomically disadvantaged and immunocompromised individuals.

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted June 18, 2021.
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Rotavirus NSP1 contributes to intestinal viral replication, pathogenesis, and transmission
Gaopeng Hou, Qiru Zeng, Jelle Matthijnssens, Harry B. Greenberg, Siyuan Ding
bioRxiv 2021.06.17.448915; doi: https://doi.org/10.1101/2021.06.17.448915
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Rotavirus NSP1 contributes to intestinal viral replication, pathogenesis, and transmission
Gaopeng Hou, Qiru Zeng, Jelle Matthijnssens, Harry B. Greenberg, Siyuan Ding
bioRxiv 2021.06.17.448915; doi: https://doi.org/10.1101/2021.06.17.448915

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