Characterization of inner capsid σA protein as a virulence factor of the pteropine orthoreovirus.

Hayato Harima1 Michihito Sasaki2,3 Takuma Ariizumi2 Nijiho Kawaguchi2 Hiroko Kobayashi2 Kittiya Intaruck2,4 Takeshi Kobayashi5 Takahiro Kawagishi5 Yuta Kanai5 Naganori Nao4,6 Yongjin Qiu7 Masahiro Kajihara4,6 Yasuko Orba2,3 Naoto Ito8,9 Kanako Ishihara1 Masayuki Saijo10 William W Hall3,11,12 Bernard M Hang'ombe13,14 Hirofumi Sawa3,6,12
Affiliations 14 institutions
  1. Laboratory of Veterinary Public Health, Faculty of Agriculture, Tokyo University of Agriculture and Technology, Tokyo, Japan.
  2. Division of Molecular Pathobiology, International Institute for Zoonosis Control, Hokkaido University, Hokkaido, Japan.
  3. Institute for Vaccine Research and Development, Hokkaido University, Hokkaido, Japan.
  4. Division of International Research Promotion, International Institute for Zoonosis Control, Hokkaido University, Hokkaido, Japan.
  5. Department of Virology, Research Institute for Microbial Diseases, The University of Osaka, Osaka, Japan.
  6. One Health Research Center, Hokkaido University, Hokkaido, Japan.
  7. Laboratory of Parasitology, Faculty of Veterinary Medicine, Hokkaido University, Hokkaido, Japan.
  8. Joint Graduate School of Veterinary Sciences, Gifu University, Gifu, Japan.
  9. Center for One Medicine Innovative Translational Research (COMIT), Institute for Advanced Study, Gifu University, Gifu, Japan.
  10. General for Health & Welfare Bureau, Public Health Office, Sapporo, Hokkaido, Japan.
  11. National Virus Reference Laboratory, School of Medicine, University College Dublin, Dublin, Ireland.
  12. Global Virus Network, Tampa, Florida, United States of America.
  13. Department of Para-clinical Studies, School of Veterinary and Medicine, the University of Zambia, Lusaka, Zambia.
  14. Copperbelt University, Kitwe, Zambia.

Abstract

Pteropine orthoreovirus (PRV) is an emerging zoonotic virus that causes pneumonia in humans. We previously isolated the PRV strain Nachunsulwe-57 (N57) from a Zambian fruit bat and demonstrated its low virulence in laboratory mice. Here, we have attempted to identify factors responsible for differences in the virulence between strain N57 and the human-derived clinical strain Miyazaki-Bali/2007 (MB). Characterization of the virulence of recombinant monoreassortant PRVs derived from highly virulent MB and low virulent N57 strains in mice revealed that compared with wild-type (WT) MB, MB-based monoreassortants carrying the L1, S1, or S2 segment from N57 exhibited attenuated virulence. Among these, the monoreassortants carrying the S1 or S2 segment exhibited reduced viral loads and reduced cytokine gene expression levels in the lungs. Genetic mapping of virulence determinants using the reciprocal monoreassortant viruses with increased virulence demonstrated that N57-based monoreassortants carrying the S1 or S2 segment of MB exhibited enhanced virulence, resulting in lower survival rate compared with WT N57. Unlike the S1 segment, the functions of the S2 segment in pathogenesis are unclear. Thus, we further investigated the functional region of the inner-capsid σA protein encoded by the S2 segment. Notably, Ser-46 of σA was identified as a key amino acid determinant of PRV virulence and is present in strains derived from humans, monkeys, and bat flies, but not those identified from bats (their natural host). Collectively, these findings demonstrate that PRV σA is one factor that regulates virulence, and that σA Ser-46 may be related to potential interspecies transmission events from bats.

Supporting text Virus Host Location
Capsid Proteins 21 Orthoreovirus 6 Reoviridae Infections 7 Virulence Factors 9 Animals 1948 Chiroptera 371 Female 289 Humans 1440 Mice 253 Virulence 108 sigma 1 protein, reovirus 1

Evidence records

5 total
Zoonotic Surveillance
1 records · 1 evidence types
Evidence type
1 records
Experimental Infection
3 records · 1 evidence types
Evidence type
3 records
OVE11176
Key finding

MB-based monoreassortant PRVs carrying the S1 or S2 genomic segment from N57 showed attenuated virulence with reduced lung viral loads and cytokine gene expression in mice.

Virus
Host
Location
Not specified
Supporting text

Characterization of the virulence of recombinant monoreassortant PRVs derived from highly virulent MB and low virulent N57 strains in mice revealed that compared with wild-type (WT) MB, MB-based monoreassortants carrying the L1, S1, or S2 segment from N57 exhibited attenuated virulence. Among these, the monoreassortants carrying the S1 or S2 segment exhibited reduced viral loads and reduced cytokine gene expression levels in the lungs.

Method
recombinant monoreassortant virus construction | animal infection | lung viral load measurement | cytokine gene expression analysis
Experimental system
mouse infection model
OVE11177
Key finding

N57-based monoreassortant PRVs carrying the S1 or S2 segment of MB exhibited enhanced virulence and lower survival rates in mice compared with wild-type N57.

Virus
Host
Location
Not specified
Supporting text

Genetic mapping of virulence determinants using the reciprocal monoreassortant viruses with increased virulence demonstrated that N57-based monoreassortants carrying the S1 or S2 segment of MB exhibited enhanced virulence, resulting in lower survival rate compared with WT N57.

Method
genetic reassortant virus infection | survival rate monitoring | virulence comparison
Experimental system
mouse infection model
OVE11175
Key finding

PRV strain Nachunsulwe-57 (N57) exhibited low virulence compared with the human-derived strain Miyazaki-Bali/2007 (MB) in laboratory mice.

Virus
Host
Location
Not specified
Supporting text

We previously isolated the PRV strain Nachunsulwe-57 (N57) from a Zambian fruit bat and demonstrated its low virulence in laboratory mice. Here, we have attempted to identify factors responsible for differences in the virulence between strain N57 and the human-derived clinical strain Miyazaki-Bali/2007 (MB).

Method
animal infection experiment | comparative virulence assessment
Experimental system
laboratory mouse infection model
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE11178
Key finding

Ser-46 in the σA protein of Pteropine orthoreovirus serves as a molecular determinant of virulence, being present in human-, monkey-, and bat fly–derived strains but absent in bat-derived strains.

Virus
Host
Not specified
Location
Not specified
Supporting text

Notably, Ser-46 of σA was identified as a key amino acid determinant of PRV virulence and is present in strains derived from humans, monkeys, and bat flies, but not those identified from bats (their natural host).

Genes or proteins
σA protein
Mutations
Ser-46
Mechanism types
virulence adaptation | host-range expansion