Jamaican fruit bats are susceptible to henipaviruses but rapidly control infection
Bullock, J.; Bulloch, B.; Wickenhagen, A.; Gallogly, S.; Kaiser, F.; Schulz, J. E.; Bushmaker, T.; Koolaparambil Mukesh, R.; Williamson, B. N.; Hawes, K.; McBain, A.; Prado-Smith, J.; Clancy, C. S.; Smith, B. J.; Port, J. R.; de Wit, E.; van Tol, S.
Show abstract
Henipaviruses (HNV), Hendra (HeV) and Nipah (NiV) virus, cause severe pulmonary and neurologic disease in humans and other mammals. Bats in the genus Pteropus naturally host HeV and NiV, but their feasibility in experimental studies is limited due to their large size, low fertility rate, and unavailability outside of their native range. Understanding bat-henipavirus interactions that regulate shedding and replication could improve mitigation of spillover events and illuminate the factors that differentiate severe and controlled HNV infection. Here, we assessed the suitability of the Jamaican fruit bat (JFB) (Artibeus jamaicensis) to model HNV infection in vitro and in vivo. JFB primary kidney cells were permissive to HNVs, and HeV and NiV antagonized the induction of the innate antiviral response. JFBs were inoculated via the intranasal and oral routes (IN/PO) with HeV or NiV or intravenously (IV) with HeV and monitored for 7 days. Following IN/PO exposure, infection was quenched rapidly and limited HeV RNA was detected in oral swabs and tissues while NiV RNA was found in only one oral swab. HeV IV inoculation resulted in robust, disseminated infection and viral RNA was detected in oral, rectal, and environmental swabs. Overall, these results support that JFBs are susceptible to both viruses, but replication is quenched rapidly in vivo following IN/PO exposure. Future studies will optimize the in vivo model to leverage the JFB to further our understanding of bat-henipavirus interactions. Author SummaryHenipaviruses (HNV) spillover from pteropid bat species and cause severe diseases in humans. Many gaps limit our understanding of HNV-bat interactions that influence spillover and effective control of infection. Here, we evaluate the Jamaican fruit bat (JFB) as a henipavirus model. We demonstrate that JFB cells are permissive all HNVs evaluated, and that JFBs support Hendra virus replication and shedding without signs of clinical disease.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Respiratory tract explant infection dynamics of influenza A virus in California sea lions, northern elephant seals, and rhesus macaques 97%
- The SARS-CoV-2 Spike is a virulence determinant and plays a major role on the attenuated phenotype of Omicron virus in a feline model of infection 97%
- 2018-2019 human seasonal H3N2 influenza A virus spillovers into swine with demonstrated virus transmission in pigs were not sustained in the pig population 96%
Similar papers in this journal
- A pigtailed macaque model for Kyasanur Forest disease virus and Alkhurma hemorrhagic disease virus 97%
- From Deer-to-Deer: SARS-CoV-2 is efficiently transmitted and presents broad tissue tropism and replication sites in white-tailed deer 96%
- Dysregulation of M segment gene expression contributes to influenza A virus host restriction 96%
Similar papers in this journal
- Time dependent proinflammatory responses shape virus interference during coinfections of influenza A virus and influenza D virus 95%
- Disruption of Zika virus xrRNA1-dependent sfRNA1 production results in tissue-specific attenuated viral replication 95%
- Differential pathogenesis of SARS-CoV-2 variants of concern in human ACE2-expressing mice 94%
Similar papers in this journal
Similar papers in this journal
- Susceptibility of rabbits to SARS-CoV-2 96%
- Susceptibility of sheep to experimental co-infection with the ancestral lineage of SARS-CoV-2 and its alpha variant 96%
- Replication Kinetics, Pathogenicity and Virus-induced Cellular Responses of Cattle-origin Influenza A(H5N1) Isolates from Texas, United States 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.