Recent Transmission of a Novel Alphacoronavirus, Bat Coronavirus HKU10, from Leschenault's Rousettes to Pomona Leaf-Nosed Bats: First Evidence of Interspecies Transmission of Coronavirus between Bats of Different Suborders
- 1 November 2012
- journal article
- research article
- Published by American Society for Microbiology in Journal of Virology
- Vol. 86 (21) , 11906-11918
- https://doi.org/10.1128/jvi.01305-12
Abstract
Although coronaviruses are known to infect various animals by adapting to new hosts, interspecies transmission events are still poorly understood. During a surveillance study from 2005 to 2010, a novel alphacoronavirus, BatCoV HKU10, was detected in two very different bat species, Ro-BatCoV HKU10 in Leschenault's rousettes (Rousettus leschenaulti) (fruit bats in the suborder Megachiroptera) in Guangdong and Hi-BatCoV HKU10 in Pomona leaf-nosed bats (Hipposideros pomona) (insectivorous bats in the suborder Microchiroptera) in Hong Kong. Although infected bats appeared to be healthy, Pomona leaf-nosed bats carrying Hi-BatCoV HKU10 had lower body weights than uninfected bats. To investigate possible interspecies transmission between the two bat species, the complete genomes of two Ro-BatCoV HKU10 and six Hi-BatCoV HKU10 strains were sequenced. Genome and phylogenetic analyses showed that Ro-BatCoV HKU10 and Hi-BatCoV HKU10 represented a novel alphacoronavirus species, sharing highly similar genomes except in the genes encoding spike proteins, which had only 60.5% amino acid identities. Evolution of the spike protein was also rapid in Hi-BatCoV HKU10 strains from 2005 to 2006 but stabilized thereafter. Molecular-clock analysis dated the most recent common ancestor of all BatCoV HKU10 strains to 1959 (highest posterior density regions at 95% [HPDs], 1886 to 2002) and that of Hi-BatCoV HKU10 to 1986 (HPDs, 1956 to 2004). The data suggested recent interspecies transmission from Leschenault's rousettes to Pomona leaf-nosed bats in southern China. Notably, the rapid adaptive genetic change in BatCoV HKU10 spike protein by similar to 40% amino acid divergence after recent interspecies transmission was even greater than the similar to 20% amino acid divergence between spike proteins of severe acute respiratory syndrome-related Rhinolophus bat coronavirus (SARSr-CoV) in bats and civets. This study provided the first evidence for interspecies transmission of coronavirus between bats of different suborders.Keywords
This publication has 87 references indexed in Scilit:
- A distinct lineage of influenza A virus from batsProceedings of the National Academy of Sciences, 2012
- A Random Effects Branch-Site Model for Detecting Episodic Diversifying SelectionMolecular Biology and Evolution, 2011
- Crystal structure of mouse coronavirus receptor-binding domain complexed with its murine receptorProceedings of the National Academy of Sciences, 2011
- MEGA5: Molecular Evolutionary Genetics Analysis Using Maximum Likelihood, Evolutionary Distance, and Maximum Parsimony MethodsMolecular Biology and Evolution, 2011
- New Algorithms and Methods to Estimate Maximum-Likelihood Phylogenies: Assessing the Performance of PhyML 3.0Systematic Biology, 2010
- Crystal structure of NL63 respiratory coronavirus receptor-binding domain complexed with its human receptorProceedings of the National Academy of Sciences, 2009
- Coronaviruses post-SARS: update on replication and pathogenesisNature Reviews Microbiology, 2009
- Structure of coronavirus hemagglutinin-esterase offers insight into corona and influenza virus evolutionProceedings of the National Academy of Sciences, 2008
- Identification of a new human coronavirusNature Medicine, 2004
- SWISS-MODEL: an automated protein homology-modeling serverNucleic Acids Research, 2003