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Heart-nosed bat alphacoronaviruses use human CEACAM6 to enter cells

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Abstract

Identifying viruses with zoonotic potential on the basis of their ability to enter human cells is a critical component of pandemic prediction, prevention and preparedness. Here using a computational approach that retains maximum phylogenetic diversity, we selected an optimal subset of alphacoronavirus spike proteins to screen against broad coronavirus receptor libraries. Most of the selected spike proteins did not use any of the established coronavirus receptors. However, the pseudotyped spike protein of Cardioderma cor (heart-nosed bat) coronavirus KY43 (CcCoV-KY43) could enter human cells. Using a recombinant CcCoV receptor-binding domain (RBD) and a human receptor screening platform, we identified direct interactions with the human CEACAM proteins CEACAM3, CEACAM5 and CEACAM6. Overexpression of human CEACAM6—a protein widely expressed in the human lung—conferred permissivity to otherwise refractory human cells. A crystal structure showed that the RBD binds the amino-terminal IgV-like domain of human CEACAM6. Immune surveillance studies using sera of individuals from the Taveta region of Kenya, where CcCoV-KY43 was identified, did not show significant evidence of recent spillover. Wider characterization of alphacoronaviruses related to CcCoV-KY43 showed that human CEACAM6 is used by two other CcCoVs collected in Kenya. Moreover, there was more restricted nonhuman CEACAM6 tropism for viruses isolated from Rhinolophus bats from Russia and China. Thus, alphacoronaviruses that use CEACAM6 are probably geographically widespread, and viruses from East Africa show potential for transmission to humans.

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Acknowledgements: We thank T. Peacock, N. Thakur and J. Newman at The Pirbright Institute for provision of the TMPRSS2 plasmids, other protease constructs and the ACE2 expression library; S. Uyoga at the KEMRI–Wellcome Trust Research Program for the blood donor samples used in the serological assays; all the coronavirus research teams that deposited sequence information to GenBank that were selected by our greedy-algorithm-based approach; staff at the Diamond Light Source for beamtime (proposal mx36838) and staff of beamlines I04 and I24 for assistance with crystal testing and data collection. For the purpose of open access, the authors have applied a Creative Commons Attribution (CC BY) licence to any Author Accepted Manuscript version arising from this submission. D.B., A.D.N., S.C.G. and G.G. were supported by a BBSRC grant (BB/W006162/1). D.B. is supported by a BBSRC Institute Strategic Program Grant (BBS/E/PI/230002B) to The Pirbright Institute. D.B. and G.G. acknowledge the Pirbright Institute Flow Cytometry Facility (BBS/E/PI/23NB0003). A.D.N. is supported by a grant funded by the UK Department for Environment, Food and Rural Affairs (Defra, SE2947). The human receptor screening platform was supported by a MRC Partnership Grant (MR/X019705/1) awarded to D.B. and G.J.W. J.N., D.L. and B.A. are funded by Wellcome Trust grants 226141/Z/22/Z and 226130/Z/22/Z. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the article.

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Nature

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Journal ISSN

0028-0836
1476-4687

Volume Title

653

Publisher

Nature Publishing Group UK

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Except where otherwised noted, this item's license is described as http://creativecommons.org/licenses/by/4.0/