The SARS-CoV-2 Spike protein has a broad tropism for mammalian ACE2 proteins

Белок Spike SARS-CoV-2 обладает широким тропизмом к белкам ACE2 млекопитающих
Carina Conceicao, Nazia Thakur, Stacey Human, James T. Kelly, Leanne Logan, Dagmara Bialy, Sushant Bhat, Phoebe Stevenson-Leggett, Adrian K. Zagrajek, Philippa Hollinghurst, Michal Varga, Christina Tsirigoti, Matthew Tully, Chris Chiu, Katy Moffat, Adrian Paul Silesian, John A. Hammond, Helena J. Maier, Erica Bickerton, Holly Shelton, Isabelle Dietrich, Stephen C. Graham, Dalan Bailey
2020-12-21

ACE2 receptorsSARS-CoV-2 Spike proteinSpike–ACE2 interfacehost tropismzoonotic transmission
SARS Coronavirus 2 (SARS-CoV-2) emerged in late 2019, leading to the Coronavirus Disease 2019 (COVID-19) pandemic that continues to cause significant global mortality in human populations. Given its sequence similarity to SARS-CoV, as well as related coronaviruses circulating in bats, SARS-CoV-2 is thought to have originated in Chiroptera species in China. However, whether the virus spread directly to humans or through an intermediate host is currently unclear, as is the potential for this virus to infect companion animals, livestock, and wildlife that could act as viral reservoirs. Using a combination of surrogate entry assays and live virus, we demonstrate that, in addition to human angiotensin-converting enzyme 2 (ACE2), the Spike glycoprotein of SARS-CoV-2 has a broad host tropism for mammalian ACE2 receptors, despite divergence in the amino acids at the Spike receptor binding site on these proteins. Of the 22 different hosts we investigated, ACE2 proteins from dog, cat, and cattle were the most permissive to SARS-CoV-2, while bat and bird ACE2 proteins were the least efficiently used receptors. The absence of a significant tropism for any of the 3 genetically distinct bat ACE2 proteins we examined indicates that SARS-CoV-2 receptor usage likely shifted during zoonotic transmission from bats into people, possibly in an intermediate reservoir. Comparison of SARS-CoV-2 receptor usage to the related coronaviruses SARS-CoV and RaTG13 identified distinct tropisms, with the 2 human viruses being more closely aligned. Finally, using bioinformatics, structural data, and targeted mutagenesis, we identified amino acid residues within the Spike-ACE2 interface, which may have played a pivotal role in the emergence of SARS-CoV-2 in humans. The apparently broad tropism of SARS-CoV-2 at the point of viral entry confirms the potential risk of infection to a wide range of companion animals, livestock, and wildlife.
1
Among 22 tested hosts, dog, cat, and cattle ACE2 supported SARS-CoV-2 most efficiently, whereas bat and bird ACE2 were used least efficiently.
2
Bioinformatics, structural analysis, and mutagenesis identified Spike–ACE2 interface residues that may have contributed to SARS-CoV-2 emergence in humans and indicate infection risk across diverse animals.
3
SARS-CoV-2 Spike binds and mediates entry through a broad range of mammalian ACE2 proteins despite substantial receptor-binding-site sequence divergence.
4
SARS-CoV-2, SARS-CoV, and RaTG13 show distinct ACE2 tropisms, with the two human viruses displaying more similar receptor usage.
5
The limited usage of three genetically distinct bat ACE2 proteins suggests SARS-CoV-2 receptor usage shifted during zoonotic transmission, potentially through an intermediate host.

SARS-CoV-2 Spike glycoprotein interaction with mammalian ACE2 receptors from diverse host species

Host tropism and receptor usage efficiency across mammalian ACE2 proteins, including the Spike–ACE2 interface determinants of viral emergence

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2020-12-21
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Authors
Carina Conceicao
Nazia Thakur
Stacey Human
James T. Kelly
Leanne Logan
Dagmara Bialy
Sushant Bhat
Phoebe Stevenson-Leggett
Adrian K. Zagrajek
Philippa Hollinghurst
Michal Varga
Christina Tsirigoti
Matthew Tully
Chris Chiu
Katy Moffat
Adrian Paul Silesian
John A. Hammond
Helena J. Maier
Erica Bickerton
Holly Shelton
Isabelle Dietrich
Stephen C. Graham
Dalan Bailey
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