Isolation of ACE2-dependent and -independent sarbecoviruses from Chinese horseshoe bats.

Hua Guo1 Ang Li1,2 Tian-Yi Dong1,2 Hao-Rui Si1,2 Ben Hu1 Bei Li1 Yan Zhu1 Zheng-Li Shi1 Michael Letko3
Affiliations 3 institutions
  1. CAS Key Laboratory of Special Pathogens and Biosafety, Wuhan Institute of Virology, Chinese Academy of Sciences , Wuhan, China.
  2. Savaid Medical School, University of Chinese Academy of Sciences , Beijing, China.
  3. Paul G. Allen School for Global Health, Washington State University , Pullman, Washington, USA.

Abstract

While the spike proteins from severe acute respiratory syndrome coronaviruses-1 and 2 (SARS-CoV and SARS-CoV-2) bind to host angiotensin-converting enzyme 2 (ACE2) to infect cells, the majority of bat sarbecoviruses cannot use ACE2 from any species. Despite their discovery almost 20 years ago, ACE2-independent sarbecoviruses have never been isolated from field samples, leading to the assumption these viruses pose little risk to humans. We have previously shown how spike proteins from a small group of ACE2-independent bat sarbecoviruses may possess the ability to infect human cells in the presence of exogenous trypsin. Here, we adapted our earlier findings into a virus isolation protocol and recovered two new ACE2-dependent viruses, RsYN2012 and RsYN2016A, as well as an ACE2-independent virus, RsHuB2019A. Although our stocks of RsHuB2019A rapidly acquired a tissue-culture adaption that rendered the spike protein resistant to trypsin, trypsin was still required for viral entry, suggesting limitations on the exogenous entry factors that support bat sarbecoviruses. Electron microscopy revealed that ACE2-independent sarbecoviruses have a prominent spike corona and share similar morphology to other coronaviruses. Our findings demonstrate a broader zoonotic threat posed by sarbecoviruses and shed light on the intricacies of coronavirus isolation and propagation in vitro. IMPORTANCE Several coronaviruses have been transmitted from animals to people, and 20 years of virus discovery studies have uncovered thousands of new coronavirus sequences in nature. Most of the animal-derived sarbecoviruses have never been isolated in culture due to cell incompatibilities and a poor understanding of the in vitro requirements for their propagation. Here, we built on our growing body of work characterizing viral entry mechanisms of bat sarbecoviruses in human cells and have developed a virus isolation protocol that allows for the exploration of these understudied viruses. Our protocol is robust and practical, leading to successful isolation of more sarbecoviruses than previous approaches and from field samples that had been collected over a 10-year longitudinal study.

Supporting text Virus Host Location
bat 54 coronavirus 195 cross-species transmission 75 sarbecovirus 19 zoonosis 116 Angiotensin-Converting Enzyme 2 177 Betacoronavirus 78 Chiroptera 372 Receptors, Virus 205 Animals 1949 East Asian People 1 Humans 1441 Longitudinal Studies 17 Severe acute respiratory syndrome-related coronavirus 78 Spike Glycoprotein, Coronavirus 274 Trypsin 5 Zoonoses 397

Evidence records

4 total
Zoonotic Surveillance
3 records · 1 evidence types
Evidence type
3 records
OVE7305
Key finding

Infectious virus RsYN2012 was successfully isolated from Chinese horseshoe bats using a cell‑based isolation protocol.

Virus
Host
Location
Not specified
Supporting text

Isolation of ACE2-dependent and -independent sarbecoviruses from Chinese horseshoe bats. Here, we adapted our earlier findings into a virus isolation protocol and recovered two new ACE2-dependent viruses, RsYN2012 and RsYN2016A, as well as an ACE2-independent virus, RsHuB2019A.

OVE7306
Key finding

Infectious virus RsYN2016A was successfully isolated from Chinese horseshoe bats using a cell‑based isolation protocol.

Virus
Host
Location
Not specified
Supporting text

Isolation of ACE2-dependent and -independent sarbecoviruses from Chinese horseshoe bats. Here, we adapted our earlier findings into a virus isolation protocol and recovered two new ACE2-dependent viruses, RsYN2012 and RsYN2016A, as well as an ACE2-independent virus, RsHuB2019A.

OVE7307
Key finding

An ACE2-independent sarbecovirus RsHuB2019A was successfully isolated from Chinese horseshoe bats.

Virus
Host
Location
Not specified
Supporting text

Isolation of ACE2-dependent and -independent sarbecoviruses from Chinese horseshoe bats. Here, we adapted our earlier findings into a virus isolation protocol and recovered two new ACE2-dependent viruses, RsYN2012 and RsYN2016A, as well as an ACE2-independent virus, RsHuB2019A.

Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE7309
Key finding

RsHuB2019A rapidly acquired a tissue-culture adaptation that made its spike protein resistant to trypsin.

Virus
Host
Not specified
Location
Not specified
Supporting text

Although our stocks of RsHuB2019A rapidly acquired a tissue-culture adaption that rendered the spike protein resistant to trypsin.

Genes or proteins
spike protein
Host factors
trypsin
Mechanism types
host entry | replication adaptation