Sequence determinants of human-cell entry identified in ACE2-independent bat sarbecoviruses: A combined laboratory and computational network science approach.

Ehdieh Khaledian1 Sinem Ulusan2 Jeffery Erickson3 Stephen Fawcett2 Michael C Letko4 Shira L Broschat5,6,7
Affiliations 7 institutions
  1. School of Electrical Engineering and Computer Science, Washington State University, PO Box 640125, Pullman, WA 99164-2752, USA.
  2. Paul G. Allen School for Global Health, Washington State University, PO Box 647090, Pullman, WA 99164-7090, USA.
  3. School of Molecular Biosciences, Washington State University, Pullman, WA, USA.
  4. Paul G. Allen School for Global Health, Washington State University, PO Box 647090, Pullman, WA 99164-7090, USA. Electronic address: [email protected].
  5. School of Electrical Engineering and Computer Science, Washington State University, PO Box 640125, Pullman, WA 99164-2752, USA
  6. Paul G. Allen School for Global Health, Washington State University, PO Box 647090, Pullman, WA 99164-7090, USA
  7. Department of Veterinary Microbiology Pathology, Washington State University, Pullman, WA, USA. Electronic address: [email protected].

Abstract

The sarbecovirus subgenus of betacoronaviruses is widely distributed throughout bats and other mammals globally and includes human pathogens, SARS-CoV and SARS-CoV-2. The most studied sarbecoviruses use the host protein, ACE2, to infect cells. Curiously, the majority of sarbecoviruses identified to date do not use ACE2 and cannot readily acquire ACE2 binding through point mutations. We previously screened a broad panel of sarbecovirus spikes for cell entry and observed bat-derived viruses that could infect human cells, independent of ACE2. Here we further investigate the sequence determinants of cell entry for ACE2-independent bat sarbecoviruses. We employed a network science-based approach to visualize sequence and entry phenotype similarities across the diversity of sarbecovirus spike protein sequences. We then verified these computational results and mapped determinants of viral entry into human cells using recombinant chimeric spike proteins within an established viral pseudotype assay. We show ACE2-independent viruses that can infect human and bat cells in culture have a similar putative receptor binding motif, which can impart human cell entry into other bat sarbecovirus spikes that cannot otherwise infect human cells. These sequence determinants of human cell entry map to a surface-exposed protrusion from the predicted bat sarbecovirus spike receptor binding domain structure. Our findings provide further evidence of a group of bat-derived sarbecoviruses with zoonotic potential and demonstrate the utility in applying network science to phenotypic mapping and prediction. This work was supported by Washington State University and the Paul G. Allen School for Global Health.

Coronavirus 195 Entry assay 0 Mathematical model 1 Pseudotype 0 Sequence similarity network 0 Zoonosis 116 Chiroptera 371 COVID-19 425 Severe acute respiratory syndrome-related coronavirus 78 Angiotensin-Converting Enzyme 2 177 Animals 1948 Humans 1440 SARS-CoV-2 453 Spike Glycoprotein, Coronavirus 274 Virus Internalization 100 spike protein, SARS-CoV-2 157

Evidence records

0 total

No structured evidence records are linked to this article.