Bat and pangolin coronavirus spike glycoprotein structures provide insights into SARS-CoV-2 evolution.

Shuyuan Zhang1 Shuyuan Qiao1 Jinfang Yu1 Jianwei Zeng1 Sisi Shan2 Long Tian1 Jun Lan1 Linqi Zhang2 Xinquan Wang3
Affiliations 3 institutions
  1. The Ministry of Education Key Laboratory of Protein Science, Beijing Advanced Innovation Center for Structural Biology, Beijing Frontier Research Center for Biological Structure, Collaborative Innovation Center for Biotherapy, School of Life Sciences, Tsinghua University, 100084, Beijing, China.
  2. Center for Global Health and Infectious Diseases, Comprehensive AIDS Research Center, Beijing Advanced Innovation Center for Structural Biology, School of Medicine, Tsinghua University, Beijing, China.
  3. The Ministry of Education Key Laboratory of Protein Science, Beijing Advanced Innovation Center for Structural Biology, Beijing Frontier Research Center for Biological Structure, Collaborative Innovation Center for Biotherapy, School of Life Sciences, Tsinghua University, 100084, Beijing, China. [email protected].

Abstract

In recognizing the host cellular receptor and mediating fusion of virus and cell membranes, the spike (S) glycoprotein of coronaviruses is the most critical viral protein for cross-species transmission and infection. Here we determined the cryo-EM structures of the spikes from bat (RaTG13) and pangolin (PCoV_GX) coronaviruses, which are closely related to SARS-CoV-2. All three receptor-binding domains (RBDs) of these two spike trimers are in the "down" conformation, indicating they are more prone to adopt the receptor-binding inactive state. However, we found that the PCoV_GX, but not the RaTG13, spike is comparable to the SARS-CoV-2 spike in binding the human ACE2 receptor and supporting pseudovirus cell entry. We further identified critical residues in the RBD underlying different activities of the RaTG13 and PCoV_GX/SARS-CoV-2 spikes. These results collectively indicate that tight RBD-ACE2 binding and efficient RBD conformational sampling are required for the evolution of SARS-CoV-2 to gain highly efficient infection.

Supporting text Virus Host Location
Amino Acid Sequence 128 Angiotensin-Converting Enzyme 2 177 Animals 1948 Chiroptera 371 Coronavirus 92 COVID-19 425 Cryoelectron Microscopy 37 Evolution, Molecular 176 Host Microbial Interactions 10 Humans 1440 Models, Molecular 99 Pandemics 108 Pangolins 29 Protein Domains 45 SARS-CoV-2 453 Sequence Homology, Amino Acid 18 Species Specificity 84 Spike Glycoprotein, Coronavirus 274 ACE2 protein, human 87 spike protein, SARS-CoV-2 157

Evidence records

1 total
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE4607
Key finding

PCoV_GX spike binds the human ACE2 receptor and enables pseudovirus cell entry, similar to SARS-CoV-2, whereas RaTG13 spike does not bind human ACE2 effectively.

Virus
Host
Location
Not specified
Supporting text

We found that the PCoV_GX, but not the RaTG13, spike is comparable to the SARS-CoV-2 spike in binding the human ACE2 receptor and supporting pseudovirus cell entry.

Method
receptor-binding assay | pseudovirus cell entry assay | cryo-EM structural analysis
Receptors
human ACE2 receptor