SARS-related coronavirus S-protein structures reveal synergistic RBM interactions underpinning high-affinity human ACE2 binding.

Jingjing Wang1 Yong Ma1 Zimu Li1,2,3 Hang Yuan1,4 Banghui Liu1 Zexuan Li1,4 Mengzhen Su1,5 Gul Habib1 Yutong Liu1 Lutang Fu6 Peiyi Wang6 Mei Li2 Jun He1 Jing Chen2 Peng Zhou2 Zhengli Shi2 Xinwen Chen2 Xiaoli Xiong1
Affiliations 6 institutions
  1. Guangdong Provincial Key Laboratory of Stem Cell and Regenerative Medicine, Guangdong-Hong Kong Joint Research Laboratory for Stem Cell and Regenerative Medicine, Guangzhou Institutes of Biomedicine and Health, Chinese Academy of Sciences, Guangzhou, China.
  2. Guangzhou National Laboratory, Guangzhou, Guangdong, China.
  3. Graduate School of Guangzhou Medical University, Guangzhou, China.
  4. University of Chinese Academy of Sciences, Beijing, China.
  5. University of Science and Technology of China, Hefei, China.
  6. Cryo-electron Microscopy Center, Southern University of Science and Technology, Shenzhen, China.

Abstract

High-affinity and specific binding toward the human angiotensin-converting enzyme 2 (hACE2) receptor by severe acute respiratory syndrome coronavirus (SARS)-related coronaviruses (SARSr-CoVs) remains incompletely understood. We report cryo-electron microscopy structures of eight different S-proteins from SARSr-CoVs found across Asia, Europe, and Africa. These S-proteins all adopt tightly packed, locked, prefusion conformations. These structures enable the classification of SARSr-CoV S-proteins into three types, based on their receptor-binding motif (RBM) structures and ACE2 binding characteristics. Type-2 S-proteins often preferentially bind bat ACE2 (bACE2) over hACE2. We report a structure of a type-2 BtKY72-RBD in complex with bACE2 to understand ACE2 specificity. Structure-guided mutagenesis of BtKY72-RBD reveals that multiple synergistic mutations in four different regions of RBM are required to achieve high-affinity hACE2 binding. Similar RBM changes can also confer hACE2 binding to another type-2 BM48-31 S-protein, which is primarily non-ACE2 binding. These results provide an understanding of how high-affinity hACE2 binding may be acquired by SARSr-CoV S-proteins.

Supporting text Virus Host Location
Angiotensin-Converting Enzyme 2 177 Severe acute respiratory syndrome-related coronavirus 78 Spike Glycoprotein, Coronavirus 274 Binding Sites 89 Cryoelectron Microscopy 37 Humans 1440 Models, Molecular 99 Mutation 209 Protein Binding 193 Protein Conformation 44 SARS-CoV-2 453 ACE2 protein, human 87 spike protein, SARS-CoV-2 157

Evidence records

3 total
Functional Mechanism
3 records · 2 evidence types
Evidence type
2 records
OVE8958
Key finding

Cryo-EM structural analyses of eight SARS-related coronavirus S-proteins revealed distinct receptor-binding motif types showing preferential binding to human or bat ACE2 receptors.

Virus
Host
Location
Not specified
Supporting text

These structures enable the classification of SARSr-CoV S-proteins into three types, based on their receptor-binding motif (RBM) structures and ACE2 binding characteristics. Type-2 S-proteins often preferentially bind bat ACE2 (bACE2) over hACE2.

Method
cryo-electron microscopy | structural classification | receptor-binding motif analysis
Receptors
ACE2 | bat ACE2 | human ACE2
OVE8959
Key finding

The crystal structure of the BtKY72 receptor-binding domain bound to bat ACE2 demonstrated receptor specificity toward bat ACE2.

Virus
Host
Location
Not specified
Supporting text

We report a structure of a type-2 BtKY72-RBD in complex with bACE2 to understand ACE2 specificity.

Method
X-ray crystallography | structural complex analysis
Receptors
bat ACE2
Evidence type
1 records
OVE8961
Key finding

RBM mutations enable the BM48-31 spike protein, originally non-ACE2 binding, to acquire human ACE2 binding capability.

Virus
Host
Not specified
Location
Not specified
Supporting text

Similar RBM changes can also confer hACE2 binding to another type-2 BM48-31 S-protein, which is primarily non-ACE2 binding.

Genes or proteins
spike | RBM
Receptors
human ACE2
Mechanism types
receptor binding | receptor usage | host-range expansion