Identification of two critical amino acid residues of the severe acute respiratory syndrome coronavirus spike protein for its variation in zoonotic tropism transition via a double substitution strategy.

Xiu-Xia Qu1 Pei Hao Xi-Jun Song Si-Ming Jiang Yan-Xia Liu Pei-Gang Wang Xi Rao Huai-Dong Song Sheng-Yue Wang Yu Zuo Ai-Hua Zheng Min Luo Hua-Lin Wang Fei Deng Han-Zhong Wang Zhi-Hong Hu Ming-Xiao Ding Guo-Ping Zhao Hong-Kui Deng
Affiliations 1 institutions
  1. Department of Cell Biology and Genetics, College of Life Sciences, Peking University, Beijing, China.

Abstract

Severe acute respiratory syndrome coronavirus (SARS-CoV) is a recently identified human coronavirus. The extremely high homology of the viral genomic sequences between the viruses isolated from human (huSARS-CoV) and those of palm civet origin (pcSARS-CoV) suggested possible palm civet-to-human transmission. Genetic analysis revealed that the spike (S) protein of pcSARS-CoV and huSARS-CoV was subjected to the strongest positive selection pressure during transmission, and there were six amino acid residues within the receptor-binding domain of the S protein being potentially important for SARS progression and tropism. Using the single-round infection assay, we found that a two-amino acid substitution (N479K/T487S) of a huSARS-CoV for those of pcSARS-CoV almost abolished its infection of human cells expressing the SARS-CoV receptor ACE2 but no effect upon the infection of mouse ACE2 cells. Although single substitution of these two residues had no effects on the infectivity of huSARS-CoV, these recombinant S proteins bound to human ACE2 with different levels of reduced affinity, and the two-amino acid-substituted S protein showed extremely low affinity. On the contrary, substitution of these two amino acid residues of pcSARS-CoV for those of huSRAS-CoV made pcSARS-CoV capable of infecting human ACE2-expressing cells. These results suggest that amino acid residues at position 479 and 487 of the S protein are important determinants for SARS-CoV tropism and animal-to-human transmission.

Supporting text Virus Host Location
Zoonoses 397 Amino Acid Sequence 128 Amino Acid Substitution 81 Angiotensin-Converting Enzyme 2 177 Binding Sites 89 Carboxypeptidases 6 Humans 1440 Membrane Glycoproteins 26 Molecular Sequence Data 160 Peptidyl-Dipeptidase A 57 Severe Acute Respiratory Syndrome 22 Severe acute respiratory syndrome-related coronavirus 78 Spike Glycoprotein, Coronavirus 274 Structure-Activity Relationship 9 Tropism 11 Viral Envelope Proteins 60 ACE2 protein, human 87 Ace2 protein, mouse 16 spike glycoprotein, SARS-CoV 16 spike protein, mouse hepatitis virus 7

Evidence records

4 total
Functional Mechanism
4 records · 2 evidence types
Evidence type
1 records
OVE239
Key finding

Recombinant spike proteins from huSARS-CoV and pcSARS-CoV showed altered binding affinity to human ACE2 and changes in the ability to infect human ACE2–expressing cells depending on residues 479 and 487.

Virus
Host
Location
Not specified
Supporting text

Using the single-round infection assay, we found that a two-amino acid substitution (N479K/T487S) of a huSARS-CoV for those of pcSARS-CoV almost abolished its infection of human cells expressing the SARS-CoV receptor ACE2 but no effect upon the infection of mouse ACE2 cells. Although single substitution of these two residues had no effects on the infectivity of huSARS-CoV, these recombinant S proteins bound to human ACE2 with different levels of reduced affinity, and the two-amino acid-substituted S protein showed extremely low affinity.

Method
single-round infection assay
Receptors
ACE2 | human ACE2
Evidence type
3 records
OVE237
Key finding

Double substitution N479K/T487S in the huSARS-CoV spike protein abolished infection of human ACE2-expressing cells, demonstrating that residues 479 and 487 determine host tropism and zoonotic adaptation.

Virus
Host
Not specified
Location
Not specified
Supporting text

We found that a two-amino acid substitution (N479K/T487S) of a huSARS-CoV for those of pcSARS-CoV almost abolished its infection of human cells expressing the SARS-CoV receptor ACE2.

Genes or proteins
spike protein
Receptors
ACE2
Mutations
N479K | T487S
Mechanism types
receptor binding | host-range expansion | host entry | tissue tropism
OVE238
Key finding

Substitution of residues 479 and 487 in pcSARS-CoV spike for those of huSARS-CoV enabled infection of human ACE2-expressing cells, indicating molecular adaptation for cross-species transmission to humans.

Virus
Host
Not specified
Location
Not specified
Supporting text

On the contrary, substitution of these two amino acid residues of pcSARS-CoV for those of huSRAS-CoV made pcSARS-CoV capable of infecting human ACE2-expressing cells.

Genes or proteins
spike protein
Receptors
ACE2
Mutations
K479N | S487T
Mechanism types
receptor binding | host-range expansion | host entry | tissue tropism
OVE241
Key finding

Amino acid residues at spike positions 479 and 487 are identified as determinants enabling SARS-CoV animal-to-human transmission between palm civets and humans.

Virus
Host
Location
Not specified
Supporting text

These results suggest that amino acid residues at position 479 and 487 of the S protein are important determinants for SARS-CoV tropism and animal-to-human transmission.

Mechanism types
host tropism | adaptive mutation