Coronavirus hemagglutinin-esterase and spike proteins coevolve for functional balance and optimal virion avidity.

Yifei Lang1 Wentao Li1 Zeshi Li2 Danielle Koerhuis1 Arthur C S van den Burg1 Erik Rozemuller3 Berend-Jan Bosch1 Frank J M van Kuppeveld1 Geert-Jan Boons2,4,5 Eric G Huizinga6 Hilde M van der Schaar3 Raoul J de Groot7,8
Affiliations 8 institutions
  1. Virology Division, Department of Biomolecular Health Sciences, Faculty of Veterinary Medicine, Utrecht University, 3584 CL Utrecht, The Netherlands.
  2. Department of Chemical Biology and Drug Discovery, Utrecht Institute for Pharmaceutical Sciences, Bijvoet Center for Biomolecular Research, Utrecht University, 3584 CG Utrecht, The Netherlands.
  3. GenDx B.V., 3584 CM Utrecht, The Netherlands.
  4. Department of Chemistry, University of Georgia, Athens, GA 30602.
  5. Complex Carbohydrate Research Center, University of Georgia, Athens, GA 30602.
  6. Crystal and Structural Chemistry, Bijvoet Center for Biomolecular Research, Faculty of Sciences, Utrecht University, 3584 CH Utrecht, The Netherlands.
  7. Virology Division, Department of Biomolecular Health Sciences, Faculty of Veterinary Medicine, Utrecht University, 3584 CL Utrecht, The Netherlands
  8. [email protected].

Abstract

Human coronaviruses OC43 and HKU1 are respiratory pathogens of zoonotic origin that have gained worldwide distribution. OC43 apparently emerged from a bovine coronavirus (BCoV) spillover. All three viruses attach to 9-O-acetylated sialoglycans via spike protein S with hemagglutinin-esterase (HE) acting as a receptor-destroying enzyme. In BCoV, an HE lectin domain promotes esterase activity toward clustered substrates. OC43 and HKU1, however, lost HE lectin function as an adaptation to humans. Replaying OC43 evolution, we knocked out BCoV HE lectin function and performed forced evolution-population dynamics analysis. Loss of HE receptor binding selected for second-site mutations in S, decreasing S binding affinity by orders of magnitude. Irreversible HE mutations led to cooperativity in virus swarms with low-affinity S minority variants sustaining propagation of high-affinity majority phenotypes. Salvageable HE mutations induced successive second-site substitutions in both S and HE. Apparently, S and HE are functionally interdependent and coevolve to optimize the balance between attachment and release. This mechanism of glycan-based receptor usage, entailing a concerted, fine-tuned activity of two envelope protein species, is unique among CoVs, but reminiscent of that of influenza A viruses. Apparently, general principles fundamental to virion-sialoglycan interactions prompted convergent evolution of two important groups of human and animal pathogens.

Supporting text Virus Host Location
coronavirus 195 hemagglutinin-esterase 1 influenza virus 29 sialic acid 12 spike 25 Animals 1948 Biological Evolution 28 Cell Line 158 Coronavirus 92 Coronavirus Infections 171 Coronavirus OC43, Human 7 Coronavirus, Bovine 6 Hemagglutinins, Viral 12 Humans 1440 Lectins 4 Mice 253 Mutation 209 Protein Binding 193 Protein Domains 45 Receptors, Virus 204 Selection, Genetic 23 Sialic Acids 29 Spike Glycoprotein, Coronavirus 274 Viral Fusion Proteins 9

Evidence records

5 total
Functional Mechanism
4 records · 2 evidence types
Evidence type
1 records
OVE4170
Key finding

Human coronaviruses OC43 and HKU1 and bovine coronavirus (BCoV) attach to 9-O-acetylated sialoglycans through spike protein S, with hemagglutinin-esterase (HE) serving as a receptor-destroying enzyme.

Virus
Host
Location
Not specified
Supporting text

Human coronaviruses OC43 and HKU1 are respiratory pathogens of zoonotic origin that have gained worldwide distribution. OC43 apparently emerged from a bovine coronavirus (BCoV) spillover. All three viruses attach to 9-O-acetylated sialoglycans via spike protein S with hemagglutinin-esterase (HE) acting as a receptor-destroying enzyme.

Method
molecular analysis | functional assay
Receptors
9-O-acetylated sialoglycans
Host factors
hemagglutinin-esterase (HE)
Evidence type
3 records
OVE4171
Key finding

Human coronaviruses OC43 and HKU1 lost hemagglutinin-esterase (HE) lectin function as a molecular adaptation to human hosts.

Virus
Host
Not specified
Location
Not specified
Supporting text

OC43 and HKU1, however, lost HE lectin function as an adaptation to humans.

Genes or proteins
HE
Receptors
9-O-acetylated sialoglycans
Host factors
human
Mechanism types
host-range expansion | receptor usage
OVE4173
Key finding

Coronavirus S and HE surface proteins coevolve to maintain an adaptive balance between receptor attachment and release, optimizing virion binding and infectivity.

Virus
Host
Not specified
Location
Not specified
Supporting text

Apparently, S and HE are functionally interdependent and coevolve to optimize the balance between attachment and release.

Genes or proteins
S | HE
Receptors
9-O-acetylated sialoglycans
Mechanism types
receptor binding | receptor usage | transmission fitness
OVE4172
Key finding

Loss of HE receptor binding in BCoV and OC43 selected for second-site mutations in spike protein S that reduced receptor-binding affinity, demonstrating adaptive coevolution.

Virus
Host
Not specified
Location
Not specified
Supporting text

Replaying OC43 evolution, we knocked out BCoV HE lectin function and performed forced evolution-population dynamics analysis. Loss of HE receptor binding selected for second-site mutations in S, decreasing S binding affinity by orders of magnitude.

Genes or proteins
HE | S
Receptors
9-O-acetylated sialoglycans
Mutations
second-site mutations in S
Mechanism types
receptor binding | receptor usage
Genomic Evolution
1 records · 1 evidence types
Evidence type
1 records