The heptad repeat region is a major selection target in MERS-CoV and related coronaviruses.

Diego Forni1 Giulia Filippi2 Rachele Cagliani1 Luca De Gioia2 Uberto Pozzoli1 Nasser Al-Daghri3,4 Mario Clerici5,6 Manuela Sironi1
Affiliations 6 institutions
  1. Scientific Institute IRCCS E. MEDEA, Bioinformatics, 23842 Bosisio Parini, Italy.
  2. Department of Biotechnology and Biosciences, University of Milan-Bicocca, 20126 Milan, Italy.
  3. Biomarkers research program, Biochemistry Department, College of Science, King Saud University, Riyadh 11451, Kingdom of Saudi Arabia (KSA).
  4. Prince Mutaib Chair for Biomarkers of Osteoporosis, Biochemistry Department, College of science, King Saud University, Riyadh, KSA.
  5. Department of Physiopathology and Transplantation, University of Milan, 20090 Milan, Italy.
  6. Don C. Gnocchi Foundation ONLUS, IRCCS, 20148 Milan, Italy.

Abstract

Middle East respiratory syndrome coronavirus (MERS-CoV) originated in bats and spread to humans via zoonotic transmission from camels. We analyzed the evolution of the spike (S) gene in betacoronaviruses (betaCoVs) isolated from different mammals, in bat coronavirus populations, as well as in MERS-CoV strains from the current outbreak. Results indicated several positively selected sites located in the region comprising the two heptad repeats (HR1 and HR2) and their linker. Two sites (R652 and V1060) were positively selected in the betaCoVs phylogeny and correspond to mutations associated with expanded host range in other coronaviruses. During the most recent evolution of MERS-CoV, adaptive mutations in the HR1 (Q/R/H1020) arose in camels or in a previous host and spread to humans. We determined that different residues at position 1020 establish distinct inter- and intra-helical interactions and affect the stability of the six-helix bundle formed by the HRs. A similar effect on stability was observed for a nearby mutation (T1015N) that increases MERS-CoV infection efficiency in vitro. Data herein indicate that the heptad repeat region was a major target of adaptive evolution in MERS-CoV-related viruses; these results are relevant for the design of fusion inhibitor peptides with antiviral function.

Supporting text Virus Host Location
Evolution, Molecular 176 Selection, Genetic 23 Amino Acid Sequence 128 Animals 1948 Coronavirus 92 Genes, Viral 37 Genetic Variation 127 Genotype 137 Humans 1440 Middle East Respiratory Syndrome Coronavirus 68 Molecular Sequence Data 160 Phylogeny 805 Recombination, Genetic 59 Repetitive Sequences, Nucleic Acid 1 Sequence Alignment 51

Evidence records

3 total
Functional Mechanism
3 records · 1 evidence types
Evidence type
3 records
OVE2197
Key finding

The T1015N mutation in the MERS-CoV spike HR1 region increases infection efficiency and alters six-helix bundle stability, demonstrating functional adaptation.

Virus
Host
Not specified
Location
Not specified
Supporting text

A similar effect on stability was observed for a nearby mutation (T1015N) that increases MERS-CoV infection efficiency in vitro.

Genes or proteins
spike | HR1
Mutations
T1015N
Mechanism types
transmission fitness
OVE2194
Key finding

Positively selected sites in the HR1 and HR2 regions of the MERS-CoV spike gene indicate adaptive evolution affecting host range.

Virus
Host
Not specified
Location
Not specified
Supporting text

Results indicated several positively selected sites located in the region comprising the two heptad repeats (HR1 and HR2) and their linker.

Genes or proteins
spike | HR1 | HR2
Mechanism types
host-range expansion
OVE2195
Key finding

Two positively selected sites, R652 and V1060, in betacoronaviruses correspond to mutations associated with expanded host range.

Virus
Host
Not specified
Location
Not specified
Supporting text

Two sites (R652 and V1060) were positively selected in the betaCoVs phylogeny and correspond to mutations associated with expanded host range in other coronaviruses.

Genes or proteins
spike
Mutations
R652 | V1060
Mechanism types
host-range expansion