Further Evidence for Bats as the Evolutionary Source of Middle East Respiratory Syndrome Coronavirus.

S J Anthony1,2,3 K Gilardi4 V D Menachery5 T Goldstein4 B Ssebide6 R Mbabazi6 I Navarrete-Macias7 E Liang7,3 H Wells7 A Hicks7 A Petrosov7 D K Byarugaba8,9 K Debbink5 K H Dinnon5 T Scobey10 S H Randell11 B L Yount5 M Cranfield4,5 C K Johnson4 R S Baric5 W I Lipkin7,2 J A K Mazet4
Affiliations 11 institutions
  1. Center for Infection and Immunity, Mailman School of Public Health, Columbia University, New York, New York, USA [email protected].
  2. Department of Epidemiology, Mailman School of Public Health, Columbia University, New York, New York, USA.
  3. EcoHealth Alliance, New York, New York, USA.
  4. One Health Institute and Karen C. Drayer Wildlife Health Center, School of Veterinary Medicine, University of California, Davis, California, USA.
  5. Department of Microbiology and Immunology, University of North Carolina School of Medicine, Chapel Hill, North Carolina, USA.
  6. Gorilla Doctors, c/o MGVP, Inc., Davis, California, USA.
  7. Center for Infection and Immunity, Mailman School of Public Health, Columbia University, New York, New York, USA.
  8. Makerere University Walter Reed Project, Kampala, Uganda.
  9. Makerere University, College of Veterinary Medicine, Kampala, Uganda.
  10. Department of Epidemiology, University of North Carolina School of Medicine, Chapel Hill, North Carolina, USA.
  11. Department of Cell Biology and Physiology and Marsico Lung Institute/Cystic Fibrosis Center, University of North Carolina School of Medicine, Chapel Hill, North Carolina, USA.

Abstract

The evolutionary origins of Middle East respiratory syndrome (MERS) coronavirus (MERS-CoV) are unknown. Current evidence suggests that insectivorous bats are likely to be the original source, as several 2c CoVs have been described from various species in the family Vespertilionidae Here, we describe a MERS-like CoV identified from a Pipistrellus cf. hesperidus bat sampled in Uganda (strain PREDICT/PDF-2180), further supporting the hypothesis that bats are the evolutionary source of MERS-CoV. Phylogenetic analysis showed that PREDICT/PDF-2180 is closely related to MERS-CoV across much of its genome, consistent with a common ancestry; however, the spike protein was highly divergent (46% amino acid identity), suggesting that the two viruses may have different receptor binding properties. Indeed, several amino acid substitutions were identified in key binding residues that were predicted to block PREDICT/PDF-2180 from attaching to the MERS-CoV DPP4 receptor. To experimentally test this hypothesis, an infectious MERS-CoV clone expressing the PREDICT/PDF-2180 spike protein was generated. Recombinant viruses derived from the clone were replication competent but unable to spread and establish new infections in Vero cells or primary human airway epithelial cells. Our findings suggest that PREDICT/PDF-2180 is unlikely to pose a zoonotic threat. Recombination in the S1 subunit of the spike gene was identified as the primary mechanism driving variation in the spike phenotype and was likely one of the critical steps in the evolution and emergence of MERS-CoV in humans.IMPORTANCE Global surveillance efforts for undiscovered viruses are an important component of pandemic prevention initiatives. These surveys can be useful for finding novel viruses and for gaining insights into the ecological and evolutionary factors driving viral diversity; however, finding a viral sequence is not sufficient to determine whether it can infect people (i.e., poses a zoonotic threat). Here, we investigated the specific zoonotic risk of a MERS-like coronavirus (PREDICT/PDF-2180) identified in a bat from Uganda and showed that, despite being closely related to MERS-CoV, it is unlikely to pose a threat to humans. We suggest that this approach constitutes an appropriate strategy for beginning to determine the zoonotic potential of wildlife viruses. By showing that PREDICT/PDF-2180 does not infect cells that express the functional receptor for MERS-CoV, we further show that recombination was likely to be the critical step that allowed MERS to emerge in humans.

Supporting text Virus Host Location
bat 54 MERS coronavirus 2 spike 25 Uganda 10 zoonoses 477 Phylogeny 805 Virus Attachment 55 Animals 1948 Chiroptera 371 Evolution, Molecular 176 Genome, Viral 317 Middle East Respiratory Syndrome Coronavirus 68 Receptors, Virus 204 Spike Glycoprotein, Coronavirus 274 Synteny 1 Uganda 10

Evidence records

4 total
Zoonotic Surveillance
2 records · 2 evidence types
Evidence type
1 records
OVE2573
Key finding

A MERS-like coronavirus strain PREDICT/PDF-2180 was detected in a Pipistrellus cf. hesperidus bat sampled in Uganda.

Virus
Host
Location
Supporting text

Here, we describe a MERS-like CoV identified from a Pipistrellus cf. hesperidus bat sampled in Uganda (strain PREDICT/PDF-2180).

Method
viral identification | sequence analysis
Sample type
bat sample
Geographic raw
Uganda
Country inferred
UGA
Evidence type
1 records
OVE2578
Key finding

A MERS-like coronavirus (strain PREDICT/PDF-2180) was detected in a Pipistrellus cf. hesperidus bat in Uganda, supporting the interpretation that insectivorous bats act as an evolutionary source lineage for MERS-CoV–related viruses.

Virus
Host
Location
Supporting text

Here, we describe a MERS-like CoV identified from a Pipistrellus cf. hesperidus bat sampled in Uganda (strain PREDICT/PDF-2180), further supporting the hypothesis that bats are the evolutionary source of MERS-CoV.

Method
viral genome identification | phylogenetic analysis
Geographic raw
Uganda
Country inferred
UGA
Genomic Evolution
2 records · 2 evidence types
Evidence type
1 records
OVE2577
Key finding

Recombination in the S1 subunit of the spike gene was identified as the principal mechanism driving spike variation and a key step in the emergence of MERS-CoV in humans.

Virus
Host
Not specified
Location
Not specified
Supporting text

Recombination in the S1 subunit of the spike gene was identified as the primary mechanism driving variation in the spike phenotype and was likely one of the critical steps in the evolution and emergence of MERS-CoV in humans.

Event type
recombination
Genes or segments
S1 subunit of spike gene
Evidence type
1 records
OVE2576
Key finding

Phylogenetic analysis showed that the bat coronavirus PREDICT/PDF-2180 is closely related to MERS-CoV across much of its genome, consistent with a common ancestry.

Virus
Host
Location
Not specified
Supporting text

Here, we describe a MERS-like CoV identified from a Pipistrellus cf. hesperidus bat sampled in Uganda (strain PREDICT/PDF-2180), further supporting the hypothesis that bats are the evolutionary source of MERS-CoV. Phylogenetic analysis showed that PREDICT/PDF-2180 is closely related to MERS-CoV across much of its genome, consistent with a common ancestry; however, the spike protein was highly divergent (46% amino acid identity), suggesting that the two viruses may have different receptor binding properties.

Genes or proteins
genome | spike protein
Analysis methods
phylogenetic analysis