Recombination analysis on the receptor switching event of MERS-CoV and its close relatives: implications for the emergence of MERS-CoV.

Jarel Elgin Tolentino1,2 Spyros Lytras1,3 Jumpei Ito4,5 Kei Sato6,7,8,9,10,11,12,13
Affiliations 13 institutions
  1. Division of Systems Virology, Department of Microbiology and Immunology, The Institute of Medical Science, The University of Tokyo, Tokyo, Japan.
  2. Graduate School of Frontier Sciences, The University of Tokyo, Kashiwa, Japan.
  3. MRC-University of Glasgow Centre for Virus Research, Glasgow, UK.
  4. Division of Systems Virology, Department of Microbiology and Immunology, The Institute of Medical Science, The University of Tokyo, Tokyo, Japan. [email protected].
  5. International Research Center for Infectious Diseases, The Institute of Medical Science, The University of Tokyo, Tokyo, Japan. [email protected].
  6. Division of Systems Virology, Department of Microbiology and Immunology, The Institute of Medical Science, The University of Tokyo, Tokyo, Japan. [email protected].
  7. Graduate School of Frontier Sciences, The University of Tokyo, Kashiwa, Japan. [email protected].
  8. MRC-University of Glasgow Centre for Virus Research, Glasgow, UK. [email protected].
  9. International Vaccine Design Center, The Institute of Medical Science, The University of Tokyo, Tokyo, Japan. [email protected].
  10. Graduate School of Medicine, The University of Tokyo, Tokyo, Japan. [email protected].
  11. CREST, Japan Science and Technology Agency, Kawaguchi, Japan. [email protected].
  12. International Research Center for Infectious Diseases, The Institute of Medical Science, The University of Tokyo, Tokyo, Japan. [email protected].
  13. Collaboration Unit for Infection, Joint Research Center for Human Retrovirus Infection, Kumamoto University, Kumamoto, Japan. [email protected].

Abstract

PlMERS-CoV is a coronavirus known to cause severe disease in humans, taxonomically classified under the subgenus Merbecovirus. Recent findings showed that the close relatives of MERS-CoV infecting vespertillionid bats (family Vespertillionidae), named NeoCoV and PDF-2180, use their hosts' ACE2 as their entry receptor, unlike the DPP4 receptor usage of MERS-CoV. Previous research suggests that this difference in receptor usage between these related viruses is a result of recombination. However, the precise location of the recombination breakpoints and the details of the recombination event leading to the change of receptor usage remain unclear. We used maximum likelihood-based phylogenetics and genetic similarity comparisons to characterise the evolutionary history of all complete Merbecovirus genome sequences. Recombination events were detected by multiple computational methods implemented in the recombination detection program. To verify the influence of recombination, we inferred the phylogenetic relation of the merbecovirus genomes excluding recombinant segments and that of the viruses' receptor binding domains and examined the level of congruency between the phylogenies. Finally, the geographic distribution of the genomes was inspected to identify the possible location where the recombination event occurred. Similarity plot analysis and the recombination-partitioned phylogenetic inference showed that MERS-CoV is highly similar to NeoCoV (and PDF-2180) across its whole genome except for the spike-encoding region. This is confirmed to be due to recombination by confidently detecting a recombination event between the proximal ancestor of MERS-CoV and a currently unsampled merbecovirus clade. Notably, the upstream recombination breakpoint was detected in the N-terminal domain and the downstream breakpoint at the S2 subunit of spike, indicating that the acquired recombined fragment includes the receptor-binding domain. A tanglegram comparison further confirmed that the receptor binding domain-encoding region of MERS-CoV was acquired via recombination. Geographic mapping analysis on sampling sites suggests the possibility that the recombination event occurred in Africa. Together, our results suggest that recombination can lead to receptor switching of merbecoviruses during circulation in bats. These results are useful for future epidemiological assessments and surveillance to understand the spillover risk of bat coronaviruses to the human population.

Supporting text Virus Host Location
Coronavirus 195 MERS-CoV 24 One health 98 Receptor switching event 1 Recombination 40 Chiroptera 371 Coronavirus Infections 171 Middle East Respiratory Syndrome Coronavirus 68 Animals 1948 Humans 1440 Likelihood Functions 8 Phylogeny 805 Recombination, Genetic 59 Spike Glycoprotein, Coronavirus 274

Evidence records

3 total
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE7965
Key finding

NeoCoV and PDF-2180 use ACE2 as their entry receptor, whereas MERS-CoV uses DPP4, showing distinct receptor usage among related merbecoviruses.

Virus
Host
Location
Not specified
Supporting text

Recent findings showed that the close relatives of MERS-CoV infecting vespertillionid bats (family Vespertillionidae), named NeoCoV and PDF-2180, use their hosts' ACE2 as their entry receptor, unlike the DPP4 receptor usage of MERS-CoV.

Method
receptor usage comparison | receptor binding or entry analysis
Receptors
ACE2 | DPP4
Genomic Evolution
2 records · 2 evidence types
Evidence type
1 records
OVE7966
Key finding

A recombination event between the proximal ancestor of MERS-CoV and an unsampled merbecovirus clade produced the MERS-CoV spike region, including the receptor-binding domain linked to receptor switching.

Virus
Host
Not specified
Location
Not specified
Supporting text

This is confirmed to be due to recombination by confidently detecting a recombination event between the proximal ancestor of MERS-CoV and a currently unsampled merbecovirus clade. Notably, the upstream recombination breakpoint was detected in the N-terminal domain and the downstream breakpoint at the S2 subunit of spike, indicating that the acquired recombined fragment includes the receptor-binding domain.

Event type
recombination
Genes or segments
spike | N-terminal domain | S2 subunit | receptor-binding domain
Evidence type
1 records
OVE7967
Key finding

Recombination‑partitioned phylogenetic and similarity‑plot analyses showed that MERS‑CoV genomes are highly similar to NeoCoV and PDF‑2180 across most of the genome except for the spike region, revealing an evolutionary relationship clarified by recombination analysis.

Virus
Host
Not specified
Location
Not specified
Supporting text

Similarity plot analysis and the recombination‑partitioned phylogenetic inference showed that MERS‑CoV is highly similar to NeoCoV (and PDF‑2180) across its whole genome except for the spike‑encoding region.

Genes or proteins
spike‑encoding region
Analysis methods
similarity plot analysis | recombination‑partitioned phylogenetic inference