Molecular basis of convergent evolution of ACE2 receptor utilization among HKU5 coronaviruses.

Young-Jun Park1,2 Chen Liu3 Jimin Lee4 Jack T Brown4 Cheng-Bao Ma3 Peng Liu3 Risako Gen4 Qing Xiong3 Samantha K Zepeda4 Cameron Stewart4 Amin Addetia4 Caroline J Craig5 M Alejandra Tortorici4 Abeer N Alshukairi6,7 Tyler N Starr5 Huan Yan8 David Veesler1,9
Affiliations 9 institutions
  1. Department of Biochemistry, University of Washington, Seattle, WA 98195, USA
  2. Howard Hughes Medical Institute, University of Washington, Seattle, WA 98195, USA.
  3. State Key Laboratory of Virology and Biosafety, College of Life Sciences, TaiKang Center for Life and Medical Sciences, Wuhan University, Wuhan, Hubei 430072, China.
  4. Department of Biochemistry, University of Washington, Seattle, WA 98195, USA.
  5. Department of Biochemistry, University of Utah School of Medicine, Salt Lake City, UT 84112, USA.
  6. College of Medicine, Alfaisal University, Riyadh, Saudi Arabia
  7. Department of Medicine, King Faisal Specialist Hospital and Research Center, Jeddah, Saudi Arabia.
  8. State Key Laboratory of Virology and Biosafety, College of Life Sciences, TaiKang Center for Life and Medical Sciences, Wuhan University, Wuhan, Hubei 430072, China. Electronic address: [email protected].
  9. Howard Hughes Medical Institute, University of Washington, Seattle, WA 98195, USA. Electronic address: [email protected].

Abstract

DPP4 was considered a canonical receptor for merbecoviruses until the recent discovery of African bat-borne MERS-related coronaviruses using ACE2. The extent and diversity of ACE2 utilization among merbecoviruses and their receptor species tropism remain unknown. Here, we reveal that HKU5 enters host cells utilizing Pipistrellus abramus (P.abr) and several non-bat mammalian ACE2s through a binding mode distinct from that of any other known ACE2-using coronaviruses. We defined the molecular determinants of receptor species tropism and identified a single amino acid mutation enabling HKU5 to utilize human ACE2, providing proof of principle for machine-learning-assisted outbreak preparedness. We show that MERS-CoV and HKU5 have markedly distinct antigenicity and identified several HKU5 inhibitors, including two clinical compounds. Our findings profoundly alter our understanding of coronavirus evolution, as several merbecovirus clades independently evolved ACE2 utilization, and pave the way for developing countermeasures against viruses poised for human emergence.

Supporting text Virus Host Location
antibodies 18 coronaviruses 32 HKU5 1 merbecoviruses 1 MERS-CoV 24 spillover 105 viral receptor 3 Angiotensin-Converting Enzyme 2 177 Coronavirus 92 Receptors, Virus 204 Animals 1948 Chiroptera 371 Dipeptidyl Peptidase 4 32 Evolution, Molecular 176 HEK293 Cells 61 Humans 1440 Middle East Respiratory Syndrome Coronavirus 68 Mutation 209 Phylogeny 805 Viral Tropism 45 ACE2 protein, human 87

Evidence records

2 total
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE8888
Key finding

HKU5 coronavirus uses Pipistrellus abramus ACE2 and several non-bat mammalian ACE2 receptors for host cell entry via a distinct binding mode.

Virus
Host
Location
Not specified
Supporting text

HKU5 enters host cells utilizing Pipistrellus abramus (P.abr) and several non-bat mammalian ACE2s through a binding mode distinct from that of any other known ACE2-using coronaviruses.

Method
host-cell entry assay | receptor binding analysis
Receptors
ACE2
Genomic Evolution
1 records · 1 evidence types
Evidence type
1 records
OVE8890
Key finding

Phylogenetic analysis indicates that several merbecovirus clades have independently evolved the ability to use ACE2, demonstrating convergent evolution of receptor utilization.

Virus
Host
Not specified
Location
Not specified
Supporting text

Our findings profoundly alter our understanding of coronavirus evolution, as several merbecovirus clades independently evolved ACE2 utilization.

Genes or proteins
ACE2
Analysis methods
phylogenetic analysis