Structure-Guided Identification of a Nonhuman Morbillivirus with Zoonotic Potential.

Nurshariza Abdullah1,2 James T Kelly1 Stephen C Graham3 Jamie Birch1 Daniel Gonçalves-Carneiro1,2 Tim Mitchell2 Robin N Thompson4,5,6 Katrina A Lythgoe4,7 Nicola Logan8 Margaret J Hosie8 Vassiliy N Bavro9 Brian J Willett8 Michael P Heaton10 Dalan Bailey11,2
Affiliations 11 institutions
  1. The Pirbright Institute, Surrey, United Kingdom.
  2. The University of Birmingham, Birmingham, United Kingdom.
  3. Department of Pathology, University of Cambridge, Cambridge, United Kingdom.
  4. Department of Zoology, University of Oxford, Oxford, United Kingdom.
  5. Mathematical Institute, University of Oxford, Oxford, United Kingdom.
  6. Christ Church, University of Oxford, Oxford, United Kingdom.
  7. Big Data Institute, University of Oxford, Oxford, United Kingdom.
  8. MRC University of Glasgow Centre for Virus Research, Glasgow, United Kingdom.
  9. School of Biological Sciences, University of Essex, Colchester, United Kingdom.
  10. U.S. Meat Animal Research Center, Agricultural Research Service, U.S. Department of Agriculture, Clay Center, Nebraska, USA.
  11. The Pirbright Institute, Surrey, United Kingdom [email protected].

Abstract

Morbilliviruses infect a broad range of mammalian hosts, including ruminants, carnivores, and humans. The recent eradication of rinderpest virus (RPV) and the active campaigns for eradication of the human-specific measles virus (MeV) have raised significant concerns that the remaining morbilliviruses may emerge in so-called vacated ecological niches. Seeking to assess the zoonotic potential of nonhuman morbilliviruses within human populations, we found that peste des petits ruminants virus (PPRV)-the small-ruminant morbillivirus-is restricted at the point of entry into human cells due to deficient interactions with human SLAMF1-the immune cell receptor for morbilliviruses. Using a structure-guided approach, we characterized a single amino acid change, mapping to the receptor-binding domain in the PPRV hemagglutinin (H) protein, which overcomes this restriction. The same mutation allowed escape from some cross-protective, human patient, anti-MeV antibodies, raising concerns that PPRV is a pathogen with zoonotic potential. Analysis of natural variation within human and ovine SLAMF1 also identified polymorphisms that could correlate with disease resistance. Finally, the mechanistic nature of the PPRV restriction was also investigated, identifying charge incompatibility and steric hindrance between PPRV H and human SLAMF1 proteins. Importantly, this research was performed entirely using surrogate virus entry assays, negating the requirement for in situ derivation of a human-tropic PPRV and illustrating alternative strategies for identifying gain-of-function mutations in viral pathogens.IMPORTANCE A significant proportion of viral pandemics occur following zoonotic transmission events, where animal-associated viruses jump species into human populations. In order to provide forewarnings of the emergence of these viruses, it is necessary to develop a better understanding of what determines virus host range, often at the genetic and structural levels. In this study, we demonstrated that the small-ruminant morbillivirus, a close relative of measles, is unable to use human receptors to enter cells; however, a change of a single amino acid in the virus is sufficient to overcome this restriction. This information will be important for monitoring this virus's evolution in the field. Of note, this study was undertaken in vitro, without generation of a fully infectious virus with this phenotype.

Supporting text Virus Host Location
host range 29 measles 5 morbillivirus 2 paramyxovirus 18 PPRV 1 zoonoses 477 Mutation 209 Virus Replication 191 Amino Acid Sequence 128 Animals 1948 Antibodies, Viral 212 Chlorocebus aethiops 70 Glycoproteins 23 Humans 1440 Models, Theoretical 13 Mutagenesis, Site-Directed 12 Peste-des-Petits-Ruminants 1 Peste-des-petits-ruminants virus 1 Protein Conformation 44 Sequence Homology 21 Sheep 34 Signaling Lymphocytic Activation Molecule Family Member 1 1 Vero Cells 55

Evidence records

2 total
Functional Mechanism
2 records · 2 evidence types
Evidence type
1 records
OVE3092
Key finding

Charge incompatibility and steric hindrance between the PPRV hemagglutinin and human SLAMF1 explain the molecular basis of the receptor-binding restriction that prevents efficient human cell entry.

Virus
Host
Location
Not specified
Supporting text

the mechanistic nature of the PPRV restriction was also investigated, identifying charge incompatibility and steric hindrance between PPRV H and human SLAMF1 proteins.

Method
structural modeling | receptor-binding analysis
Receptors
human SLAMF1
Host factors
PPRV H
Evidence type
1 records
OVE3093
Key finding

A single amino acid change in the PPRV hemagglutinin (H) receptor-binding domain enables interaction with human SLAMF1 and allows escape from anti-measles virus antibodies, indicating adaptation toward human host entry and immune evasion.

Virus
Host
Not specified
Location
Not specified
Supporting text

we characterized a single amino acid change, mapping to the receptor-binding domain in the PPRV hemagglutinin (H) protein, which overcomes this restriction. The same mutation allowed escape from some cross-protective, human patient, anti-MeV antibodies.

Genes or proteins
hemagglutinin (H) protein
Receptors
human SLAMF1
Mutations
single amino acid change (unspecified position, receptor-binding domain)
Mechanism types
receptor binding | host entry | immune escape | host-range expansion