Efficient replication of a paramyxovirus independent of full zippering of the fusion protein six-helix bundle domain

Proc Natl Acad Sci U S A. 2014 Sep 9;111(36):E3795-804. doi: 10.1073/pnas.1403609111. Epub 2014 Aug 25.

Abstract

Enveloped viruses such as HIV and members of the paramyxovirus family use metastable, proteinaceous fusion machineries to merge the viral envelope with cellular membranes for infection. A hallmark of the fusogenic glycoproteins of these pathogens is refolding into a thermodynamically highly stable fusion core structure composed of six antiparallel α-helices, and this structure is considered instrumental for pore opening and/or enlargement. Using a paramyxovirus fusion (F) protein, we tested this paradigm by engineering covalently restricted F proteins that are predicted to be unable to close the six-helix bundle core structure fully. Several candidate bonds formed efficiently, resulting in F trimers and higher-order complexes containing covalently linked dimers. The engineered F complexes were incorporated into recombinant virions efficiently and were capable of refolding into a postfusion conformation without temporary or permanent disruption of the disulfide bonds. They efficiently formed fusion pores based on virus replication and quantitative cell-to-cell and virus-to-cell fusion assays. Complementation of these F mutants with a monomeric, fusion-inactive F variant enriched the F oligomers for heterotrimers containing a single disulfide bond, without affecting fusion complementation profiles compared with standard F protein. Our demonstration that complete closure of the fusion core does not drive paramyxovirus entry may aid the design of strategies for inhibiting virus entry.

Keywords: measles virus; membrane fusion.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Amino Acid Sequence
  • Animals
  • COS Cells
  • Chickens
  • Chlorocebus aethiops
  • Cysteine / metabolism
  • Disulfides / metabolism
  • Humans
  • Kinetics
  • Measles virus / physiology*
  • Models, Molecular
  • Molecular Sequence Data
  • Mutant Proteins / metabolism
  • Protein Engineering
  • Protein Multimerization
  • Protein Refolding
  • Protein Stability
  • Protein Structure, Secondary
  • Protein Structure, Tertiary
  • Recombination, Genetic / genetics
  • Viral Fusion Proteins / chemistry*
  • Viral Fusion Proteins / metabolism*
  • Virus Replication*

Substances

  • Disulfides
  • Mutant Proteins
  • Viral Fusion Proteins
  • Cysteine