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PMID: 14561897 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Influenza virus hemagglutinin concentrates in lipid raft microdomains for efficient viral fusion.

Takeda M, Leser GP, Russell CJ, Lamb RA

Abstract

Lipid raft microdomains are enriched in sphingomyelin and cholesterol and function as platforms for signal transduction and as the site of budding of several enveloped viruses, including influenza virus. The influenza virus hemagglutinin (HA) glycoprotein, which mediates both viral-cell attachment and membrane fusion, associates intrinsically with lipid rafts. Residues in the HA transmembrane (TM) domain are important for raft association as sequence substitutions in the HA TM domain ablate HA association with rafts (nonraft HA). Cells expressing either WT or nonraft HA cause complete fusion (lipid mixing and content mixing) over widely varying HA expression levels. However, the number of fusion events measured for nonraft HA mutant protein at all HA surface densities was reduced to approximately 55% of the events for WT HA protein. Mutant influenza viruses were generated that contain the nonraft HA TM domain alterations. Electron microscopy experiments showed that WT HA was distributed at the cell surface in clusters of 200-280 nm in diameter, whereas nonraft HA was distributed mostly randomly at the plasma membrane. Nonraft HA virus showed reduced budding, contained reduced amounts of HA protein, was greatly reduced in infectivity, and exhibited decreased virus-membrane fusion activity. Cholesterol depletion of virus did not affect the ability of virions to cause either virus-cell lipid mixing or virus-mediated hemolysis, a surrogate for content mixing. Taken together, the data suggest that HA clusters in rafts to provide a sufficient concentration of HA in budding virus to mediate efficient virus-cell fusion.

MeSH Terms
Amino Acid Sequence Animals Cell Fusion Cell Line Cell Line, Tumor Cell Membrane/metabolism,virology Chlorocebus aethiops Cholesterol/metabolism DNA, Complementary/metabolism Detergents/pharmacology Dogs Electrophoresis, Polyacrylamide Gel Hemagglutinin Glycoproteins, Influenza Virus/biosynthesis,physiology Hemagglutinins/biosynthesis,physiology Humans Immunoblotting Kinetics Lipid Metabolism Membrane Fusion Membrane Microdomains/metabolism,virology Microscopy, Electron Microscopy, Fluorescence Molecular Sequence Data Mutagenesis Mutation Octoxynol/pharmacology Orthomyxoviridae/genetics,metabolism Precipitin Tests Protein Structure, Tertiary Recombinant Fusion Proteins/metabolism Signal Transduction Vero Cells
Chemicals
DNA, Complementary Detergents Hemagglutinin Glycoproteins, Influenza Virus Hemagglutinins Recombinant Fusion Proteins Octoxynol Cholesterol
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Takeda Makoto
Howard Hughes Medical Institute, Northwestern University, Evanston, IL 60208-3500, USA.
Leser George P
Russell Charles J
Lamb Robert A
References (41)
41 references, click to expand
  1. An electron microscopic study of single-cycle infection of chick embryo fibroblasts by influenza virus.
    Virology. 1969 Nov;39(3):499-515 PMID: 4187931
  2. Generation of influenza A viruses entirely from cloned cDNAs.
    Proc Natl Acad Sci U S A. 1999 Aug 3;96(16):9345-50 PMID: 10430945
  3. Differential extractability of influenza virus hemagglutinin during intracellular transport in polarized epithelial cells and nonpolar fibroblasts.
    J Cell Biol. 1989 Mar;108(3):821-32 PMID: 2522097
  4. Sorting of GPI-anchored proteins to glycolipid-enriched membrane subdomains during transport to the apical cell surface.
    Cell. 1992 Feb 7;68(3):533-44 PMID: 1531449
  5. Glycosphingolipid-enriched, detergent-insoluble complexes in protein sorting in epithelial cells.
    Biochemistry. 1993 Jun 29;32(25):6365-73 PMID: 8518282
  6. Annexin XIIIb: a novel epithelial specific annexin is implicated in vesicular traffic to the apical plasma membrane.
    J Cell Biol. 1995 Mar;128(6):1043-53 PMID: 7896870
  7. Palmitylation of the influenza virus hemagglutinin (H3) is not essential for virus assembly or infectivity.
    J Virol. 1996 Mar;70(3):1406-14 PMID: 8627657
  8. Membrane fusion mediated by the influenza virus hemagglutinin requires the concerted action of at least three hemagglutinin trimers.
    J Cell Biol. 1996 May;133(3):559-69 PMID: 8636231
  9. The paramyxovirus simian virus 5 hemagglutinin-neuraminidase glycoprotein, but not the fusion glycoprotein, is internalized via coated pits and enters the endocytic pathway.
    Mol Biol Cell. 1996 Jan;7(1):155-72 PMID: 8741847
  10. Dilation of the influenza hemagglutinin fusion pore revealed by the kinetics of individual cell-cell fusion events.
    J Cell Biol. 1996 Oct;135(1):63-71 PMID: 8858163
  11. Influenza virus hemagglutinin and neuraminidase cytoplasmic tails control particle shape.
    EMBO J. 1997 Mar 17;16(6):1236-47 PMID: 9135140
  12. Functional rafts in cell membranes.
    Nature. 1997 Jun 5;387(6633):569-72 PMID: 9177342
  13. Interaction of influenza virus haemagglutinin with sphingolipid-cholesterol membrane domains via its transmembrane domain.
    EMBO J. 1997 Sep 15;16(18):5501-8 PMID: 9312009
  14. The M1 and M2 proteins of influenza A virus are important determinants in filamentous particle formation.
    Virology. 1998 Jan 5;240(1):127-37 PMID: 9448697
  15. Cholesterol is required for surface transport of influenza virus hemagglutinin.
    J Cell Biol. 1998 Mar 23;140(6):1357-67 PMID: 9508769
  16. Lipid domain structure of the plasma membrane revealed by patching of membrane components.
    J Cell Biol. 1998 May 18;141(4):929-42 PMID: 9585412
  17. Sphingolipid-cholesterol rafts diffuse as small entities in the plasma membrane of mammalian cells.
    J Cell Biol. 2000 Mar 6;148(5):997-1008 PMID: 10704449
  18. Evidence for budding of human immunodeficiency virus type 1 selectively from glycolipid-enriched membrane lipid rafts.
    J Virol. 2000 Apr;74(7):3264-72 PMID: 10708443
  19. Fusion protein of the paramyxovirus SV5: destabilizing and stabilizing mutants of fusion activation.
    Virology. 2000 Apr 25;270(1):17-30 PMID: 10772976
  20. Influenza virus assembly and lipid raft microdomains: a role for the cytoplasmic tails of the spike glycoproteins.
    J Virol. 2000 May;74(10):4634-44 PMID: 10775599
  21. Molecular switches in lipid rafts.
    Nature. 2000 Apr 27;404(6781):945, 947 PMID: 10801110
  22. Influenza virus assembly: effect of influenza virus glycoproteins on the membrane association of M1 protein.
    J Virol. 2000 Sep;74(18):8709-19 PMID: 10954572
  23. Receptor binding and membrane fusion in virus entry: the influenza hemagglutinin.
    Annu Rev Biochem. 2000;69:531-69 PMID: 10966468
  24. Sterols and sphingolipids strongly affect the growth of fusion pores induced by the hemagglutinin of influenza virus.
    Biochemistry. 2000 Nov 7;39(44):13462-8 PMID: 11063582
  25. Lipid rafts and signal transduction.
    Nat Rev Mol Cell Biol. 2000 Oct;1(1):31-9 PMID: 11413487
  26. Multimerization of human immunodeficiency virus type 1 Gag promotes its localization to barges, raft-like membrane microdomains.
    J Virol. 2001 Sep;75(17):7913-24 PMID: 11483736
  27. Plasma membrane rafts play a critical role in HIV-1 assembly and release.
    Proc Natl Acad Sci U S A. 2001 Nov 20;98(24):13925-30 PMID: 11717449
  28. Synchronized activation and refolding of influenza hemagglutinin in multimeric fusion machines.
    J Cell Biol. 2001 Nov 26;155(5):833-44 PMID: 11724823
  29. Influenza a virus M2 ion channel activity is essential for efficient replication in tissue culture.
    J Virol. 2002 Feb;76(3):1391-9 PMID: 11773413
  30. The fusion peptide of Semliki Forest virus associates with sterol-rich membrane domains.
    J Virol. 2002 Apr;76(7):3267-75 PMID: 11884551
  31. Role of lipid rafts in virus assembly and budding.
    Adv Virus Res. 2002;58:1-28 PMID: 12205777
  32. Lipid rafts and assembly of enveloped viruses.
    Traffic. 2002 Oct;3(10):705-9 PMID: 12230468
  33. Selective incorporation of influenza virus RNA segments into virions.
    Proc Natl Acad Sci U S A. 2003 Feb 18;100(4):2002-7 PMID: 12574509
  34. A novel method for analysis of membrane microdomains: vesicular stomatitis virus glycoprotein microdomains change in size during infection, and those outside of budding sites resemble sites of virus budding.
    Virology. 2003 Jun 5;310(2):343-58 PMID: 12781721
  35. Cholesterol depletion of human immunodeficiency virus type 1 and simian immunodeficiency virus with beta-cyclodextrin inactivates and permeabilizes the virions: evidence for virion-associated lipid rafts.
    J Virol. 2003 Aug;77(15):8237-48 PMID: 12857892
  36. Mutations in the middle of the transmembrane domain reverse the polarity of transport of the influenza virus hemagglutinin in MDCK epithelial cells.
    J Cell Biol. 1998 Jul 13;142(1):51-7 PMID: 9660862
  37. GPI-anchored proteins are organized in submicron domains at the cell surface.
    Nature. 1998 Aug 20;394(6695):798-801 PMID: 9723621
  38. Influenza viruses select ordered lipid domains during budding from the plasma membrane.
    J Biol Chem. 1999 Jan 22;274(4):2038-44 PMID: 9890962
  39. The MAL proteolipid is necessary for normal apical transport and accurate sorting of the influenza virus hemagglutinin in Madin-Darby canine kidney cells.
    J Cell Biol. 1999 Apr 5;145(1):141-51 PMID: 10189374
  40. VIP17/MAL, a lipid raft-associated protein, is involved in apical transport in MDCK cells.
    Proc Natl Acad Sci U S A. 1999 May 25;96(11):6241-8 PMID: 10339572
  41. Membrane fusion activity of influenza virus.
    EMBO J. 1982;1(2):217-22 PMID: 7188182
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2003-12-09
Epub
2003-00-15
Pages
14610-7
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC299746
Subset
IM
Grants
NIAID NIH HHS · R01 AI023173 · United States
NIAID NIH HHS · R37 AI020201 · United States
NIAID NIH HHS · R01 AI-23173 · United States
NIAID NIH HHS · R37 AI-20201 · United States
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