Structural Plasticity of the Semliki Forest Virus Glycome upon Interspecies Transmission

被引:24
作者
Crispin, Max [1 ]
Harvey, David J. [1 ]
Bitto, David [2 ]
Bonomelli, Camille [1 ]
Edgeworth, Matthew [3 ]
Scrivens, James H. [3 ]
Huiskonen, Juha T. [2 ]
Bowden, Thomas A. [2 ]
机构
[1] Univ Oxford, Oxford Glycobiol Inst, Dept Biochem, Oxford OX1 3QU, England
[2] Univ Oxford, Wellcome Trust Ctr Human Genet, Div Struct Biol, Oxford OX3 7BN, England
[3] Univ Warwick, Sch Life Sci, Coventry CV4 7AL, W Midlands, England
基金
芬兰科学院; 英国惠康基金; 英国医学研究理事会;
关键词
glycoprotein; virus; alphavirus; structure; glycosylation; ASPARAGINE-LINKED OLIGOSACCHARIDES; LASER-DESORPTION IONIZATION; FUSION PROTEIN; MASS-SPECTROMETRY; ENVELOPE GLYCANS; MEMBRANE-FUSION; HIGH-MANNOSE; GLYCOSYLATION; ALPHAVIRUS; MOSQUITO;
D O I
10.1021/pr401162k
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Cross-species viral transmission subjects parent and progeny alphaviruses to differential post-translational processing of viral envelope glycoproteins. Alphavirus bio-genesis has been extensively studied, and the Semliki Forest virus E1 and E2 glycoproteins have been shown to exhibit differing degrees of processing of N-linked glycans. However the composition of these glycans, including that arising from different host cells, has not been determined. Here we determined the chemical composition of the glycans from the prototypic alphavirus, Semliki Forest virus, propagated in both arthropod and rodent cell lines, by using ion-mobility mass spectrometry and collision-induced dissociation analysis. We observe that both the membrane-proximal E1 fusion glycoprotein and the protruding E2 attachment glycoprotein display heterogeneous glycosylation that contains N-linked glycans exhibiting both limited and extensive processing. However, E1 contained predominantly highly processed glycans dependent on the host cell, with rodent and mosquito-derived El exhibiting complex-type and paucimannose-type glycosylation, respectively. In contrast, the protruding E2 attachment glycoprotein primarily contained conserved under-processed oligomannose-type structures when produced in both rodent and mosquito cell lines. It is likely that glycan processing of E2 is structurally restricted by steric-hindrance imposed by local viral protein structure. This contrasts E1, which presents glycans characteristic of the host cell and is accessible to enzymes. We integrated our findings with previous cryo-electron microscopy and crystallographic analyses to produce a detailed model of the glycosylated mature virion surface. Taken together, these data reveal the degree to which virally encoded protein structure and cellular processing enzymes shape the virion glycome during interspecies transmission of Semliki Forest virus.
引用
收藏
页码:1702 / 1712
页数:11
相关论文
共 80 条
  • [1] Oligomerization-dependent folding of the membrane fusion protein of Semliki Forest virus
    Andersson, H
    Barth, BU
    Ekstrom, M
    Garoff, H
    [J]. JOURNAL OF VIROLOGY, 1997, 71 (12) : 9654 - 9663
  • [2] SEMLIKI FOREST VIRUS-INFECTION OF MICE - A MODEL FOR GENETIC AND MOLECULAR ANALYSIS OF VIRAL PATHOGENICITY
    ATKINS, GJ
    SHEAHAN, BJ
    DIMMOCK, NJ
    [J]. JOURNAL OF GENERAL VIROLOGY, 1985, 66 (MAR) : 395 - 408
  • [3] Therapeutic efficacy of potent neutralizing HIV-1-specific monoclonal antibodies in SHIV-infected rhesus monkeys
    Barouch, Dan H.
    Whitney, James B.
    Moldt, Brian
    Klein, Florian
    Oliveira, Thiago Y.
    Liu, Jinyan
    Stephenson, Kathryn E.
    Chang, Hui-Wen
    Shekhar, Karthik
    Gupta, Sanjana
    Nkolola, Joseph P.
    Seaman, Michael S.
    Smith, Kaitlin M.
    Borducchi, Erica N.
    Cabral, Crystal
    Smith, Jeffrey Y.
    Blackmore, Stephen
    Sanisetty, Srisowmya
    Perry, James R.
    Beck, Matthew
    Lewis, Mark G.
    Rinaldi, William
    Chakraborty, Arup K.
    Poignard, Pascal
    Nussenzweig, Michel C.
    Burton, Dennis R.
    [J]. NATURE, 2013, 503 (7475) : 224 - +
  • [4] The nucleocapsid-binding spike subunit E2 of Semliki Forest virus requires complex formation with the E1 subunit for activity
    Barth, BU
    Garoff, H
    [J]. JOURNAL OF VIROLOGY, 1997, 71 (10) : 7857 - 7865
  • [5] Prediction of post-translational glycosylation and phosphorylation of proteins from the amino acid sequence
    Blom, N
    Sicheritz-Pontén, T
    Gupta, R
    Gammeltoft, S
    Brunak, S
    [J]. PROTEOMICS, 2004, 4 (06) : 1633 - 1649
  • [6] The Glycan Shield of HIV Is Predominantly Oligomannose Independently of Production System or Viral Clade
    Bonomelli, Camille
    Doores, Katie J.
    Dunlop, D. Cameron
    Thaney, Victoria
    Dwek, Raymond A.
    Burton, Dennis R.
    Crispin, Max
    Scanlan, Christopher N.
    [J]. PLOS ONE, 2011, 6 (08):
  • [7] ION-EXCHANGE AND PURIFICATION OF CARBOHYDRATES ON A NAFION(R) MEMBRANE AS A NEW SAMPLE PRETREATMENT FOR MATRIX-ASSISTED LASER-DESORPTION IONIZATION MASS-SPECTROMETRY
    BORNSEN, KO
    MOHR, MD
    WIDMER, HM
    [J]. RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 1995, 9 (11) : 1031 - 1034
  • [8] Chemical and Structural Analysis of an Antibody Folding Intermediate Trapped during Glycan Biosynthesis
    Bowden, Thomas A.
    Baruah, Kavitha
    Coles, Charlotte H.
    Harvey, David J.
    Yu, Xiaojie
    Song, Byeong-Doo
    Stuart, David I.
    Aricescu, A. Radu
    Scanlan, Christopher N.
    Jones, E. Yvonne
    Crispin, Max
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2012, 134 (42) : 17554 - 17563
  • [9] Unusual Molecular Architecture of the Machupo Virus Attachment Glycoprotein
    Bowden, Thomas A.
    Crispin, Max
    Graham, Stephen C.
    Harvey, David J.
    Grimes, Jonathan M.
    Jones, E. Yvonne
    Stuart, David I.
    [J]. JOURNAL OF VIROLOGY, 2009, 83 (16) : 8259 - 8265
  • [10] Determining the structure of an unliganded and fully glycosylated SIV gp120 envelope glycoprotein
    Chen, B
    Vogan, EM
    Gong, HY
    Skehel, JJ
    Wiley, DC
    Harrison, SC
    [J]. STRUCTURE, 2005, 13 (02) : 197 - 211