Homology modeling of the human microsomal glucose 6-phosphate transporter explains the mutations that cause the glycogen storage disease type Ib

被引:23
作者
Almqvist, J
Huang, YF
Hovmöller, S
Wang, DN
机构
[1] NYU, Sch Med, Skirball Inst Biomol Med, New York, NY 10016 USA
[2] NYU, Sch Med, Dept Cell Biol, New York, NY 10016 USA
[3] Stockholm Univ, Arrhenius Lab, Dept Struct Chem, S-10405 Stockholm, Sweden
关键词
D O I
10.1021/bi049334h
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Glycogen storage disease type Ib is caused by mutations in the glucose 6-phosphate transporter (G6PT) in the endoplasmic reticulum membrane in liver and kidney. Twenty-eight missense and two deletion mutations that cause the disease were previously shown to reduce or abolish the transporter's activity. However, the mechanisms by which these mutations impair transport remain unknown. On the basis of the recently determined crystal structure of its Escherichia coli homologue, the glycerol 3-phosphate transporter, we built a three-dimensional structural model of human G6PT by homology modeling. G6PT is proposed to consist of 12 transmembrane alpha-helices that are divided into N- and C-terminal domains, with the substrate-translocation pore located between the two domains and the substrate-binding site formed by R28 and K240 at the domain interface. The disease-causing mutations were found to occur at four types of positions: (I) in the substrate-translocation pore, (II) at the N-/C-terminal domain interface, (III) in the interior of the N- and C-terminal domains, and (IV) on the protein surface. Whereas class I mutations affect substrate binding directly, class II mutations, mostly involving changes in side chain size, charge, or both, hinder the conformational change required for substrate translocation. On the other hand, class III and class IV mutations, often introducing a charged residue into a helix bundle or at the protein-lipid interface, probably destabilize the protein. These results also suggest that G6PT operates by a similar antiport mechanism as its E. coli homologue, namely, the substrate binds at the N- and C-terminal domain interface and is then transported across the membrane via a rocker-switch type of movement of the two domains.
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页码:9289 / 9297
页数:9
相关论文
共 75 条
  • [31] Inactivation of the glucose 6-phosphate transporter causes glycogen storage disease type 1b
    Hiraiwa, H
    Pan, CJ
    Lin, BC
    Moses, SW
    Chou, JY
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (09) : 5532 - 5536
  • [32] Transporters of nucleotide sugars, ATP, and nucleotide sulfate in the endoplasmic reticulum and Golgi apparatus
    Hirschberg, CB
    Robbins, PW
    Abeijon, C
    [J]. ANNUAL REVIEW OF BIOCHEMISTRY, 1998, 67 : 49 - 69
  • [33] HOFMANN K, 1993, BIOL CHEM HOPPESEYLE, V347, P166
  • [34] Hruz PW, 2001, MOL MEMBR BIOL, V18, P183
  • [35] Structure and mechanism of the glycerol-3-phosphate transporter from Escherichia coli
    Huang, YF
    Lemieux, MJ
    Song, JM
    Auer, M
    Wang, DN
    [J]. SCIENCE, 2003, 301 (5633) : 616 - 620
  • [36] Molecular genetics of type 1 glycogen storage disease
    Janecke, AR
    Mayatepek, E
    Utermann, G
    [J]. MOLECULAR GENETICS AND METABOLISM, 2001, 73 (02) : 117 - 125
  • [37] THE CONSERVED MOTIF, GXXX(D/E)(R/K)XG[X](R/K)(R/K), IN HYDROPHILIC LOOP-2/3 OF THE LACTOSE PERMEASE
    JESSENMARSHALL, AE
    PAUL, NJ
    BROOKER, RJ
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (27) : 16251 - 16257
  • [38] A MODEL RECOGNITION APPROACH TO THE PREDICTION OF ALL-HELICAL MEMBRANE-PROTEIN STRUCTURE AND TOPOLOGY
    JONES, DT
    TAYLOR, WR
    THORTON, JM
    [J]. BIOCHEMISTRY, 1994, 33 (10) : 3038 - 3049
  • [39] DETECTION, DELINEATION, MEASUREMENT AND DISPLAY OF CAVITIES IN MACROMOLECULAR STRUCTURES
    KLEYWEGT, GJ
    JONES, TA
    [J]. ACTA CRYSTALLOGRAPHICA SECTION D-BIOLOGICAL CRYSTALLOGRAPHY, 1994, 50 : 178 - 185
  • [40] Predicting transmembrane protein topology with a hidden Markov model: Application to complete genomes
    Krogh, A
    Larsson, B
    von Heijne, G
    Sonnhammer, ELL
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 2001, 305 (03) : 567 - 580