Crystal structure of the Rac1-RhoGDI complex involved in NADPH oxidase activation

被引:110
作者
Grizot, S
Fauré, J
Fieschi, F
Vignais, PV
Dagher, MC
Pebay-Peyroula, E
机构
[1] UJF, Lab BBSI, CNRS,Dept Biol Mol & Struct, CEA Grenoble,UMR 5092, F-38054 Grenoble 9, France
[2] UJF, Inst Biol Struct, CEA, CNRS,UMR 5075, F-38027 Grenoble 1, France
关键词
D O I
10.1021/bi010288k
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
A heterodimer of prenylated Rac1 and Rho GDP dissociation inhibitor was purified and found to be competent in NADPH oxidase activation. Small angle neutron scattering experiments confirmed a 1:1 stoichiometry. The crystal structure of the Rac1-RhoGDI complex was determined at 2.7 A resolution. In this complex in which Racl is bound to GDP, the switch I region of Racl is in the GDP conformation whereas the switch II region resembles that of a GTP-bound GTPase. Two types of interaction between RhoGTPases and RhoGDI were investigated. The lipid-protein interaction between the geranylgeranyl moiety of Racl and RhoGDI resulted in numerous structural changes in the core of RhoGDI. The interactions between Racl and RhoGDI occur through hydrogen bonds which involve a number of residues of Racl, namely, Tyr64(Rac), Arg66(Rac), His103(Rac) and His104(Rac), conserved within the Rho family and localized in the switch II region or in its close neighborhood. Moreover, in the switch II region of Racl, hydrophobic interactions involving Leu67(Rac) and Leu70(Rac) contribute to the stability of the Rac1-RhoGDI complex. Inhibition of the GDP-GTP exchange in Racl upon binding to RhoGDI partly results from interaction of Thr35(Rac) with Asp45(GDI). In the Rac1-RhoGDI complex, the accessibility of the effector loops of Racl probably accounts for the ability of the Racl-RhoGDI complex to activate the NADPH oxidase.
引用
收藏
页码:10007 / 10013
页数:7
相关论文
共 51 条
  • [21] The crystal structure of human rac1, a member of the rho-family complexed with a GTP analogue
    Hirshberg, M
    Stockley, RW
    Dodson, G
    Webb, MR
    [J]. NATURE STRUCTURAL BIOLOGY, 1997, 4 (02) : 147 - 152
  • [22] Structure of the Rho family GTP-binding protein Cdc42 in complex with the multifunctional regulator RhoGDI
    Hoffman, GR
    Nassar, N
    Cerione, RA
    [J]. CELL, 2000, 100 (03) : 345 - 356
  • [23] Crystal structure of human RhoA in a dominantly active form complexed with a GTP analogue
    Ihara, K
    Muraguchi, S
    Kato, M
    Shimizu, T
    Shirakawa, M
    Kuroda, S
    Kaibuchi, K
    Hakoshima, T
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (16) : 9656 - 9666
  • [24] Stimulation of phospholipase C-β2 by the rho GTPases Cdc42Hs and Rac1
    Illenberger, D
    Schwald, F
    Pimmer, D
    Binder, W
    Maier, G
    Dietrich, A
    Gierschik, P
    [J]. EMBO JOURNAL, 1998, 17 (21) : 6241 - 6249
  • [25] IMPROVED METHODS FOR BUILDING PROTEIN MODELS IN ELECTRON-DENSITY MAPS AND THE LOCATION OF ERRORS IN THESE MODELS
    JONES, TA
    ZOU, JY
    COWAN, SW
    KJELDGAARD, M
    [J]. ACTA CRYSTALLOGRAPHICA SECTION A, 1991, 47 : 110 - 119
  • [26] A modulator of rho family G proteins, rhoGDI, binds these G proteins via an immunoglobulin-like domain and a flexible N-terminal arm
    Keep, NH
    Barnes, M
    Barsukov, I
    Badii, R
    Lian, LY
    Segal, AW
    Moody, PCE
    Roberts, GCK
    [J]. STRUCTURE, 1997, 5 (05) : 623 - 633
  • [27] KNAUS UG, 1992, J BIOL CHEM, V267, P23575
  • [28] MOLSCRIPT - A PROGRAM TO PRODUCE BOTH DETAILED AND SCHEMATIC PLOTS OF PROTEIN STRUCTURES
    KRAULIS, PJ
    [J]. JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1991, 24 : 946 - 950
  • [29] Cleavage and nuclear translocation of the caspase 3 substrate Rho GDP-dissociation inhibitor, D4-GDI, during apoptosis
    Krieser, RJ
    Eastman, A
    [J]. CELL DEATH AND DIFFERENTIATION, 1999, 6 (05) : 412 - 419
  • [30] CHARACTERIZATION OF THE EFFECTOR-SPECIFYING DOMAIN OF RAC INVOLVED IN NADPH OXIDASE ACTIVATION
    KWONG, CH
    ADAMS, AG
    LETO, TL
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (34) : 19868 - 19872