Structure and function in GroEL-mediated protein folding

被引:462
作者
Sigler, PB [1 ]
Xu, ZH
Rye, HS
Burston, SG
Fenton, WA
Horwich, AL
机构
[1] Yale Univ, Sch Med, Dept Mol Biophys & Biochem, New Haven, CT 06510 USA
[2] Yale Univ, Sch Med, Howard Hughes Med Inst, New Haven, CT 06510 USA
[3] Yale Univ, Sch Med, Dept Genet, New Haven, CT 06510 USA
关键词
ATP; chaperonin; GroES; Hsp60;
D O I
10.1146/annurev.biochem.67.1.581
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
Recent structural and biochemical investigations have come together to allow a better understanding of the mechanism of chaperonin (GroEL, Hsp60)-mediated protein folding, the final step in the accurate expression of genetic information. Major, asymmetric conformational changes in the GroEL double toroid accompany binding of ATP and the cochaperonin GroES. When a nonnative polypeptide, bound to one of the GroEL rings, is encapsulated by GroES to form a cis ternary complex, these changes drive the polypeptide into the sequestered cavity and initiate its folding. ATP hydrolysis in the cis ring primes release of the products, and ATP binding in the trans ring then disrupts the cis complex. This process allows the polypeptide to achieve its final native state, if folding was completed, or to recycle to another chaperonin molecule, if the folding process did not result in a form committed to the native state.
引用
收藏
页码:581 / 608
页数:34
相关论文
共 84 条
  • [31] PROTEIN FOLDING IN THE CELL - FUNCTIONS OF 2 FAMILIES OF MOLECULAR CHAPERONE, HSP 60 AND TF55-TCP1
    HORWICH, AL
    WILLISON, KR
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 1993, 339 (1289) : 313 - 326
  • [32] Structural adaptations in the specialized bacteriophage T4 co-chaperonin Gp31 expand the size of the Anfinsen cage
    Hunt, JF
    vanderVies, SM
    Henry, L
    Deisenhofer, J
    [J]. CELL, 1997, 90 (02) : 361 - 371
  • [33] The crystal structure of the GroES co-chaperonin at 2.8 angstrom resolution
    Hunt, JF
    Weaver, AJ
    Landry, SJ
    Gierasch, L
    Deisenhofer, J
    [J]. NATURE, 1996, 379 (6560) : 37 - 45
  • [34] STRUCTURE OF HOLO-CHAPERONIN STUDIED WITH ELECTRON-MICROSCOPY - OLIGOMERIC CPN 10 ON TOP OF 2 LAYERS OF CPN60 RINGS WITH 2 STRIPES EACH
    ISHII, N
    TAGUCHI, H
    SUMI, M
    YOSHIDA, M
    [J]. FEBS LETTERS, 1992, 299 (02) : 169 - 174
  • [35] NATURE AND CONSEQUENCES OF GROEL-PROTEIN INTERACTIONS
    ITZHAKI, LS
    OTZEN, DE
    FERSHT, AR
    [J]. BIOCHEMISTRY, 1995, 34 (44) : 14581 - 14587
  • [36] BINDING AND HYDROLYSIS OF NUCLEOTIDES IN THE CHAPERONIN CATALYTIC CYCLE - IMPLICATIONS FOR THE MECHANISM OF ASSISTED PROTEIN FOLDING
    JACKSON, GS
    STANIFORTH, RA
    HALSALL, DJ
    ATKINSON, T
    HOLBROOK, JJ
    CLARKE, AR
    BURSTON, SG
    [J]. BIOCHEMISTRY, 1993, 32 (10) : 2554 - 2563
  • [37] Dominant forces in the recognition of a transient folding intermediate of alpha-lactalbumin by GroEL
    Katsumata, K
    Okazaki, A
    Tsurupa, GP
    Kuwajima, K
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 1996, 264 (04) : 643 - 649
  • [38] CYSTOSOLIC CHAPERONIN SUBUNITS HAVE A CONSERVED ATPASE DOMAIN BUT DIVERGED POLYPEPTIDE-BINDING DOMAINS
    KIM, S
    WILLISON, KR
    HORWICH, AL
    [J]. TRENDS IN BIOCHEMICAL SCIENCES, 1994, 19 (12) : 543 - 548
  • [39] Structure of the substrate binding domain of the thermosome, an archaeal group II chaperonin
    Klumpp, M
    Baumeister, W
    Essen, LO
    [J]. CELL, 1997, 91 (02) : 263 - 270
  • [40] IDENTIFICATION OF 6 TCP-1-RELATED GENES ENCODING DIVERGENT SUBUNITS OF THE TCP-1-CONTAINING CHAPERONIN
    KUBOTA, H
    HYNES, G
    CARNE, A
    ASHWORTH, A
    WILLISON, K
    [J]. CURRENT BIOLOGY, 1994, 4 (02) : 89 - 99