Chaperonin-mediated protein folding

被引:329
|
作者
Thirumalai, D [1 ]
Lorimer, GH [1 ]
机构
[1] Univ Maryland, Dept Chem & Biochem, Ctr Biomol Struct & Org, College Pk, MD 20742 USA
关键词
GroEL; GroES; iterative annealing; nested cooperativity; protein machines;
D O I
10.1146/annurev.biophys.30.1.245
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
Molecular chaperones are required to assist folding of a subset of proteins in Escherichia coli. We describe a conceptual framework for understanding how the GroEL-GroES system assists misfolded proteins to reach their native states. The architecture of GroEL consists of double toroids stacked back-to-back. However, most of the fundamentals of the GroEL action can be described in terms of the single ring. A key idea in our framework is that, with coordinated ATP hydrolysis and GroES binding, GroEL participates actively by repeatedly unfolding the substrate protein (SP), provided that it is trapped in one of the misfolded states. We conjecture that the unfolding of SP becomes possible because a stretching force is transmitted to the SP when the GroEL particle undergoes allosteric transitions. Force-induced unfolding of the SP puts it on a higher free-energy point in the multidimensional energy landscape from which the SP can either reach the native conformation with some probability or be trapped in one of the competing basins of attraction (i.e., the SP undergoes kinetic partitioning). The model shows, in a natural way, that the time scales in the dynamics of the allosteric transitions are intimately coupled to folding rates of the SP. Several scenarios for chaperonin-assisted folding emerge depending on the interplay of the time scales governing the cycle. Further refinement of this framework may be necessary because single molecule experiments indicate that there is a great dispersion in the time scales governing the dynamics of the chaperonin cycle.
引用
收藏
页码:245 / 269
页数:25
相关论文
共 50 条
  • [32] Effect of a mutation in yeast hsp10 on chaperonin-mediated protein folding in vitro
    Dubaquie, Y
    Looser, R
    Schatz, G
    Rospert, S
    PROTEIN ENGINEERING, 1997, 10 : 25 - 25
  • [33] CHAPERONIN-MEDIATED FOLDING OF VERTEBRATE ACTIN-RELATED PROTEIN AND GAMMA-TUBULIN
    MELKI, R
    VAINBERG, IE
    CHOW, RL
    COWAN, NJ
    JOURNAL OF CELL BIOLOGY, 1993, 122 (06): : 1301 - 1310
  • [34] A single ring is sufficient for productive chaperonin-mediated folding in vivo
    Nielsen, KL
    Cowan, NJ
    MOLECULAR CELL, 1998, 2 (01) : 93 - 99
  • [35] CHAPERONIN-MEDIATED PROTEIN FOLDING AT THE SURFACE OF GROEL THROUGH A MOLTEN GLOBULE-LIKE INTERMEDIATE
    MARTIN, J
    LANGER, T
    BOTEVA, R
    SCHRAMEL, A
    HORWICH, AL
    HARTL, FU
    NATURE, 1991, 352 (6330) : 36 - 42
  • [36] BINDING OF DEFINED REGIONS OF A POLYPEPTIDE TO GROEL AND ITS IMPLICATIONS FOR CHAPERONIN-MEDIATED PROTEIN-FOLDING
    HLODAN, R
    TEMPST, P
    HARTL, FU
    NATURE STRUCTURAL BIOLOGY, 1995, 2 (07): : 587 - 595
  • [37] Chloroplast Chaperonin-Mediated Targeting of a Thylakoid Membrane Protein
    Klasek, Laura
    Inoue, Kentaro
    Theg, Steven M.
    PLANT CELL, 2020, 32 (12): : 3884 - 3901
  • [38] Aggregation of creatine kinase during refolding and chaperonin-mediated folding of creatine kinase
    Li, S
    Bai, JH
    Park, YD
    Zhou, HM
    INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 2001, 33 (03): : 279 - 286
  • [39] Mutations in the G Protein (35 (3-Propeller Disrupt Its Chaperonin-Mediated Folding Trajectory
    Sass, Mikaila
    Mack, Deirdre
    Jones, Caelen
    Nickels, Riley
    Cottam, Samuel
    Shen, Peter
    JOURNAL OF PHARMACOLOGY AND EXPERIMENTAL THERAPEUTICS, 2025, 392 (03):
  • [40] Chaperonin-mediated de novo generation of prion protein aggregates
    Stöckel, J
    Hartl, FU
    JOURNAL OF MOLECULAR BIOLOGY, 2001, 313 (04) : 861 - 872