Molecular mechanisms of chaperonin GroEL-GroES function

被引:133
作者
Keskin, O
Bahar, I
Flatow, D
Covell, DG
Jernigan, RL
机构
[1] Univ Pittsburgh, Sch Med, Ctr Computat Biol & Bioinformat, Pittsburgh, PA 15213 USA
[2] Univ Pittsburgh, Sch Med, Dept Mol Genet & Biochem, Pittsburgh, PA 15213 USA
[3] NCI, Mol Struct Sect, Lab Expt & Computat Biol, Ctr Canc Res,NIH, Bethesda, MD 20892 USA
[4] NCI, Computat Technol Lab, Screening Technol Branch, Dev Therapeut Program,NIH, Frederick, MD 21702 USA
关键词
D O I
10.1021/bi011393x
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
The dynamics of the GroEL-GroES complex is investigated with a coarse-grained model. This model is one in which single-residue points are connected to other such points, which are nearby, by identical springs, forming a network of interactions. The nature of the most important (slowest) normal modes reveals a wide variety of motions uniquely dependent upon the central cavity of the structure, including opposed torsional rotation of the two GroEL rings accompanied by the alternating compression and expansion of the GroES cap binding region, bending, shear, opposed radial breathing of the cis and trans rings, and stretching and contraction along the protein assembly's long axis. The intermediate domains of the subunits are bifunctional due to the presence of two hinges, which are alternatively activated or frozen by an ATP-dependent mechanism. ATP binding stabilizes a relatively open conformation (with respect to the central cavity) and hinders the motion of the hinge site connecting the intermediate and equatorial domains, while enhancing the flexibility of the second hinge that sets in motion the apical domains. The relative flexibilities of the hinges are reversed in the nucleotide-free form. Cooperative cross-correlations between subunits provide information about the mechanism of action of the protein. The mechanical motions driven by the different modes provide variable binding surfaces and variable sized cavities in the interior to enable accommodation of a broad range of protein substrates. These modes of motion could be used to manipulate the substrate's conformations.
引用
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页码:491 / 501
页数:11
相关论文
共 56 条
[1]   ESSENTIAL DYNAMICS OF PROTEINS [J].
AMADEI, A ;
LINSSEN, ABM ;
BERENDSEN, HJC .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1993, 17 (04) :412-425
[2]   Anisotropy of fluctuation dynamics of proteins with an elastic network model [J].
Atilgan, AR ;
Durell, SR ;
Jernigan, RL ;
Demirel, MC ;
Keskin, O ;
Bahar, I .
BIOPHYSICAL JOURNAL, 2001, 80 (01) :505-515
[3]   Collective motions in HIV-1 reverse transcriptase: Examination of flexibility and enzyme function [J].
Bahar, I ;
Erman, B ;
Jernigan, RL ;
Atilgan, AR ;
Covell, DG .
JOURNAL OF MOLECULAR BIOLOGY, 1999, 285 (03) :1023-1037
[4]   Direct evaluation of thermal fluctuations in proteins using a single-parameter harmonic potential [J].
Bahar, I ;
Atilgan, AR ;
Erman, B .
FOLDING & DESIGN, 1997, 2 (03) :173-181
[5]   Collective protein dynamics in relation to function [J].
Berendsen, HJC ;
Hayward, S .
CURRENT OPINION IN STRUCTURAL BIOLOGY, 2000, 10 (02) :165-169
[6]   Exploring the kinetic requirements for enhancement of protein folding rates in the GroEL cavity [J].
Betancourt, MR ;
Thirumalai, D .
JOURNAL OF MOLECULAR BIOLOGY, 1999, 287 (03) :627-644
[7]   THE CRYSTAL-STRUCTURE OF THE BACTERIAL CHAPERONIN GROEL AT 2.8-ANGSTROM [J].
BRAIG, K ;
OTWINOWSKI, Z ;
HEGDE, R ;
BOISVERT, DC ;
JOACHIMIAK, A ;
HORWICH, AL ;
SIGLER, PB .
NATURE, 1994, 371 (6498) :578-586
[8]  
Brocchieri L, 2000, PROTEIN SCI, V9, P476
[9]   A structural model for GroEL-polypeptide recognition [J].
Buckle, AM ;
Zahn, R ;
Fersht, AR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (08) :3571-3575
[10]   NORMAL-MODE ANALYSIS OF PROTEIN DYNAMICS [J].
CASE, DA .
CURRENT OPINION IN STRUCTURAL BIOLOGY, 1994, 4 (02) :285-290