Enzymes: An integrated view of structure, dynamics and function

被引:123
作者
Agarwal, PK [1 ]
机构
[1] Oak Ridge Natl Lab, Computat Biol Inst, Oak Ridge, TN 37831 USA
[2] Oak Ridge Natl Lab, Div Math & Comp Sci, Oak Ridge, TN 37831 USA
关键词
D O I
10.1186/1475-2859-5-2
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Microbes utilize enzymes to perform a variety of functions. Enzymes are biocatalysts working as highly efficient machines at the molecular level. In the past, enzymes have been viewed as static entities and their function has been explained on the basis of direct structural interactions between the enzyme and the substrate. A variety of experimental and computational techniques, however, continue to reveal that proteins are dynamically active machines, with various parts exhibiting internal motions at a wide range of time-scales. Increasing evidence also indicates that these internal protein motions play a role in promoting protein function such as enzyme catalysis. Moreover, the thermodynamical fluctuations of the solvent, surrounding the protein, have an impact on internal protein motions and, therefore, on enzyme function. In this review, we describe recent biochemical and theoretical investigations of internal protein dynamics linked to enzyme catalysis. In the enzyme cyclophilin A, investigations have lead to the discovery of a network of protein vibrations promoting catalysis. Cyclophilin A catalyzes peptidyl-prolyl cis/trans isomerization in a variety of peptide and protein substrates. Recent studies of cyclophilin A are discussed in detail and other enzymes ( dihydrofolate reductase and liver alcohol dehydrogenase) where similar discoveries have been reported are also briefly discussed. The detailed characterization of the discovered networks indicates that protein dynamics plays a role in rate-enhancement achieved by enzymes. An integrated view of enzyme structure, dynamics and function have wide implications in understanding allosteric and co-operative effects, as well as protein engineering of more efficient enzymes and novel drug design.
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页数:12
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共 70 条
[31]   Multiple conformational changes in enzyme catalysis [J].
Hammes, GG .
BIOCHEMISTRY, 2002, 41 (26) :8221-8228
[32]   CYCLOPHILIN - A SPECIFIC CYTOSOLIC BINDING-PROTEIN FOR CYCLOSPORIN-A [J].
HANDSCHUMACHER, RE ;
HARDING, MW ;
RICE, J ;
DRUGGE, RJ .
SCIENCE, 1984, 226 (4674) :544-547
[33]   Influence of multiple well defined conformations on small-angle scattering of proteins in solution [J].
Heller, WT .
ACTA CRYSTALLOGRAPHICA SECTION D-BIOLOGICAL CRYSTALLOGRAPHY, 2005, 61 :33-44
[34]   Ultrafast enzymatic reaction dynamics in protochlorophyllide oxidoreductase [J].
Derren J Heyes ;
C Neil Hunter ;
Ivo H M van Stokkum ;
Rienk van Grondelle ;
Marie Louise Groot .
Nature Structural & Molecular Biology, 2003, 10 (6) :491-492
[35]   Structural insights into the catalytic mechanism of cyclophilin A [J].
Bruce R Howard ;
Felix F Vajdos ;
Su Li ;
Wesley I Sundquist ;
Christopher P Hill .
Nature Structural & Molecular Biology, 2003, 10 (6) :475-481
[36]   ENZYME CATALYSIS - NOT DIFFERENT, JUST BETTER [J].
KNOWLES, JR .
NATURE, 1991, 350 (6314) :121-124
[37]   Kinetic isotope effects as probes for hydrogen tunneling, coupled motion and dynamics contributions to enzyme catalysis [J].
Kohen, A .
PROGRESS IN REACTION KINETICS AND MECHANISM, 2003, 28 (02) :119-156
[38]   HOW DO ENZYMES WORK [J].
KRAUT, J .
SCIENCE, 1988, 242 (4878) :533-540
[39]   THE WEIGHTED HISTOGRAM ANALYSIS METHOD FOR FREE-ENERGY CALCULATIONS ON BIOMOLECULES .1. THE METHOD [J].
KUMAR, S ;
BOUZIDA, D ;
SWENDSEN, RH ;
KOLLMAN, PA ;
ROSENBERG, JM .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1992, 13 (08) :1011-1021
[40]   EVALUATION OF THE CONFIGURATIONAL ENTROPY FOR PROTEINS - APPLICATION TO MOLECULAR-DYNAMICS SIMULATIONS OF AN ALPHA-HELIX [J].
LEVY, RM ;
KARPLUS, M ;
KUSHICK, J ;
PERAHIA, D .
MACROMOLECULES, 1984, 17 (07) :1370-1374