The Dynamical Nature of Enzymatic Catalysis

被引:113
作者
Callender, Robert [1 ]
Dyer, R. Brian [2 ]
机构
[1] Albert Einstein Coll Med, Dept Biochem, Bronx, NY 10461 USA
[2] Emory Univ, Dept Chem, Atlanta, GA 30322 USA
基金
美国国家卫生研究院;
关键词
LACTATE-DEHYDROGENASE; MICHAELIS COMPLEX; PROTEIN-STRUCTURE; ENZYMES; BINDING; HETEROGENEITY; SPECTROSCOPY; MOTIONS; RESIDUE; TIME;
D O I
10.1021/ar5002928
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
As is well-known, enzymes are proteins designed to accelerate specific life essential chemical reactions by many orders of magnitude. A folded protein is a highly dynamical entity, best described as a hierarchy or ensemble of interconverting conformations on all time scales from femtoseconds to minutes. We are just beginning to learn what role these dynamics play in the mechanism of chemical catalysis by enzymes due to extraordinary difficulties in characterizing the conformational space, that is, the energy landscape, of a folded protein. It seems clear now that their role is crucially important. Here we discuss approaches, based on vibrational spectroscopies of various sorts, that can reveal the energy landscape of an enzymesubstrate (Michaelis) complex and decipher which part of the typically very complicated landscape is relevant to catalysis. Vibrational spectroscopy is quite sensitive to small changes in bond order and bond length, with a resolution of 0.01 angstrom or less. It is this sensitivity that is crucial to its ability to discern bond reactivity. Using isotope edited IR approaches, we have studied in detail the role of conformational heterogeneity and dynamics in the catalysis of hydride transfer by LDH (lactate dehydrogenase). Upon the binding of substrate, the LDH.substrate system undergoes a search through conformational space to find a range of reactive conformations over the microsecond to millisecond time scale. The ligand is shuttled to the active site via first forming a weakly bound enzyme.ligand complex, probably consisting of several heterogeneous structures. This complex undergoes numerous conformational changes spread throughout the protein that shuttle the enzyme.substrate complex to a range of conformations where the substrate is tightly bound. This ensemble of conformations all have a propensity toward chemistry, but some are much more facile for carrying out chemistry than others. The search for these tightly bound states is clearly directed by the forces that the protein can bring to bear, very much akin to the folding process to form native protein in the first place. In fact, the conformational subspace of reactive conformations of the Michaelis complex can be described as a collapse of reactive substates compared with that found in solution, toward a much smaller and much more reactive set. These studies reveal how dynamic disorder in the protein structure can modulate the on-enzyme reactivity. It is very difficult to account for how the dynamical nature of the ground state of the Michaelis complex modulates function by transition state concepts since dynamical disorder is not a starting feature of the theory. We find that dynamical disorder may well play a larger or similar sized role in the measured Gibbs free energy of a reaction compared with the actual energy barrier involved in the chemical event. Our findings are broadly compatible with qualitative concepts of evolutionary adaptation of function such as adaptation to varying thermal environments. Our work suggests a methodology to determine the important dynamics of the Michaelis complex.
引用
收藏
页码:407 / 413
页数:7
相关论文
共 44 条
[1]  
Arrhenius S., 1889, Z. Phys. Chem, V4, DOI [DOI 10.1515/ZPCH-1889-0416, 10.1515/zpch-1889-0416]
[2]   The Moderately Efficient Enzyme: Evolutionary and Physicochemical Trends Shaping Enzyme Parameters [J].
Bar-Even, Arren ;
Noor, Elad ;
Savir, Yonatan ;
Liebermeister, Wolfram ;
Davidi, Dan ;
Tawfik, Dan S. ;
Milo, Ron .
BIOCHEMISTRY, 2011, 50 (21) :4402-4410
[3]   How enzyme dynamics helps catalyze a reaction in atomic detail: A transition path sampling study [J].
Basner, JE ;
Schwartz, SD .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (40) :13822-13831
[4]   ON THE ORIGIN OF THE LACTATE-DEHYDROGENASE INDUCED RATE EFFECT [J].
BURGNER, JW ;
RAY, WJ .
BIOCHEMISTRY, 1984, 23 (16) :3636-3648
[5]   NONRESONANCE RAMAN DIFFERENCE SPECTROSCOPY - A GENERAL PROBE OF PROTEIN-STRUCTURE, LIGAND-BINDING, ENZYMATIC CATALYSIS, AND THE STRUCTURES OF OTHER BIOMACROMOLECULES [J].
CALLENDER, R ;
DENG, H .
ANNUAL REVIEW OF BIOPHYSICS AND BIOMOLECULAR STRUCTURE, 1994, 23 :215-245
[6]   Advances in time-resolved approaches to characterize the dynamical nature of enzymatic catalysis [J].
Callender, Robert ;
Dyer, R. Brian .
CHEMICAL REVIEWS, 2006, 106 (08) :3031-3042
[7]   Vibrational structure of NAD(P) cofactors bound to three NAD(P) dependent enzymes: An investigation of ground state activation [J].
Chen, YQ ;
van Beek, J ;
Deng, H ;
Burgner, J ;
Callender, R .
JOURNAL OF PHYSICAL CHEMISTRY B, 2002, 106 (41) :10733-10740
[8]   Environmental effects on phosphoryl group bonding probed by vibrational spectroscopy: Implications for understanding phosphoryl transfer and enzymatic catalysis [J].
Cheng, H ;
Nikolic-Hughes, I ;
Wang, JHH ;
Deng, H ;
O'Brien, PJ ;
Wu, L ;
Zhang, ZY ;
Herschlag, D ;
Callender, R .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2002, 124 (38) :11295-11306
[9]   AN INVESTIGATION OF THE CONTRIBUTION MADE BY THE CARBOXYLATE GROUP OF AN ACTIVE-SITE HISTIDINE ASPARTATE COUPLE TO BINDING AND CATALYSIS IN LACTATE-DEHYDROGENASE [J].
CLARKE, AR ;
WILKS, HM ;
BARSTOW, DA ;
ATKINSON, T ;
CHIA, WN ;
HOLBROOK, JJ .
BIOCHEMISTRY, 1988, 27 (05) :1617-1622
[10]   SITE-DIRECTED MUTAGENESIS REVEALS ROLE OF MOBILE ARGININE RESIDUE IN LACTATE-DEHYDROGENASE CATALYSIS [J].
CLARKE, AR ;
WIGLEY, DB ;
CHIA, WN ;
BARSTOW, D ;
ATKINSON, T ;
HOLBROOK, JJ .
NATURE, 1986, 324 (6098) :699-702