Structure and function of the radical enzyme ribonucleotide reductase

被引:270
作者
Eklund, H
Uhlin, U
Färnegårdh, M
Logan, DT
Nordlund, P
机构
[1] Swedish Univ Agr Sci, Uppsala Biomed Ctr, Dept Biol Mol, S-75124 Uppsala, Sweden
[2] Univ Stockholm, Dept Biochem, S-10691 Stockholm, Sweden
关键词
D O I
10.1016/S0079-6107(01)00014-1
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
Ribonucleotide reductases (RNRs) catalyze all new production in nature of deoxyribonucleotides for DNA synthesis by reducing the corresponding ribonucleotides. The reaction involves the action of a radical that is produced differently for different classes of the enzyme. Class I enzymes, which are present in eukaryotes and microorganisms, use an iron center to produce a stable tyrosyl radical that is stored in one of the subunits of the enzyme. The other classes are only present in microorganisms. Class II enzymes use cobalamin for radical generation and class III enzymes, which are found only in anaerobic organisms, use a glycyl radical. The reductase activity is in all three classes contained in enzyme subunits that have similar structures containing active site cysteines. The initiation of the reaction by removal of the 3'-hydrogen of the ribose by a transient cysteinyl radical is a common feature of the different classes of RNR. This cysteine is in all RNRs located on the tip of a finger loop inserted into the center of a special barrel structure. A wealth of structural and functional information on the class I and class III enzymes can now give detailed views on how these enzymes perform their task. The class I enzymes demonstrate a sophisticated pattern as to how the free radical is used in the reaction, in that it is only delivered to the active site at exactly the right moment. RNRs are also allosterically regulated, for which the structural molecular background is now starting to be revealed. (C) 2002 Elsevier Science Ltd. All rights reserved.
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页码:177 / 268
页数:92
相关论文
共 246 条
[1]   UNUSUAL CLUSTERING OF CARBOXYL SIDE-CHAINS IN THE CORE OF IRON-FREE RIBONUCLEOTIDE REDUCTASE [J].
ABERG, A ;
NORDLUND, P ;
EKLUND, H .
NATURE, 1993, 361 (6409) :276-278
[2]  
ABERG A, 1989, J BIOL CHEM, V264, P12249
[3]  
ABERG A, 1993, BIOCHEMISTRY-US, V32, P9845
[4]   Allosteric regulation of the class III anaerobic ribonucleotide reductase from bacteriophage T4 [J].
Andersson, J ;
Westman, M ;
Hofer, A ;
Sjöberg, BM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (26) :19443-19448
[5]   The crystal structure of an azide complex of the diferrous R2 subunit of ribonucleotide reductase displays a novel carboxylate shift with important mechanistic implications for diiron-catalyzed oxygen activation [J].
Andersson, ME ;
Högbom, M ;
Rinaldo-Matthis, A ;
Andersson, KK ;
Sjoberg, BM ;
Nordlund, P .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1999, 121 (11) :2346-2352
[6]  
ANDERSSON ME, 2000, THESIS STOCKHOLM U S
[7]   Mechanism based inactivation of the adenosylcobalamin-dependent ribonucleotide reductase from L-leichmannii by 2'-ara-2'-azido-2'-deoxy adenosine-5'-triphosphate: Observation of paramagnetic intermediates [J].
Ashley, GW ;
Lawrence, CC ;
Stubbe, J ;
Robins, MJ .
TETRAHEDRON, 1997, 53 (35) :12005-12016
[8]  
ATTA M, 1992, J BIOL CHEM, V267, P20682
[9]   EPR STUDIES OF MIXED-VALENT [(FEFEIII)-FE-II] CLUSTERS FORMED IN THE R2 SUBUNIT OF RIBONUCLEOTIDE REDUCTASE FROM MOUSE OR HERPES-SIMPLEX VIRUS - MILD CHEMICAL-REDUCTION OF THE DIFERRIC CENTERS [J].
ATTA, M ;
ANDERSSON, KK ;
INGEMARSON, R ;
THELANDER, L ;
GRASLUND, A .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1994, 116 (14) :6429-6430
[10]   RESONANCE RAMAN-SPECTROSCOPY OF RIBONUCLEOTIDE REDUCTASE - EVIDENCE FOR A DEPROTONATED TYROSYL RADICAL AND PHOTOCHEMISTRY OF THE BINUCLEAR IRON CENTER [J].
BACKES, G ;
SAHLIN, M ;
SJOBERG, BM ;
LOEHR, TM ;
SANDERSLOEHR, J .
BIOCHEMISTRY, 1989, 28 (04) :1923-1929