Defining the catalytic metal ion interactions in the Tetrahymena ribozyme reaction

被引:119
作者
Shan, S
Kravchuk, AV
Piccirilli, JA [1 ]
Herschlag, D
机构
[1] Stanford Univ, Beckman Ctr B400, Dept Biochem, Stanford, CA 94305 USA
[2] Univ Chicago, Dept Biochem & Mol Biol, Chicago, IL 60637 USA
[3] Univ Chicago, Dept Chem, Chicago, IL 60637 USA
关键词
D O I
10.1021/bi002887h
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
Bivalent metal ions playa crucial role in catalysis by many RNA and protein enzymes that carry out phosphoryl transfer reactions, and defining their interactions with substrates is critical for understanding the mechanism of biological phosphoryl transfer. Although a vast amount of structural work has identified metal ions bound at the active site of many phosphoryl transfer enzymes, the number of functional metal ions and the full complement of their catalytic interactions remain to be defined for any RNA or protein enzyme. Previously, thiophilic metal ion rescue and quantitative functional analyses identified the interactions of three active site metal ions with the 3'- and 2'-substrate atoms of the Tetrahymena group I ribozyme. We have now extended these approaches to probe the metal ion interactions with the nonbridging pro-Sp oxygen of the reactive phosphoryl group. The results of this study combined with previous mechanistic work provide evidence for a novel assembly of catalytic interactions involving three active site metal ions. One metal ion coordinates the 3'-departing oxygen of the oligonucleotide substrate and the pro-Sp oxygen of the reactive phosphoryl group; another metal ion coordinates the attacking 3'-oxygen of the guanosine nucleophile; a third metal ion bridges the 2'-hydroxyl of guanosine and the pro-Sp oxygen of the reactive phosphoryl group. These results fur the first time define a complete set of catalytic metal ion/substrate interactions for an RNA or protein enzyme catalyzing phosphoryl transfer.
引用
收藏
页码:5161 / 5171
页数:11
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[1]   STRUCTURE OF THE P1 HELIX FROM GROUP-I SELF-SPLICING INTRONS [J].
ALLAIN, FHT ;
VARANI, G .
JOURNAL OF MOLECULAR BIOLOGY, 1995, 250 (03) :333-353
[2]   Magnesium ions are required by Bacillus subtilis ribonuclease P RNA for both binding and cleaving precursor tRNA(Asp) [J].
Beebe, JA ;
Kurz, JC ;
Fierke, CA .
BIOCHEMISTRY, 1996, 35 (32) :10493-10505
[3]   DYNAMICS OF RIBOZYME BINDING OF SUBSTRATE REVEALED BY FLUORESCENCE-DETECTED STOPPED-FLOW METHODS [J].
BEVILACQUA, PC ;
KIERZEK, R ;
JOHNSON, KA ;
TURNER, DH .
SCIENCE, 1992, 258 (5086) :1355-1357
[4]   STRUCTURAL STUDIES OF METAL-BINDING BY INOSITOL MONOPHOSPHATASE - EVIDENCE FOR 2-METAL ION CATALYSIS [J].
BONE, R ;
FRANK, L ;
SPRINGER, JP ;
ATACK, JR .
BIOCHEMISTRY, 1994, 33 (32) :9468-9476
[5]  
BURGERS PMJ, 1979, J BIOL CHEM, V254, P6889
[6]   The crystal structure of a class II fructose-1,6-bisphosphate aldolase shows a novel binuclear metal-binding active site embedded in a familiar fold [J].
Cooper, SJ ;
Leonard, GA ;
McSweeney, SM ;
Thompson, AW ;
Naismith, JH ;
Qamar, S ;
Plater, A ;
Berry, A ;
Hunter, WN .
STRUCTURE, 1996, 4 (11) :1303-1315
[7]   Metal-mediated hydrolysis of biological phosphate esters - A critical analysis of the essential metal ion stoichiometry for magnesium-dependent nuclease activation [J].
Cowan, JA .
JOURNAL OF BIOLOGICAL INORGANIC CHEMISTRY, 1997, 2 (02) :168-176
[8]   Manganese enzymes with binuclear active sites [J].
Dismukes, GC .
CHEMICAL REVIEWS, 1996, 96 (07) :2909-2926
[9]   Does the restriction endonuclease EcoRV employ a two-metal-ion mechanism for DNA cleavage? [J].
Groll, DH ;
Jeltsch, A ;
Selent, U ;
Pingoud, A .
BIOCHEMISTRY, 1997, 36 (38) :11389-11401
[10]   The structural basis for pyrophosphatase catalysis [J].
Heikinheimo, P ;
Lehtonen, J ;
Baykov, A ;
Lahti, R ;
Cooperman, BS ;
Goldman, A .
STRUCTURE, 1996, 4 (12) :1491-1508