共 62 条
A hydrogen-bonding triad stabilizes the chemical transition state of a group I ribozyme
被引:78
作者:
Strobel, SA
[1
]
Ortoleva-Donnelly, L
[1
]
机构:
[1] Yale Univ, Dept Mol Biophys & Biochem, New Haven, CT 06520 USA
来源:
CHEMISTRY & BIOLOGY
|
1999年
/
6卷
/
03期
关键词:
interference suppression;
nucleotide analog interference mapping;
phosphoryl transfer;
reaction mechanism;
sell-splicing intron;
D O I:
10.1016/S1074-5521(99)89007-3
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:
Background: The group I intron is an RNA enzyme capable of efficiently. catalyzing phosphoryl-transfer reactions. Functional groups that stabilize the chemical transition state of the cleavage reaction have been identified, but they are all located within either the 5'-exon (P1) helix or the guanosine cofactor, which are the substrates of the reaction. Functional groups within the ribozyme active site are also expected to assist in transition-state stabilization, and their role must be explored to understand the chemical basis of group I intron catalysis. Results: Using nucleotide analog interference mapping and site-specific functional group substitution experiments, we demonstrate that the 2'-OH at A207, a highly conserved nucleotide in the ribozyme active site, specifically stabilizes the chemical transition state by similar to 2 kcalmol(-1). The A207 2'-OH only makes its contribution when the U(-1) 2'-OH immediately adjacent to the scissile phosphate is present, suggesting that the 2'-OHs of A207 and U(-l) interact during the chemical step. Conclusions: These data support a model in which the 3'-oxyanion leaving group of the transesterification reaction is stabilized by a hydrogen-bonding triad consisting of the 2'-OH groups of U(-1) and A207 and the exocyclic amine of G22. Because ail three nucleotides occur within highly conserved non-canonical base pairings, this stabilization mechanism is likely to occur throughout group I introns. Although this mechanism utilizes functional groups distinctive of RNA enzymes, it is analogous to the transition states of some protein enzymes that perform similar phosphoryl-transfer reactions.
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页码:153 / 165
页数:13
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