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细菌核糖核酸酶P RNA介导切割中诱导契合的证据。

Evidence for induced fit in bacterial RNase P RNA-mediated cleavage.

作者信息

Brännvall Mathias, Kikovska Ema, Wu Shiying, Kirsebom Leif A

机构信息

Department of Cell and Molecular Biology, Box 596, Biomedical Centre, SE-751 24 Uppsala, Sweden.

出版信息

J Mol Biol. 2007 Oct 5;372(5):1149-64. doi: 10.1016/j.jmb.2007.07.030. Epub 2007 Jul 29.

Abstract

RNase P with its catalytic RNA subunit is involved in the processing of a number of RNA precursors with different structures. However, precursor tRNAs are the most abundant substrates for RNase P. Available data suggest that a tRNA is folded into its characteristic structure already at the precursor state and that RNase P recognizes this structure. The tRNA D-/T-loop domain (TSL-region) is suggested to interact with the specificity domain of RNase P RNA while residues in the catalytic domain interact with the cleavage site. Here, we have studied the consequences of a productive interaction between the TSL-region and its binding site (TBS) in the specificity domain using tRNA precursors and various hairpin-loop model substrates. The different substrates were analyzed with respect to cleavage site recognition, ground-state binding, cleavage as a function of the concentration of Mg(2+) and the rate of cleavage under conditions where chemistry is suggested to be rate limiting using wild-type Escherichia coli RNase P RNA, M1 RNA, and M1 RNA variants with structural changes in the TBS-region. On the basis of our data, we conclude that a productive TSL/TBS interaction results in a conformational change in the M1 RNA substrate complex that has an effect on catalysis. Moreover, it is likely that this conformational change comprises positioning of chemical groups (and Mg(2+)) at and in the vicinity of the cleavage site. Hence, our findings are consistent with an induced-fit mechanism in RNase P RNA-mediated cleavage.

摘要

核糖核酸酶P及其催化性RNA亚基参与多种具有不同结构的RNA前体的加工过程。然而,前体tRNA是核糖核酸酶P最丰富的底物。现有数据表明,tRNA在前体状态时就已折叠成其特征性结构,且核糖核酸酶P能识别这种结构。有人提出,tRNA的D环/T环结构域(TSL区域)与核糖核酸酶P RNA的特异性结构域相互作用,而催化结构域中的残基与切割位点相互作用。在此,我们使用tRNA前体和各种发夹环模型底物,研究了TSL区域与其在特异性结构域中的结合位点(TBS)之间有效相互作用的后果。使用野生型大肠杆菌核糖核酸酶P RNA、M1 RNA以及TBS区域有结构变化的M1 RNA变体,针对切割位点识别、基态结合、作为Mg(2+)浓度函数的切割以及在化学过程被认为是限速条件下的切割速率,对不同底物进行了分析。基于我们的数据,我们得出结论,TSL/TBS的有效相互作用会导致M1 RNA底物复合物发生构象变化,从而影响催化作用。此外,这种构象变化很可能包括化学基团(和Mg(2+))在切割位点及其附近的定位。因此,我们的研究结果与核糖核酸酶P RNA介导切割中的诱导契合机制一致。

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