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核糖核酸酶P RNA与其底物之间碱基配对的系统发育比较突变分析。

Phylogenetic comparative mutational analysis of the base-pairing between RNase P RNA and its substrate.

作者信息

Svärd S G, Kagardt U, Kirsebom L A

机构信息

Department of Microbiology, Biomedical Center, Uppsala, Sweden.

出版信息

RNA. 1996 May;2(5):463-72.

Abstract

We have studied the base-pairing between the 3'-terminal CCA motif of a tRNA precursor and RNase P RNA by a phylogenetic mutational comparative approach. Thus, various derivatives of the Escherichia coli tRNA(Ser)Su1 precursor harboring all possible substitutions at either the first or the second C of the 3'-terminal CCA motif were generated. Cleavage site selection on these precursors was studied using mutant variants of M1 RNA, the catalytic subunit of E. coli RNase P, carrying changes at positions 292 or 293, which are involved in the interaction with the 3'-terminal CCA motif. From our data we conclude that these two C's in the substrate interact with the well-conserved G292 and G293 through canonical Watson-Crick base-pairing. Cleavage performed using reconstituted holoenzyme complexes suggests that this interaction also occurs in the presence of the C5 protein. Furthermore, we studied the interaction using various derivatives of RNase P RNAs from Mycoplasma hyopneumoniae and Mycobacterium tuberculosis. Our results suggest that the base-pairing between the 3'-terminal CCA motif and RNase P is present also in other bacterial RNase P-substrate complexes and is not limited to a particular bacterial species.

摘要

我们通过系统发育突变比较方法研究了tRNA前体3'-末端CCA基序与核糖核酸酶P RNA之间的碱基配对。因此,构建了大肠杆菌tRNA(Ser)Su1前体的各种衍生物,这些衍生物在3'-末端CCA基序的第一个或第二个C处具有所有可能的取代。使用M1 RNA(大肠杆菌核糖核酸酶P的催化亚基)的突变变体研究了这些前体上的切割位点选择,这些变体在与3'-末端CCA基序相互作用的第292或293位发生了变化。从我们的数据中可以得出结论,底物中的这两个C通过经典的沃森-克里克碱基配对与保守性良好的G292和G293相互作用。使用重组全酶复合物进行的切割表明,在C5蛋白存在的情况下也会发生这种相互作用。此外,我们使用猪肺炎支原体和结核分枝杆菌的核糖核酸酶P RNA的各种衍生物研究了这种相互作用。我们的结果表明,3'-末端CCA基序与核糖核酸酶P之间的碱基配对也存在于其他细菌核糖核酸酶P-底物复合物中,并不局限于特定的细菌物种。

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