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反义寡核苷酸诱导的RNA结构对大肠杆菌核糖核酸酶H1活性的影响。

The influence of antisense oligonucleotide-induced RNA structure on Escherichia coli RNase H1 activity.

作者信息

Lima W F, Mohan V, Crooke S T

机构信息

Isis Pharmaceuticals, Inc., Carlsbad, California 92008, USA.

出版信息

J Biol Chem. 1997 Jul 18;272(29):18191-9. doi: 10.1074/jbc.272.29.18191.

DOI:10.1074/jbc.272.29.18191
PMID:9218455
Abstract

The ability of Escherichia coli RNase H1 to hydrolyze structured substrates containing antisense oligonucleotides preannealed to a 47-mer RNA was compared with its ability to hydrolyze unstructured substrates containing antisense oligonucleotides duplexed with 13-mer RNA. These results demonstrate that when antisense oligonucleotides were bound to structured RNA, the resultant duplexes were cleaved at rates significantly slower than when the same oligonucleotides were bound to unstructured oligoribonucleotides. Structured substrates exhibited fewer cleavage sites, and each cleavage site was cleaved less rapidly than in unstructured substrates. Furthermore, the enzymatic activity of E. coli RNase H1 for the structured substrates was most affected when the cleavage sites corresponding to the enzymatically most active sites on the unstructured substrates were blocked in the structured substrates. Molecular modeling suggests that the observed ablation of RNase H activity was due to the steric hindrance of the enzyme by the structured RNA, i.e. steric interference of the phosphate groups on the substrate and/or the binding site of the enzyme. When chimeric oligonucleotides composed of a five-base deoxynucleotide sequence flanked by chemically modified nucleotides were bound to structured RNA, the resultant duplexes were even worse substrates for RNase H. These results offer further insights into the role of antisense-induced RNA structure on RNase H activity and may facilitate the design of effective antisense oligonucleotides.

摘要

将大肠杆菌核糖核酸酶H1水解含有与47聚体RNA预退火的反义寡核苷酸的结构化底物的能力,与其水解含有与13聚体RNA双链体的反义寡核苷酸的非结构化底物的能力进行了比较。这些结果表明,当反义寡核苷酸与结构化RNA结合时,所得双链体的切割速率明显低于相同寡核苷酸与非结构化寡核糖核苷酸结合时的切割速率。结构化底物表现出较少的切割位点,并且每个切割位点的切割速度都比非结构化底物中的慢。此外,当结构化底物中对应于非结构化底物上酶活性最高位点的切割位点被阻断时,大肠杆菌核糖核酸酶H1对结构化底物的酶活性受到的影响最大。分子模型表明,观察到的核糖核酸酶H活性的消除是由于结构化RNA对酶的空间位阻,即底物上磷酸基团和/或酶结合位点的空间干扰。当由化学修饰核苷酸侧翼的五碱基脱氧核苷酸序列组成的嵌合寡核苷酸与结构化RNA结合时,所得双链体对核糖核酸酶H来说甚至更差。这些结果为反义诱导的RNA结构对核糖核酸酶H活性的作用提供了进一步的见解,并可能有助于设计有效的反义寡核苷酸。

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