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通过酶促和化学探针研究大肠杆菌信号识别颗粒中4.5S RNA的结构

Structure of 4.5S RNA in the signal recognition particle of Escherichia coli as studied by enzymatic and chemical probing.

作者信息

Lentzen G, Moine H, Ehresmann C, Ehresmann B, Wintermeyer W

机构信息

Institut für Molekularbiologie, Universität Witten/Herdecke, Germany

出版信息

RNA. 1996 Mar;2(3):244-53.

PMID:8608448
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1369367/
Abstract

The structure of 4.5S RNA, the Escherichia coli homologue of the signal recognition particle (SRP) RNA, alone and in the SRP complex with protein P48 (Ffh) was probed both enzymatically and chemically. The molecule is largely resistant against single strand-specific nucleases, indicating a highly base paired structure. Reactivity appears mainly in the apical tetraloop and in one of the conserved internal loops. Although some residues are found reactive toward dimethylsulphate and kethoxal in regions predicted to be unpaired by the phylogenetic secondary structure model of 4.5S RNA, generally the reactivity is low, and some residues in internal loops are not reactive at all. RNase V1 cleaves the RNA at multiple sites that coincide with predicted helices, although the cleavages show a pronounced asymmetry. The binding of protein P48 to 4.5S RNA results in a protection of residues in the apical part of the molecule homologous to eukaryotic SRP RNA (domain IV), whereas the cleavages in the conserved apical tetraloop are not protected. Hydroxyl radical treatment reveals an asymmetric pattern of backbone reactivity; in particular, the region encompassing nucleotides 60-82, i.e., the 3' part of the conserved domain IV, is protected. The data suggest that a bend in the domain IV region, most likely at the central asymmetric internal loop, is an important element of the tertiary structure of 4.5S RNA. Hyperchromicity and lead cleavage data are consistent with the model as they reveal the unfolding of a higher-order structure between 30 and 40 degrees C. Protection by protein P48 occurs in this region of the RNA and, more strongly, in the 5' part of domain IV (nt 26-50, most strongly from 35 to 49). It is likely that P48 binds to the outside of the bent form of 4.5S RNA.

摘要

对4.5S RNA(大肠杆菌中信号识别颗粒(SRP)RNA的同源物)单独以及与蛋白质P48(Ffh)形成的SRP复合物的结构进行了酶促和化学探测。该分子对单链特异性核酸酶具有很大抗性,表明其具有高度碱基配对结构。反应活性主要出现在顶端四环和一个保守的内部环中。尽管在4.5S RNA系统发育二级结构模型预测为未配对的区域中发现一些残基对硫酸二甲酯和乙二醛有反应,但总体反应活性较低,并且内部环中的一些残基根本没有反应活性。核糖核酸酶V1在多个与预测螺旋重合的位点切割RNA,尽管切割显示出明显的不对称性。蛋白质P48与4.5S RNA的结合导致分子顶端部分与真核SRP RNA(结构域IV)同源的残基受到保护,而保守顶端四环中的切割不受保护。羟基自由基处理揭示了主链反应活性的不对称模式;特别是,包含核苷酸60 - 82的区域,即保守结构域IV的3'部分受到保护。数据表明,结构域IV区域的弯曲,很可能在中央不对称内部环处,是4.5S RNA三级结构的一个重要元件。增色效应和铅切割数据与该模型一致,因为它们揭示了在30至40摄氏度之间高阶结构的展开。蛋白质P48在RNA的该区域以及更强烈地在结构域IV的5'部分(核苷酸26 - 50,最强烈的是35至49)提供保护。很可能P48结合到4.5S RNA弯曲形式的外部。

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本文引用的文献

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A complex of the signal sequence binding protein and the SRP RNA promotes translocation of nascent proteins.信号序列结合蛋白与信号识别颗粒RNA的复合物促进新生蛋白质的转运。
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The signal recognition particle database (SRPDB).信号识别颗粒数据库(SRPDB)。
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Molecular evolution of SRP cycle components: functional implications.信号识别颗粒(SRP)循环组件的分子进化:功能意义
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