首页> 外文OA文献 >Primary and secondary structures of Escherichia coli MRE 600 23S ribosomal RNA. Comparison with models of secondary structure for maize chloroplast 23S rRNA and for large portions of mouse and human 16S mitochondrial rRNAs
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Primary and secondary structures of Escherichia coli MRE 600 23S ribosomal RNA. Comparison with models of secondary structure for maize chloroplast 23S rRNA and for large portions of mouse and human 16S mitochondrial rRNAs

机译:大肠杆菌MRE 600 23S核糖体RNA的一级和二级结构。与玉米叶绿体23S rRNA以及大部分小鼠和人类16S线粒体rRNA二级结构模型的比较

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摘要

We determined 90% of the primary structure of E.coli MRE 600 23S rRNA by applying the sequencing gel technique to products of T1, S1, A and Naja oxiana nuclease digestion. Eight cistron heterogeneities were detected, as well as 16 differences with the published sequence of a 23S rRNA gene of an E.coli K12 strain. The positions of 13 post-transcriptionally modified nucleotides and of single-stranded, double-stranded and subunit surface regions of E.coli 23S rRNA were identified. Using these experimental results and by comparing the sequences of E.coli 23S rRNA, maize chloro. 23S rRNA and mouse and human mit 16S rRNAs, we built models of secondary structure for the two 23S rRNAs and for large portions of the two mit rRNAs. The structures proposed for maize chloroplast and E.coli 23S rRNAs are very similar, consisting of 7 domains closed by long-range base-pairings. In the mitochondrial 16S rRNAs, 3 of these domains are strongly reduced in size and have a very different primary structure compared to those of the 23S rRNAs. These domains were previously found to constitute a compact area in the E.coli 50S subunits. The conserved domains do not belong to this area and contain almost all the modified nucleotides. The most highly conserved domain, 2042-2625, is probably part of the ribosomal A site. Finally, our study strongly suggests that in cytoplasmic ribosomes the 3′-end of 5.8S rRNA is basepaired with the 5′-end of 26S rRNA. This confirms the idea that 5.8S RNA is the counterpart of the 5′-terminal region of prokaryotic 23S rRNA.
机译:我们通过将测序凝胶技术应用于T1,S1,A和Naja oxiana核酸酶消化产物确定了MRE 600 23S rRNA大肠杆菌90%的一级结构。检测到八个顺反子异质性,以及与大肠杆菌K12菌株的23S rRNA基因的公开序列有16个差异。确定了大肠杆菌23S rRNA的13个转录后修饰核苷酸以及单链,双链和亚基表面区域的位置。使用这些实验结果,并通过比较大肠杆菌23S rRNA的序列,玉米氯。 23S rRNA以及小鼠和人mit 16S rRNA,我们建立了两个23S rRNA以及两个mit rRNA大部分的二级结构模型。提出的玉米叶绿体和大肠杆菌23S rRNA的结构非常相似,由7个通过远程碱基配对封闭的结构域组成。在线粒体16S rRNA中,与23S rRNA的结构域相比,这些结构域中的3个结构域的大小显着减小,并且具有非常不同的一级结构。先前发现这些结构域在大肠杆菌50S亚基中构成致密区域。保守域不属于该区域,并且包含几乎所有修饰的核苷酸。高度保守的结构域2042-2625,可能是核糖体A位点的一部分。最后,我们的研究强烈建议在胞质核糖体中5.8S rRNA的3'端与26S rRNA的5'端碱基配对。这证实了5.8S RNA是原核23S rRNA 5'-末端区域的对应物的想法。

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