首页> 外文期刊>Nucleic Acids Research >The Escherichia coli ribosomal RNA leader nut region interacts specifically with mature 16S RNA.
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The Escherichia coli ribosomal RNA leader nut region interacts specifically with mature 16S RNA.

机译:大肠杆菌核糖体RNA前导螺母区域与成熟的16S RNA特异性相互作用。

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摘要

All ribosomal RNAs are preceded by leader sequences not present in the final ribosome particles. The highly conserved leader sequences of bacterial rRNAs are known to be important for the folding and assembly of functional ribosomes. Very likely transient binding of the leader to mature parts of the 16S RNA occurs during transcription. To better understand the mechanistic details of these functions we have performed a secondary structural analysis of E. coli ribosomal RNA leader transcripts by chemical modification and enzymatic hydrolysis studies. The data were combined with results from thermodynamic stability calculations to yield a generalized structural model. The same secondary structure of the leader core, comprising the nut-like sequences up to the mature 5' end of the 16S RNA, was deduced, irrespective if transcripts started at promoter P1 or 120 nucleotides downstream at P2. Employing gelshift and cross-linking studies we were able to demonstrate that a part of the leader core, namely the nut-like sequence elements bind directly to specific regions within the mature 16S RNA. The sites of RNA-RNA cross-linking could be localized by sequencing. They map in the 16S RNA 5' domain at nucleotide positions G27 to G42, C48, G68, G117 and G126. The results may explain the recently observed scaffolding function of the leader RNA during ribosome biogenesis.
机译:在所有核糖体RNA之前均存在最终核糖体颗粒中不存在的前导序列。众所周知,细菌rRNA的高度保守的前导序列对于功能核糖体的折叠和组装很重要。在转录过程中很可能将前导序列与16S RNA的成熟部分短暂结合。为了更好地了解这些功能的机械细节,我们通过化学修饰和酶水解研究对大肠杆菌核糖体RNA前导转录本进行了二级结构分析。将该数据与热力学稳定性计算的结果相结合,以得到一个广义的结构模型。不论转录物是从启动子P1还是在P2下游的120个核苷酸开始,都可以推断出前导核的相同二级结构,其中包括直至16S RNA成熟5'末端的坚果样序列。通过凝胶转移和交联研究,我们能够证明前导核心的一部分,即坚果样序列元件直接与成熟16S RNA内的特定区域结合。 RNA-RNA交联的位点可以通过测序来定位。它们在16S RNA 5'结构域中的核苷酸位置G27定位到G42,C48,G68,G117和G126。结果可能解释了最近在核糖体生物发生过程中观察到的前导RNA的支架功能。

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