David M Kosek, J Luis Leal, Ema Kikovska-Stojanovska, Guanzhong Mao, Shiying Wu, Samuel C Flores, Leif A Kirsebom
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引用次数: 0
Abstract
We show that a small biotin-binding RNA aptamer that folds into a pseudoknot structure acts as a substrate for bacterial RNase P RNA (RPR) with and without the RNase P C5 protein. Cleavage in the single-stranded region in loop 1 was shown to depend on the presence of a RCCA-motif at the 3' end of the substrate. The nucleobase and the 2'hydroxyl at the position immediately 5' of the cleavage site contribute to both cleavage efficiency and site selection, where C at this position induces significant cleavage at an alternative site, one base upstream of the main cleavage site. The frequencies of cleavage at these two sites and Mg2+ binding change upon altering the structural topology in the vicinity of the cleavage site as well as by replacing Mg2+ with other divalent metal ions. Modelling studies of RPR in complex with the pseudoknot substrates suggest alternative structural topologies for cleavage at the main and the alternative site and a shift in positioning of Mg2+ that activates the H2O nucleophile. Together, our data are consistent with a model where the organization of the active site structure and positioning of Mg2+ is influenced by the identities of residues at and in the vicinity of the site of cleavage.
我们发现了一个小的生物素结合RNA适体,折叠成假结结构,作为细菌RNase P RNA (RPR)的底物,无论是否含有RNase P C5蛋白。环路1单链区域的切割被证明依赖于底物3'端rcca基序的存在。紧邻裂解位点5′位置的核碱基和2′羟基有助于裂解效率和位点选择,其中该位置的C在主裂解位点上游一个碱基的替代位点诱导显著的裂解。通过改变裂解位点附近的结构拓扑以及用其他二价金属离子取代Mg2+,这两个位点的裂解频率和Mg2+结合频率发生了变化。假结底物复合物中RPR的模拟研究表明,在主位点和替代位点上的切割结构拓扑是不同的,Mg2+的位置发生了变化,激活了H2O亲核试剂。总之,我们的数据与一个模型一致,即活性位点结构的组织和Mg2+的定位受到裂解位点及其附近残基的身份的影响。
期刊介绍:
RNA has played a central role in all cellular processes since the beginning of life: decoding the genome, regulating gene expression, mediating molecular interactions, catalyzing chemical reactions. RNA Biology, as a leading journal in the field, provides a platform for presenting and discussing cutting-edge RNA research.
RNA Biology brings together a multidisciplinary community of scientists working in the areas of:
Transcription and splicing
Post-transcriptional regulation of gene expression
Non-coding RNAs
RNA localization
Translation and catalysis by RNA
Structural biology
Bioinformatics
RNA in disease and therapy