Wostenberg Christopher, Ceres Pablo, Polaski Jacob T, Batey Robert T
Department of Chemistry and Biochemistry, University of Colorado Boulder, 596 UCB, Boulder, CO 80309-0596, USA.
Department of Chemistry and Biochemistry, University of Colorado Boulder, 596 UCB, Boulder, CO 80309-0596, USA.
J Mol Biol. 2015 Nov 6;427(22):3473-3490. doi: 10.1016/j.jmb.2015.07.027. Epub 2015 Sep 3.
RNA folding in vivo is significantly influenced by transcription, which is not necessarily recapitulated by Mg(2+)-induced folding of the corresponding full-length RNA in vitro. Riboswitches that regulate gene expression at the transcriptional level are an ideal system for investigating this aspect of RNA folding as ligand-dependent termination is obligatorily co-transcriptional, providing a clear readout of the folding outcome. The folding of representative members of the SAM-I family of riboswitches has been extensively analyzed using approaches focusing almost exclusively upon Mg(2+) and/or S-adenosylmethionine (SAM)-induced folding of full-length transcripts of the ligand binding domain. To relate these findings to co-transcriptional regulatory activity, we have investigated a set of structure-guided mutations of conserved tertiary architectural elements of the ligand binding domain using an in vitro single-turnover transcriptional termination assay, complemented with phylogenetic analysis and isothermal titration calorimetry data. This analysis revealed a conserved internal loop adjacent to the SAM binding site that significantly affects ligand binding and regulatory activity. Conversely, most single point mutations throughout key conserved features in peripheral tertiary architecture supporting the SAM binding pocket have relatively little impact on riboswitch activity. Instead, a secondary structural element in the peripheral subdomain appears to be the key determinant in observed differences in regulatory properties across the SAM-I family. These data reveal a highly coupled network of tertiary interactions that promote high-fidelity co-transcriptional folding of the riboswitch but are only indirectly linked to regulatory tuning.
体内RNA折叠受转录的显著影响,而体外相应全长RNA的镁离子(Mg(2+))诱导折叠不一定能重现这种影响。在转录水平调控基因表达的核糖开关是研究RNA折叠这一方面的理想系统,因为配体依赖性终止必然是共转录的,能清晰显示折叠结果。SAM-I家族核糖开关的代表性成员的折叠已通过几乎专门聚焦于镁离子(Mg(2+))和/或S-腺苷甲硫氨酸(SAM)诱导的配体结合域全长转录本折叠的方法进行了广泛分析。为了将这些发现与共转录调控活性联系起来,我们使用体外单轮转录终止测定法,结合系统发育分析和等温滴定量热法数据,研究了一组配体结合域保守三级结构元件的结构导向突变。该分析揭示了一个与SAM结合位点相邻的保守内环,它对配体结合和调控活性有显著影响。相反,支持SAM结合口袋的外围三级结构中关键保守特征处的大多数单点突变对核糖开关活性影响相对较小。相反,外围亚结构域中的一个二级结构元件似乎是观察到的整个SAM-I家族调控特性差异的关键决定因素。这些数据揭示了一个高度耦合的三级相互作用网络,它促进核糖开关的高保真共转录折叠,但仅与调控微调间接相关。