Groupe ARN/RNA Group, Département de Biologie, Faculté des Sciences, Université de Sherbrooke, Sherbrooke, QC, Canada.
RNA Biol. 2012 May;9(5):535-41. doi: 10.4161/rna.19648. Epub 2012 Feb 21.
Riboswitches are ligand-dependent RNA genetic regulators that control gene expression by altering their structures. The elucidation of riboswitch conformational changes before and after ligand recognition is crucial to understand how riboswitches can achieve high ligand binding affinity and discrimination against cellular analogs. The detailed characterization of riboswitch folding pathways suggest that they may use their intrinsic conformational dynamics to sample a large array of structures, some of which being nearly identical to ligand-bound molecules. Some of these structural conformers can be "captured" upon ligand binding, which is crucial for the outcome of gene regulation. Recent studies about the SAM-I riboswitch have revealed unexpected and previously unknown RNA folding mechanisms. For instance, the observed helical twist of the P1 stem upon ligand binding to the SAM-I aptamer adds a new element in the repertoire of RNA strategies for recognition of small metabolites. From an RNA folding perspective, these findings also strongly indicate that the SAM-I riboswitch could achieve ligand recognition by using an optimized combination of conformational capture and induced-fit approaches, a feature that may be shared by other RNA regulatory sequences.
Riboswitches 是配体依赖性 RNA 遗传调节剂,通过改变其结构来控制基因表达。阐明配体识别前后 riboswitch 的构象变化对于理解 riboswitches 如何能够实现高配体结合亲和力和对细胞类似物的区分至关重要。riboswitch 折叠途径的详细表征表明,它们可能利用其内在的构象动力学来对大量结构进行采样,其中一些结构与配体结合的分子几乎相同。配体结合后可以“捕获”其中一些结构构象,这对于基因调控的结果至关重要。最近关于 SAM-I riboswitch 的研究揭示了出人意料的、以前未知的 RNA 折叠机制。例如,在 SAM-I 适体与配体结合时观察到 P1 茎的螺旋扭曲,这为识别小分子代谢物的 RNA 策略库增加了一个新元素。从 RNA 折叠的角度来看,这些发现还强烈表明,SAM-I riboswitch 可以通过使用构象捕获和诱导契合方法的优化组合来实现配体识别,这一特征可能被其他 RNA 调节序列所共享。