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Ligand-induced folding of the guanine-sensing riboswitch is controlled by a combined predetermined-induced fit mechanism

机译:鸟嘌呤感应核糖开关的配体诱导折叠由预定的诱导拟合机制组合控制

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All known guanine-sensing riboswitches regulate gene expression by specifically binding to guanine (G) or related analogs with high affinity to switch off transcription. The aptamers of this class of riboswitches are characterized by three helices (P1-P3), surrounding a central core of phylogenetically conserved nucleotides and a long-range loop-loop interaction. To gain more insight into the switching mechanism, we present here a comparison between the solution-state structures of the G-free and G-bound forms of the guanine aptamer from the xpt-pbuX operon of Bacillus subtilis, as derived from NMR chemical shifts and magnetic-field-induced residual dipolar couplings. The high-resolution NMR analysis shows the G-free aptamer is highly structured with parallel P2 and P3 helices and the long-range loop-loop interaction already present, implying that the structure is largely preformed to bind the ligand. Structural changes upon guanine binding are found to be localized to the central core. In the free state, the G-quadruple interaction and two base pairs of the P1 stem flanking the central core appear to be largely disordered. The ligand thus binds via a combined predetermined-induced fit mechanism, involving a previously unstructured five-residue loop of the J2-3 junction that folds over the ligand. These limited additional interactions within a preorganized setting possibly explain how the aptamer rapidly responds to ligand binding, which is necessary to switch the structural state of the expression platform within a narrow time frame before the RNA polymerase escapes the 5'-UTR.
机译:所有已知的鸟嘌呤敏感核糖开关都通过与鸟嘌呤(G)或相关类似物特异性结合,从而以高亲和力关闭转录,从而调节基因表达。这类核糖开关的适体的特征在于三个螺旋(P1-P3),围绕着系统发育上保守的核苷酸的中心核心和长距离的环-环相互作用。为了更深入地了解转换机制,我们在此介绍了来自枯草芽孢杆菌xpt-pbuX操纵子的鸟嘌呤适体的无G和G结合形式的溶液状态结构的比较,这是从NMR化学位移得出的和磁场感应的残留偶极耦合。高分辨率NMR分析显示,不含G的适体高度结构化,具有平行的P2和P3螺旋,并且已经存在远距离环-环相互作用,这表明该结构在很大程度上是与配体结合的。发现鸟嘌呤结合后的结构变化位于中央核心。在自由状态下,G-四联体相互作用和位于中央核心两侧的P1茎的两个碱基对似乎在很大程度上是无序的。因此,配体通过组合的预定诱导的拟合机制结合,该机制涉及折叠在配体上的J2-3连接的先前未结构化的五残基环。在预组织的环境中这些有限的附加相互作用可能解释了适体如何快速响应配体结合,这是在RNA聚合酶逃脱5'-UTR之前的狭窄时间范围内转换表达平台的结构状态所必需的。

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