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Thermodynamic analysis of ligand binding and ligand binding-induced tertiary structure formation by the thiamine pyrophosphate riboswitch

机译:硫胺素焦磷酸核糖开关对配体结合和配体结合诱导的三级结构形成的热力学分析

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摘要

The thi-box riboswitch regulates gene expression in response to the intracellular concentration of thiamine pyrophosphate (TPP) in archaea, bacteria, and eukarya. To complement previous biochemical, genetic, and structural studies of this phylogenetically widespread RNA domain, we have characterized its interaction with TPP by isothermal titration calorimetry. This shows that TPP binding is highly dependent on Mg2+ concentration. The dissociation constant decreases from ∼200 nM at 0.5 mM Mg2+ concentration to ∼9 nM at 2.5 mM Mg2+ concentration. Binding is enthalpically driven, but the unfavorable entropy of binding decreases as Mg2+ concentration rises, suggesting that divalent cations serve to pre-organize the RNA. Mutagenesis, biochemical analysis, and a new crystal structure of the riboswitch suggest that a critical element that participates in organizing the riboswitch structure is the tertiary interaction formed between the P3 and L5 regions. This tertiary contact is distant from the TPP binding site, but calorimetric analysis reveals that even subtle mutations in L5 can have readily detectable effects on TPP binding. The thermodynamic signatures of these mutations, namely decreased favorable enthalpy of binding and small effects on entropy of binding, are consistent with the P3–L5 association contributing allosterically to TPP-induced compaction of the RNA.
机译:thi-box核糖开关响应古细菌,细菌和真核生物中胞内硫胺素焦磷酸(TPP)的细胞内浓度而调节基因表达。为了补充以前对该系统发育广泛的RNA结构域的生化,遗传和结构研究,我们通过等温滴定量热法表征了其与TPP的相互作用。这表明TPP结合高度依赖于Mg2 +的浓度。解离常数从0.5 mM Mg2 +浓度下的〜200 nM降低到2.5 mM Mg2 +浓度下的〜9 nM。结合是由焓驱动的,但是随着Mg2 +浓度的增加,结合的熵降低,这表明二价阳离子可用于预组织RNA。诱变,生化分析和核糖开关的新晶体结构表明,参与组织核糖开关结构的关键元素是P3和L5区之间形成的三级相互作用。该三级接触距离TPP结合位点很远,但是量热分析表明,即使L5中的细微突变也可以很容易地检测到TPP结合的作用。这些突变的热力学特征,即降低有利的结合焓和对结合熵的小的影响,与P3-L5缔合的构象一致,这是TPP诱导的RNA变构的变构作用。

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