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Structural basis for recognition of S-adenosylhomocysteine by riboswitches.

机译:核糖开关识别S-腺苷同型半胱氨酸的结构基础。

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S-adenosyl-(L)-homocysteine (SAH) riboswitches are regulatory elements found in bacterial mRNAs that up-regulate genes involved in the S-adenosyl-(L)-methionine (SAM) regeneration cycle. To understand the structural basis of SAH-dependent regulation by RNA, we have solved the structure of its metabolite-binding domain in complex with SAH. This structure reveals an unusual pseudoknot topology that creates a shallow groove on the surface of the RNA that binds SAH primarily through interactions with the adenine ring and methionine main chain atoms and discriminates against SAM through a steric mechanism. Chemical probing and calorimetric analysis indicate that the unliganded RNA can access bound-like conformations that are significantly stabilized by SAH to direct folding of the downstream regulatory switch. Strikingly, we find that metabolites bearing an adenine ring, including ATP, bind this aptamer with sufficiently high affinity such that normal intracellular concentrations of these compounds may influence regulation of the riboswitch.
机译:S-腺苷-(L)-高半胱氨酸(SAH)核糖开关是在细菌mRNA中发现的调节元件,可上调S-腺苷-(L)-蛋氨酸(SAM)再生周期中涉及的基因。为了了解RNA依赖SAH的调控的结构基础,我们已经解决了其与SAH结合的代谢物结合结构域的结构。这种结构揭示了一种异常的假结拓扑结构,该结构在RNA表面上形成了一条浅槽,该槽主要通过与腺嘌呤环和甲硫氨酸主链原子的相互作用结合SAH,并通过空间机制与SAM区别开。化学探测和量热分析表明,未配体的RNA可以进入SAH显着稳定的结合样构象,从而指导下游调控开关的折叠。令人惊讶地,我们发现带有腺嘌呤环的代谢物(包括ATP)以足够高的亲和力结合该适体,从而使这些化合物的正常细胞内浓度可能影响核糖开关的调节。

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