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Computational understanding and experimental characterization of twice-as-smart quadruplex ligands as chemical sensors of bacterial nucleotide second messengers

机译:作为细菌核苷酸第二信使的化学传感器的两倍智能四链体配体的计算理解和实验表征

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A twice-as-smart ligand is a small molecule that experiences a structural switch upon interaction with its target (i.e., smart ligand) that concomitantly triggers its fluorescence (i.e., smart probe). Prototypes of twice-as-smart ligands were recently developed to track and label G-quadruplexes: these higher-order nucleic acid structures originate in the assembly of four guanine(G)-rich DNA or RNA strands, whose stability is imparted by the formation and the self-assembly of G-quartets. The first prototypes of twice-as-smart quadruplex ligands were designed to exploit the self-association of quartets, being themselves synthetic G-quartets. While their quadruplex recognition capability has been thoroughly documented, some doubts remain about the precise photophysical mechanism that underlies their peculiar spectroscopic properties. Here, we uncovered this mechanism via complete theoretical calculations. Collected information was then used to develop a novel application of twice-as-smart ligands, as efficient chemical sensors of bacterial signaling pathways via the fluorescent detection of naturally occurring extracellular quadruplexes formed by cyclic dimeric guanosine monophosphate (c-di-GMP).
机译:两倍智能配体是一个小分子,在与其靶标(即智能配体)相互作用时会经历结构转换,从而触发其荧光(即智能探针)。最近开发了两倍智能配体的原型来跟踪和标记G-四链体:这些高阶核酸结构起源于四个鸟嘌呤(G)富集的DNA或RNA链的组装,其稳定性通过形成以及G四重奏的自组装两倍于智能的四重配体的第一个原型旨在利用四重奏的自缔合,它们本身就是合成的G四重奏。尽管它们的四链体识别能力已得到充分证明,但对于构​​成其特殊光谱特性的精确光物理机制仍存在一些疑问。在这里,我们通过完整的理论计算发现了这种机制。收集到的信息随后被用于开发两倍于智能配体的新应用,作为通过荧光检测由环状二聚鸟苷单磷酸(c-di-GMP)形成的天然存在的细胞外四链体的细菌信号传导途径的有效化学传感器。

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