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Understanding complex supramolecular landscapes: non-covalent macrocyclization equilibria examined by fluorescence resonance energy transfer

机译:了解复杂的超分子景观:通过荧光共振能量转移检验非共价大环化平衡

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摘要

As molecular self-assembled systems increase in complexity, due to a large number of participating entities and/or the establishment of multiple competing equilibria, their full understanding becomes likewise more complicated, and the use of diverse analytical techniques that can afford complementary information is required. We demonstrate in this work that resonance excitation energy transfer phenomena, measured by fluorescence spectroscopy in combination with other optical spectroscopies, can be a valuable tool to obtain supplementary thermodynamic data about complex supramolecular landscapes that other methods fail to provide. In particular, noncovalent macrocyclization processes of lipophilic dinucleosides are studied here by setting up a competition between intra- and intermolecular association processes of Watson–Crick H-bonding pairs. Multiwavelength analysis of the monomer emission changes allowed us to determine cyclotetramerization constants and to quantify chelate cooperativity, which was confirmed to be substantially larger for the G-C than for the A-U pair. Furthermore, when bithiophene-BODIPY donor–acceptor energy transfer probes are employed in these competition experiments, fluorescence and circular dichroism spectroscopy measurements in different regions of the visible spectrum additionally reveal intermolecular interactions occurring simultaneously at both sides of the macrocyclization reaction: the cyclic product, acting as a host for the competitor, and the monomer reactant, ultimately leading to macrocycle denaturation.
机译:随着分子自组装系统的复杂性增加,由于存在大量参与实体和/或建立了多个相互竞争的平衡,它们的完全理解也变得更加复杂,因此需要使用能够提供补充信息的多种分析技术。在这项工作中,我们证明了通过荧光光谱法与其他光学光谱法相结合测得的共振激发能转移现象,可以成为获取其他方法无法提供的有关复杂超分子景观的补充热力学数据的有价值的工具。特别是,在这里通过建立Watson-Crick H键对的分子内和分子间缔合过程之间的竞争来研究亲脂性二核苷的非共价大环化过程。单体发射变化的多波长分析使我们能够确定环四聚化常数并定量螯合协同性,这被证实对于G-C而言要比对A-U对大得多。此外,当在这些竞争实验中使用联噻吩-BODIPY供体-受体能量转移探针时,在可见光谱不同区域的荧光和圆二色性光谱测量还揭示了在大环化反应的两侧同时发生的分子间相互作用:环状产物,充当竞争者和单体反应物的主体,最终导致大环变性。

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