Fluorescent Paracyclophanes: Unveiling Ultra-Strong Binding with Cucurbit[8]uril in Aqueous Environments

Laura Marie Grimm, Yichuan Wang, Amrutha Prabodh, Emma Barilli, Sebastian Spicher, Zahid Hassan, Stefan Grimme, Stefan Bräse, Frank Biedermann
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Abstract

In supramolecular chemistry, the pursuit of highly efficient molecular recognition systems holds paramount significance. This study introduces new [2.2]paracyclophanes (PCP) as exceptional guest molecules for cucurbit[8]uril (CB8). This well-matched host-guest interaction is marked by ultra-high binding affinities (Ka up to 1015 M−1 in water) accompanied by unprecedented exothermic contributions (ΔH up to −20.6 kcal mol−1) observed in CB8 binding, rivaling the exceptional affinities of cucurbit[7]uril (CB7), which has until now been recognized as the gold standard for high-affinity binding in water. The PCPs demonstrate an excellent fit within the CB8 cavity without structural deformation of the host. Our research methodology incorporates organic synthesis, NMR, fluorescence titration, and isothermal titration calorimetry (ITC) experiments, as well as quantum mechanical simulations, to systematically examine the binding characteristics of fluorescent mono- and dicationic PCP guests within the CB8 cavity. This study not only corroborates but also critically reevaluates certain aspects of the “high-energy water release model” for cucurbit[n]uril systems. Furthermore, the ease of modifying PCP compounds, combined with their superior water solubility compared to di- and triamantanes, and their characteristic fluorescent response in forming and disassembling host-guest complexes, elevates PCPs as promising candidates for the creation of advanced supramolecular CB8-functional materials and sensing assays.

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荧光副环烷:揭示葫芦[8]脲在水环境中的超强结合力
在超分子化学中,追求高效的分子识别系统具有极其重要的意义。本研究介绍了新的 [2.2]paracyclophanes (PCP) 作为葫芦[8]脲(CB8)的特殊客体分子。这种匹配良好的主客相互作用具有超高的结合亲和力(水中 Ka 高达 1015 M-1),同时在 CB8 结合过程中观察到前所未有的放热贡献(ΔH 高达 -20.6 kcal mol-1),可与葫芦[7]脲(CB7)的特殊亲和力相媲美,而后者迄今一直被公认为水中高亲和力结合的黄金标准。五氯苯酚在 CB8 空腔中表现出极佳的契合度,而不会导致宿主结构变形。我们的研究方法结合了有机合成、核磁共振、荧光滴定和等温滴定量热(ITC)实验以及量子力学模拟,系统地研究了荧光单阳离子和双阳离子五氯苯酚客体在 CB8 空腔内的结合特性。这项研究不仅证实了葫芦[n]脲系统的 "高能水释放模型 "的某些方面,而且对其进行了批判性的重新评估。此外,五氯苯酚化合物易于改性,与二烷烃和三烷烃相比具有更优越的水溶性,而且在形成和分解主客复合物时具有独特的荧光反应,因此五氯苯酚有望成为创造先进的超分子 CB8 功能材料和传感检测方法的候选物质。
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