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Supramolecular sensing at the solid-liquid interface with phosphonate cavitands

机译:膦酸酯空洞在固液界面的超分子传感

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摘要

The base of supramolecular chemistry rests on molecular recognition, that is the selective recognition of substrate molecules (guest) by synthetic receptors (host). The present thesis deals with the selective recognition properties of tetraphosphonate cavitands towards N-methylpyridinium and N-alkylammonium salts.In the first part of the thesis an extensive study of the thermodynamics of the complexation properties of tetraphosphonate cavitands towards N-methylpyridinium salts in solution via Isothermal Titration Calorimetry (ITC) is reported. The information obtained by the ITC in the recognition process of the receptor towards N-methylpyridinium salts were then exploited for the design of a new type of non-covalently linked-cavitand-stopped rotaxane.In the second part of the work, the complexation properties of cavitands were assessed towards N-alkylammonium salts at the solid-liquid interface via microcantilevers reaching an unprecedented real-time label-free selectivity. ITC was used as an independent tool for confirmation and rationalization of the results obtained with microcantilevers-based sensor. This approach has been then benchmarked by differentiating biological important molecules like sarcosine and glycine in water, reaching unique performances.The results obtained for the N-alkylammonium salts series opened the route to use microcantilevers for the online monitoring and the label-free sensing of biologically active ammonium-based molecules like drugs. The first experiments performed to test the recognition properties of tetraphosphonate cavitands towards drugs at the solid-liquid interface are described.
机译:超分子化学的基础是分子识别,即合成受体(宿主)对底物分子(客体)的选择性识别。本文主要研究四膦酸盐空洞分子对N-甲基吡啶鎓盐和N-烷基铵盐的选择性识别特性。论文的第一部分广泛研究了四膦酸盐空洞分子对溶液中N-甲基吡啶鎓盐的络合特性的热力学。报道了等温滴定热量法(ITC)。然后,ITC在受体对N-甲基吡啶鎓盐的识别过程中获得的信息被用于设计新型的非共价键合的cavitand-stopped轮烷。第二部分是络合特性。通过微悬臂梁对固液界面上的空泡石对N-烷基铵盐进行了评估,达到了前所未有的实时无标记选择性。 ITC用作确认和合理化基于微悬臂梁传感器获得的结果的独立工具。该方法随后通过区分水中的肌氨酸和甘氨酸等生物重要分子而达到基准,达到了独特的性能.N-烷基铵盐系列获得的结果开辟了使用微悬臂梁进行生物在线监测和无标记传感的途径活性铵基分子,如药物。描述了在固液界面上测试四膦酸酯类空洞分子对药物的识别特性的第一个实验。

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    Menozzi Daniela;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 Inglese
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