ph门控自组装环糊精的瞬态超分子聚合物构象控制

Dr. Wenting Hu, Valérian Libérioux, Dr. Julien Rossignol, Dr. Gaëlle Pembouong, Dr. Etienne Derat, Dr. Mickaël Ménand, Dr. Laurent Bouteiller, Prof. Matthieu Sollogoub
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引用次数: 0

摘要

将环糊精(CD)宿主与疏水客体连接可以产生两种不同的构象:内向形式(in),客体包含在CD腔内;外向形式(out),使分子间相互作用成为可能,从而形成超分子聚合物。在这项研究中,我们证明了连接体的细微变化使这两种构象之间能够相互转换,其中在水中的构象在热力学上最稳定。在碱性pH (>8)下,输出构象瞬间转化为输入构象。相反,在酸性pH (<2)下,单体可以被动力学捕获并自组装成超分子聚合物。DFT计算表明,相互转化机制是由锁定构象态的关键氢键控制的。此外,我们表明pH值对相互转化率和聚合过程提供了良好的动力学控制。然后可以使用DMSO将系统重置为外构象。该系统与已知的瞬态超分子聚合过程相反,后者依赖于亚稳态(非组装)单体。在这里,它是组装单体的动力学捕获,允许通过ph响应机制控制瞬态超分子聚合物的寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Transient Supramolecular Polymers by pH-Gated Conformational Control of a Self-Assembling Cyclodextrin

Transient Supramolecular Polymers by pH-Gated Conformational Control of a Self-Assembling Cyclodextrin

Linking a cyclodextrin (CD) host to a hydrophobic guest can result in two distinct conformations: an introverted form (in), in which the guest is self-included within the CD cavity, and an extraverted form (out), which enables intermolecular interactions and thus the formation of a supramolecular polymer. In this study, we demonstrate that a subtle variation of the linker enables interconversion between these two conformations, the in conformer being thermodynamically the most stable in water. At basic pH (>8) the out conformer is instantly converted into the in. In contrast, at acidic pH (<2), the out monomer can be kinetically trapped and can self-assemble into a supramolecular polymer. DFT calculations reveal that the interconversion mechanism is governed by a key hydrogen bond that locks the conformational states. Furthermore, we show that pH provides fine kinetic control over the interconversion rate and, consequently, the polymerization process. The system can then be reset toward the out conformation by using DMSO. This system stands in contrast to known transient supramolecular polymerization processes, which rely on metastable (non-assembled) monomers. Here, it is the kinetic trapping of the assembling monomer that allows control over the lifetime of the transient supramolecular polymer via a pH-responsive mechanism.

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来源期刊
Angewandte Chemie
Angewandte Chemie 化学科学, 有机化学, 有机合成
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