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多电荷环糊精超分子组装体。

Multicharged cyclodextrin supramolecular assemblies.

机构信息

State Key Laboratory of Elemento-Organic Chemistry, College of Chemistry, Nankai University, Tianjin 300071, P. R. China.

Haihe Laboratory of Sustainable Chemical Transformations, Tianjin 300192, China.

出版信息

Chem Soc Rev. 2022 Jun 6;51(11):4786-4827. doi: 10.1039/d1cs00821h.

Abstract

Multicharged cyclodextrin (CD) supramolecular assemblies, including those based on positively/negatively charged modified mono-6-deoxy-CDs, per-6-deoxy-CDs, and random 2,3,6-deoxy-CDs, as well as parent CDs binding positively/negatively charged guests, have been extensively applied in chemistry, materials science, medicine, biological science, catalysis, and other fields. In this review, we primarily focus on summarizing the recent advances in positively/negatively charged CDs and parent CDs encapsulating positively/negatively charged guests, especially the construction process of supramolecular assemblies and their applications. Compared with uncharged CDs, multicharged CDs display remarkably high antiviral and antibacterial activity as well as efficient protein fibrosis inhibition. Meanwhile, charged CDs can interact with oppositely charged dyes, drugs, polymers, and biomacromolecules to achieve effective encapsulation and aggregation. Consequently, multicharged CD supramolecular assemblies show great advantages in improving drug-delivery efficiency, the luminescence properties of materials, molecular recognition and imaging, and the toughness of supramolecular hydrogels, in addition to enabling the construction of multistimuli-responsive assemblies. These features are anticipated to not only promote the development of CD-based supramolecular chemistry but also contribute to the rapid exploitation of these assemblies in diverse interdisciplinary applications.

摘要

多电荷环糊精(CD)超分子组装体,包括基于正/负电荷修饰的单 6-去氧-CD、全 6-去氧-CD 和随机 2,3,6-去氧-CD 的组装体,以及结合正/负电荷客体的母体 CD,已广泛应用于化学、材料科学、医学、生物科学、催化等领域。在本综述中,我们主要关注总结正/负电荷 CD 和母体 CD 包结正/负电荷客体的最新进展,特别是超分子组装体的构建过程及其应用。与非电荷 CD 相比,多电荷 CD 表现出显著的抗病毒和抗菌活性以及高效的蛋白质纤维化抑制活性。同时,电荷 CD 可以与带相反电荷的染料、药物、聚合物和生物大分子相互作用,实现有效的包封和聚集。因此,多电荷 CD 超分子组装体在提高药物输送效率、材料的发光性能、分子识别和成像以及超分子水凝胶的韧性方面具有很大的优势,除了能够构建多刺激响应组装体外。这些特性不仅有望促进基于 CD 的超分子化学的发展,而且有助于这些组装体在不同的跨学科应用中的快速开发。

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