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大分子树枝状 β-环糊精衍生物作为非传统药物载体的会聚点击合成:阿苯达唑为客体模型。

Convergent click synthesis of macromolecular dendritic β-cyclodextrin derivatives as non-conventional drug carriers: Albendazole as guest model.

机构信息

Instituto de Investigaciones en Materiales, Universidad Nacional Autónoma de México, Mexico City 04510, Mexico.

Instituto de Investigaciones en Materiales, Universidad Nacional Autónoma de México, Mexico City 04510, Mexico.

出版信息

Int J Biol Macromol. 2020 Dec 1;164:1704-1714. doi: 10.1016/j.ijbiomac.2020.08.018. Epub 2020 Aug 4.

DOI:10.1016/j.ijbiomac.2020.08.018
PMID:32763396
Abstract

From a materials science perspective, herein we present the design and synthesis of six macromolecular carbohydrate derivatives, obtained by combining the native cyclic oligosaccharide βCD and dendritic poly(ester) moieties, coupled by CuAAc click reactions, in a convergent fashion. We envisioned two structural variables to promote the formation of inclusion complexes (ICs) with the anti-parasitic drug Albendazole, the degree of substitution on the βCD (mono or hepta-substitution) and the dendritic generation (from first to third). In terms of synthetic effort and cost, the mono-substituted βCD derivatives were obtained in more approachable experimental conditions in comparison to the βCD dendrimers (hepta-substituted macrocycle). The six dendritic derivatives were more soluble in water and showed better complexation capacity than native βCD. For both, mono and hepta-substituted βCD, we observed that the amount of encapsulated ABZ increases when the dendron generation increases. Interestingly, different degrees of substitution (mono and hepta) lead comparable results of ABZ complexation. In conclusion, the encapsulation performance and the consequent solubility enhancement, make these molecular containers excellent materials to positively impact the therapeutic desirability of ABZ.

摘要

从材料科学的角度出发,本文介绍了六种高分子碳水化合物衍生物的设计与合成,这些化合物是通过结合天然环状低聚糖βCD 和树枝状聚酯部分,通过 CuAAc 点击反应,以收敛的方式连接而成的。我们设想了两个结构变量来促进与抗寄生虫药物阿苯达唑形成包合物(ICs),βCD 上的取代度(单取代或七取代)和树枝状支化度(从一代到三代)。从合成难度和成本的角度来看,与βCD 树状大分子(七取代大环)相比,单取代βCD 衍生物在更易于实现的实验条件下获得。六种树枝状衍生物在水中的溶解度更高,比天然βCD 具有更好的包合能力。对于单取代和七取代的βCD,我们观察到当树枝状支化度增加时,包封的 ABZ 量增加。有趣的是,不同的取代度(单取代和七取代)导致 ABZ 包合的结果相当。总之,这些分子容器的包封性能和随之而来的溶解度提高,使它们成为提高阿苯达唑治疗效果的理想材料。

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1
Convergent click synthesis of macromolecular dendritic β-cyclodextrin derivatives as non-conventional drug carriers: Albendazole as guest model.大分子树枝状 β-环糊精衍生物作为非传统药物载体的会聚点击合成:阿苯达唑为客体模型。
Int J Biol Macromol. 2020 Dec 1;164:1704-1714. doi: 10.1016/j.ijbiomac.2020.08.018. Epub 2020 Aug 4.
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引用本文的文献

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Click Chemistry as an Efficient Toolbox for Coupling Sterically Hindered Molecular Systems to Obtain Advanced Materials for Nanomedicine.点击化学作为一种将空间位阻分子体系偶联以获得用于纳米医学的先进材料的有效工具。
Int J Mol Sci. 2024 Dec 24;26(1):36. doi: 10.3390/ijms26010036.
2
Nanoparticle Synthesis and Their Integration into Polymer-Based Fibers for Biomedical Applications.用于生物医学应用的纳米颗粒合成及其与聚合物基纤维的整合
Biomedicines. 2023 Jun 29;11(7):1862. doi: 10.3390/biomedicines11071862.
3
β-cyclodextrin dendritic derivatives as permeation mediators to enhance the albendazole cysticidal activity by the improvement of the diffusion component.
β-环糊精树枝状衍生物作为渗透介质,通过改善扩散成分来增强阿苯达唑的杀囊活性。
RSC Adv. 2022 Aug 17;12(36):23153-23161. doi: 10.1039/d2ra03314c. eCollection 2022 Aug 16.