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基于 Diels-Alder 环加成的 N-(糠醛基)壳聚糖水凝胶及其作为控制药物释放的微球的应用。

N-(furfural) chitosan hydrogels based on Diels-Alder cycloadditions and application as microspheres for controlled drug release.

机构信息

Laboratorio de Polímeros Naturales, Centro de Investigación en Alimentación y Desarrollo A.C., Carretera al Varadero Nacional km 6.6, Colonia Las Playitas, Guaymas CP 85480, Sonora, Mexico.

Materials Engineering Department, Engineering School of São Carlos, University of São Paulo, 13566-590 São Carlos, Brazil.

出版信息

Carbohydr Polym. 2015 Sep 5;128:220-7. doi: 10.1016/j.carbpol.2015.03.052. Epub 2015 Apr 6.

Abstract

In this study, chitosan was chemically modified by reductive amination in a two-step process. The synthesis of N-(furfural) chitosan (FC) was confirmed by FT-IR and (1)H NMR analysis, and the degrees of substitution were estimated as 8.3 and 23.8%. The cross-linkable system of bismaleimide (BM) and FC shows that FC shared properties of furan-maleimide chemistry. This system produced non-reversible hydrogel networks by Diels-Alder cycloadditions at 85 °C. The system composed of BM and FC (23.8% substitution) generated stronger hydrogel networks than those of FC with an 8.3% degree of substitution. Moreover, the FC-BM system was able to produce hydrogel microspheres. Environmental scanning electron microscopy revealed the surface of the microspheres to be non-porous with small protuberances. In water, the microspheres swelled, increasing their volume by 30%. Finally, microspheres loaded with methylene blue were able to release the dye gradually, obeying second-order kinetics for times less than 600 min. This behavior suggests that diffusion is governed by the relaxation of polymer chains in the swelled state, thus facilitating drug release outside the microspheres.

摘要

在这项研究中,壳聚糖通过两步还原胺化法进行化学修饰。通过傅里叶变换红外光谱(FT-IR)和(1)H 核磁共振分析(1)H NMR)确认了 N-(糠醛)壳聚糖(FC)的合成,取代度估计为 8.3 和 23.8%。双马来酰亚胺(BM)和 FC 的可交联体系表明 FC 具有呋喃-马来酰亚胺化学性质。该体系在 85°C 下通过 Diels-Alder 环加成反应生成不可逆的水凝胶网络。由 BM 和 FC(取代度 23.8%)组成的体系生成的水凝胶网络比取代度为 8.3%的 FC 更强。此外,FC-BM 体系能够生成水凝胶微球。环境扫描电子显微镜显示微球表面无孔,有小突起。在水中,微球溶胀,体积增加 30%。最后,负载亚甲蓝的微球能够逐渐释放染料,遵循少于 600 分钟的二级动力学。这种行为表明,扩散是由溶胀状态下聚合物链的松弛控制的,从而有利于药物从微球中释放出来。

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