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金纳米颗粒促进可注射水凝胶的形成和生物性能。

Gold Nanoparticle Promoted Formation and Biological Properties of Injectable Hydrogels.

机构信息

Membrane Science and Separation Technology Division, Central Salt and Marine Chemicals Research Institute (CSIR-CSMCRI), G. B. Marg, Bhavnagar, Gujarat 364002, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India.

出版信息

Biomacromolecules. 2020 Sep 14;21(9):3782-3794. doi: 10.1021/acs.biomac.0c00889. Epub 2020 Aug 6.

Abstract

Acceleration of gelation in the biological environment and improvement of overall biological properties of a hydrogel is of enormous importance. Biopolymer stabilized gold (Au) nanoparticles (NPs) exhibit cytocompatibility and therapeutic activity. Hence, in situ gelation and subsequent improvement in the property of a hydrogel by employing Au NPs is an attractive approach. We report that stable Au NPs accelerate the conventional nucleophilic substitution reaction of activated halide-terminated poly(ethylene glycol) and tertiary amine functional macromolecules, leading to the rapid formation of injectable nanocomposite hydrogels in vivo and ex vivo with improved modulus, cell adhesion, cell proliferation, and cytocompatibility than that of a pristine hydrogel. NP surfaces with low chain grafting density and good colloidal stability are crucial requirements for the use of these NPs in the hydrogel formation. Influence of the structure of the amine functional prepolymer, the spacer connecting the halide leaving groups of the substrate, and the structure of the stabilizer on the rate promoting activity of the NPs have been evaluated with model low-molecular-weight substrates and macromolecules by H NMR spectroscopy, rheological experiments, and density functional theory. Results indicate a significant effect of the spacer connecting the halide leaving group with the macromolecule. The Au nanocomposite hydrogels show sustained co-release of methotrexate, an anti-rheumatic drug, and the Au NPs. This work provides insights for designing an injectable nanocomposite hydrogel system with multifunctional property. The strategy of the use of cytocompatible Au NPs as a promoter provides new opportunity to obtain an injectable hydrogel system for biological applications.

摘要

在生物环境中加速凝胶化并提高水凝胶的整体生物性能非常重要。生物聚合物稳定的金(Au)纳米粒子(NPs)表现出细胞相容性和治疗活性。因此,通过使用 Au NPs 原位凝胶化并随后改善水凝胶的性能是一种有吸引力的方法。我们报告称,稳定的 Au NPs 加速了活性卤代末端聚(乙二醇)和叔胺功能大分子的常规亲核取代反应,导致可注射的纳米复合水凝胶在体内和体外快速形成,与原始水凝胶相比,其模量、细胞黏附、细胞增殖和细胞相容性得到改善。具有低链接枝密度和良好胶体稳定性的 NP 表面是在水凝胶形成中使用这些 NPs 的关键要求。通过 H NMR 光谱、流变实验和密度泛函理论,评估了胺功能预聚物的结构、连接基质卤代离去基团的间隔基以及稳定剂的结构对 NP 促进活性的影响,使用模型低分子量底物和大分子进行了评估。结果表明,连接卤代离去基团与大分子的间隔基有显著影响。Au 纳米复合水凝胶表现出甲氨蝶呤(一种抗风湿药物)和 Au NPs 的持续共释放。这项工作为设计具有多功能特性的可注射纳米复合水凝胶系统提供了新的思路。使用细胞相容性 Au NPs 作为促进剂的策略为获得用于生物应用的可注射水凝胶系统提供了新的机会。

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