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首页> 外文期刊>Journal of Molecular Liquids >Understanding gold nanoparticles interactions with chitosan: Crosslinking agents as novel strategy for direct covalent immobilization of biomolecules on metallic surfaces
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Understanding gold nanoparticles interactions with chitosan: Crosslinking agents as novel strategy for direct covalent immobilization of biomolecules on metallic surfaces

机译:了解金纳米粒子与壳聚糖的相互作用:交联剂作为一种新型策略,用于在金属表面上直接共价固定生物分子

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摘要

The development of a new method for covalent immobilization of biomolecules on the surface of bare gold nanoparticles (AuNPs) by using crosslinking agents in one step is presented. A very compatible biopolymer such as chitosan has been used as a target molecule to probe the viability of the proposed methodology. Click chemistry, based on biocompatible reactions and coupling with 1-Ethyl-3-(3-dimethylaminopropyl) carbodiimide hydrochloride and N-hydroxysuccinimide allow to analyze the covalent interactions between the metal nanoparticles and the biopolymer. Spectra deconvolution technique and Zeta potential measurements confirm the covalent interaction. The present study allows to quantify the proportion of AuNPs covalently adhered to the chitosan, which depends on the solution pH. The obtained results indicates that covalent interactions can be increased up to 25% in relation to total system interactions, which are mostly electrostatic. The proposed strategy opens up a new pathway for biomedical applications because the control of the chemical linkage can be directly performed on the nanoparticle surface without using any molecular intermediate, which may improve the encapsulation efficiency on drug delivery therapies. (C) 2019 Elsevier B.V. All tights reserved.
机译:介绍了一种通过在一步中使用交联剂在裸金纳米粒子(AUNP)表面上的生物分子的共价固定方法的新方法的发展。一种非常相容的生物聚合物,如壳聚糖已被用作靶分子,以探讨所提出的方法的生存能力。单击化学,基于生物相容性反应和与1-乙基-3-(3-二甲基氨基丙基)碳二亚胺盐酸酯和N-羟基琥珀酰亚胺偶联,允许分析金属纳米颗粒和生物聚合物之间的共价相互作用。光谱碎片卷积技术和Zeta电位测量证实了共价相互作用。本研究允许量化共价粘附到壳聚糖的剖腹产的比例,这取决于溶液pH。得到的结果表明,与总系统相互作用的共价相互作用可以增加高达25%,这主要是静电的。所提出的策略为生物医学应用开辟了一种新的途径,因为化学键的控制可以在纳米颗粒表面上直接进行而不使用任何分子中间体,这可以改善药物递送疗法的包封效率。 (c)2019年Elsevier B.V.保留所有紧身裤。

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