From Prevention to Diagnosis and Treatment: Biomedical Applications of Metal Nanoparticle-Hydrogel Composites

Aaron J. Clasky, Jeffrey Watchorn, Paul Z. Chen, F. Gu
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引用次数: 42

Abstract

Recent advances in biomaterials integrate metal nanoparticles with hydrogels to generate composite materials that exhibit new or improved properties. By precisely controlling the composition, arrangement and interactions of their constituents, these hybrid materials facilitate biomedical applications through myriad approaches. In this work we seek to highlight three popular frameworks for designing metal nanoparticle-hydrogel hybrid materials for biomedical applications. In the first approach, the properties of metal nanoparticles are incorporated into a hydrogel matrix such that the composite is selectively responsive to stimuli such as light and magnetic flux, enabling precisely activated therapeutics and self-healing biomaterials. The second approach mediates the dynamic reorganization of metal nanoparticles based on environment-directed changes in hydrogel structure, leading to chemosensing, microbial and viral detection, and drug-delivery capabilities. In the third approach, the hydrogel matrix spatially arranges metal nanoparticles to produce metamaterials or passively enhance nanoparticle properties to generate improved substrates for biomedical applications including tissue engineering and wound healing. This article reviews the construction, properties and biomedical applications of metal nanoparticle-hydrogel composites, with a focus on how they help to prevent, diagnose and treat diseases. Discussion includes how the composites lead to new or improved properties, how current biomedical research leverages these properties and the emerging directions in this growing field.
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从预防到诊断和治疗:金属纳米颗粒-水凝胶复合材料的生物医学应用
生物材料的最新进展是将金属纳米颗粒与水凝胶结合在一起,产生具有新的或改进的性能的复合材料。通过精确控制其成分的组成、排列和相互作用,这些混合材料通过无数的方法促进了生物医学应用。在这项工作中,我们试图强调设计用于生物医学应用的金属纳米颗粒-水凝胶混合材料的三种流行框架。在第一种方法中,将金属纳米颗粒的特性整合到水凝胶基质中,使得复合材料对诸如光和磁通量等刺激有选择性地响应,从而实现精确激活治疗和自愈生物材料。第二种方法是基于水凝胶结构的环境导向变化介导金属纳米颗粒的动态重组,从而实现化学感应、微生物和病毒检测以及药物递送能力。在第三种方法中,水凝胶基质在空间上排列金属纳米颗粒来产生超材料或被动增强纳米颗粒的特性,以产生用于生物医学应用的改进底物,包括组织工程和伤口愈合。本文综述了金属纳米颗粒-水凝胶复合材料的结构、性能及其在生物医学上的应用,重点介绍了金属纳米颗粒-水凝胶复合材料在疾病预防、诊断和治疗方面的应用。讨论包括复合材料如何导致新的或改进的性能,当前的生物医学研究如何利用这些性能以及这个不断发展的领域的新兴方向。
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