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Strategies for interfacing inorganic nanocrystals with biological systems based on polymer-coating

机译:基于聚合物涂层的无机纳米晶体与生物系统对接的策略

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Interfacing inorganic nanoparticles and biological systems with the aim of developing novel imaging and sensing platforms has generated great interest and much activity. However, the effectiveness of this approach hinges on the ability of the surface ligands to promote water-dispersion of the nanoparticles with long term colloidal stability in buffer media. These surface ligands protect the nanostructures from the harsh biological environment, while allowing coupling to target molecules, which can be biological in nature (e.g., proteins and peptides) or exhibit specific photo-physical characteristics (e. g., a dye or a redox-active molecule). Amphiphilic block polymers have provided researchers with versatile molecular platforms with tunable size, composition and chemical properties. Hence, several groups have developed a wide range of polymers as ligands or micelle capsules to promote the transfer of a variety of inorganic nanomaterials to buffer media (including magnetic nanoparticles and semiconductor nanocrystals) and render them biocompatible. In this review, we first summarize the established synthetic routes to grow high quality nanocrystals of semiconductors, metals and metal oxides. We then provide a critical evaluation of the recent developments in the design, optimization and use of various amphiphilic copolymers to surface functionalize the above nanocrystals, along with the strategies used to conjugate them to target biomolecules. We finally conclude by providing a summary of the most promising applications of these polymer-coated inorganic platforms in sensor design, and imaging of cells and tissues.
机译:以开发新型的成像和传感平台为目标的无机纳米粒子和生物系统的接口引起了极大的兴趣和许多活动。但是,这种方法的有效性取决于表面配体在缓冲介质中具有长期胶体稳定性的情况下促进纳米颗粒水分散的能力。这些表面配体可保护纳米结构免受恶劣的生物环境的侵害,同时允许与目标分子偶联,这些目标分子可以是自然界中的生物(例如蛋白质和肽)或表现出特定的光物理特性(例如染料或氧化还原活性分子) )。两亲性嵌段聚合物为研究人员提供了具有可调大小,组成和化学性质的多功能分子平台。因此,几组研究人员开发了各种各样的聚合物作为配体或胶束胶囊,以促进多种无机纳米材料向缓冲介质(包括磁性纳米颗粒和半导体纳米晶体)的转移,并使它们具有生物相容性。在这篇综述中,我们首先总结了已建立的合成路线,以生长半导体,金属和金属氧化物的高质量纳米晶体。然后,我们提供了对设计,优化和使用各种两亲性共聚物对上述纳米晶体进行表面功能化的最新进展的重要评估,以及用于将它们缀合至目标生物分子的策略。最后,我们总结了这些聚合物涂层的无机平台在传感器设计以及细胞和组织成像中最有希望的应用。

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