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聚合物刷在纳米颗粒上用于控制与富含蛋白质的生理介质的相互作用。

Polymer Brushes on Nanoparticles for Controlling the Interaction with Protein-Rich Physiological Media.

机构信息

Laboratory for Macromolecular and Organic Chemistry (MOC), Department of Chemical Sciences, University of Padova, Via Marzolo 1, 35131 Padova, Italy.

出版信息

Langmuir. 2024 Jun 11;40(23):11843-11857. doi: 10.1021/acs.langmuir.4c00956. Epub 2024 May 24.

Abstract

The interaction of nanoparticles (NPs) with biological environments triggers the formation of a protein corona (PC), which significantly influences their behavior . This review explores the evolving understanding of PC formation, focusing on the opportunity for decreasing or suppressing protein-NP interactions by macromolecular engineering of NP shells. The functionalization of NPs with a dense, hydrated polymer brush shell is a powerful strategy for imparting stealth properties in order to elude recognition by the immune system. While poly(ethylene glycol) (PEG) has been extensively used for this purpose, concerns regarding its stability and immunogenicity have prompted the exploration of alternative polymers. The stealth properties of brush shells can be enhanced by tailoring functionalities and structural parameters, including the molar mass, grafting density, and polymer topology. Determining correlations between these parameters and biopassivity has enabled us to obtain polymer-grafted NPs with high colloidal stability and prolonged circulation time in biological media.

摘要

纳米粒子(NPs)与生物环境的相互作用会触发蛋白质冠(PC)的形成,这会显著影响它们的行为。本综述探讨了对 PC 形成的不断发展的认识,重点介绍了通过 NP 壳的大分子工程来减少或抑制蛋白质-NP 相互作用的机会。用致密的水合聚合物刷壳对 NPs 进行功能化是赋予隐身特性的有效策略,以便逃避免疫系统的识别。虽然聚乙二醇(PEG)已被广泛用于此目的,但对其稳定性和免疫原性的担忧促使人们探索替代聚合物。通过调整功能和结构参数(包括摩尔质量、接枝密度和聚合物拓扑结构)可以增强刷壳的隐身特性。确定这些参数与生物惰性之间的相关性使我们能够获得具有高胶体稳定性和在生物介质中延长循环时间的聚合物接枝 NPs。

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