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通过结合 RAFT 聚合和 Au-巯基化学制备生物样品兼容的含 Au 纳米粒子的荧光分子印迹聚合物微球。

Biological sample-compatible Au nanoparticle-containing fluorescent molecularly imprinted polymer microspheres by combining RAFT polymerization and Au-thiol chemistry.

机构信息

State Key Laboratory of Medicinal Chemical Biology, Key Laboratory of Functional Polymer Materials (Ministry of Education), Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), and College of Chemistry, Nankai University, Tianjin 300071, China.

出版信息

J Mater Chem B. 2022 Sep 15;10(35):6673-6681. doi: 10.1039/d2tb00179a.

Abstract

The development of biological sample-compatible fluorescent molecularly imprinted polymers (MIPs) with more functions and/or improved performance is of great importance for various bioanalytical and biomedical applications, but remains challenging. Herein, we report on a versatile strategy for preparing well-defined hydrophilic gold (Au) nanoparticle (AuNP)-containing fluorescent MIP microspheres capable of directly optosensing folic acid (FA) in undiluted urine samples and study of the effect of the incorporated AuNPs on their optosensing sensitivity. Such advanced functional fluorescent MIP particles were readily prepared by combining RAFT polymerization (including RAFT precipitation polymerization and surface-initiated RAFT polymerization) and Au-thiol chemistry [including successive attachment of AuNPs and a thiol-terminated poly(2-hydroxyethyl methacrylate) onto MIP particles after aminolysis of their surface dithioester into thiol groups]. They showed "turn-on" fluorescence and high optosensing selectivity and sensitivity toward FA in the undiluted urine sample (detection limit = 0.088 μM). They also exhibited outstanding photostability and reusability and could directly quantify FA in another undiluted urine sample with good recoveries (96.3-101.6%) and high accuracy (RSD = 0.6-3.1%), even in the presence of several interferents. Unfortunately, the incorporated AuNPs did not improve the optosensing sensitivity of AuNP-containing fluorescent MIPs. Nevertheless, introducing AuNPs onto the surfaces of fluorescent MIPs not only provides an effective new way for grafting with hydrophilic polymer brushes, but it also can endow them with certain new functions [, surface-enhanced Raman scattering (SERS)], thus making them highly promising as both efficient optosensors and potential SERS sensors for rapid FA detection in applications such as clinical diagnostics and food analyses.

摘要

发展具有更多功能和/或改进性能的生物样品兼容荧光分子印迹聚合物(MIP)对于各种生物分析和生物医学应用非常重要,但仍然具有挑战性。在此,我们报告了一种通用策略,用于制备具有良好定义的亲水性金(Au)纳米粒子(AuNP)的荧光 MIP 微球,这些微球能够直接在未稀释的尿样中光学检测叶酸(FA),并研究了掺入的 AuNPs 对其光学检测灵敏度的影响。通过结合 RAFT 聚合(包括 RAFT 沉淀聚合和表面引发的 RAFT 聚合)和 Au-硫醇化学(包括在表面二硫酯氨解成硫醇基团后,将 AuNP 和巯基封端的聚(2-羟乙基甲基丙烯酸酯)连续接枝到 MIP 颗粒上),可以很容易地制备这种先进的功能荧光 MIP 颗粒。它们在未稀释的尿样中对 FA 表现出“开启”荧光和高光学选择性和灵敏度(检测限=0.088μM)。它们还表现出出色的光稳定性和可重复使用性,并且可以直接在另一个未稀释的尿样中定量 FA,回收率良好(96.3-101.6%),准确性高(RSD=0.6-3.1%),即使存在几种干扰物也是如此。不幸的是,掺入的 AuNPs 并没有提高含 AuNP 的荧光 MIP 的光学检测灵敏度。尽管如此,将 AuNPs 引入荧光 MIP 的表面不仅提供了一种有效方法来接枝亲水性聚合物刷,而且还可以赋予它们某些新的功能[表面增强拉曼散射(SERS)],从而使它们非常有希望成为高效的光学传感器和潜在的 SERS 传感器,可用于快速 FA 检测在临床诊断和食品分析等应用中。

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