利用分子印迹纳米粒子提升电化学传感性能

Biosensors Pub Date : 2024-07-22 DOI:10.3390/bios14070358
Francesco Gagliani, Tiziano Di Giulio, Muhammad Ibrar Asif, Cosimino Malitesta, Elisabetta Mazzotta
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引用次数: 0

摘要

分子印迹聚合物纳米粒子(nanoMIPs)结合了印迹聚合物的卓越识别能力和与纳米尺寸有关的特殊性质,如高表面体积比,从而产生了具有表面暴露结合位点的高性能识别元件,促进了与目标的相互作用,进而提高了结合动力学。目前有不同的合成策略来生产纳米 MIPs,可以根据单体/模板的性质选择特定的条件,更重要的是可以调整纳米粒子的大小。优异的传感特性,加上适用于不同目标的尺寸、可调谐性和合成方案的灵活性,使得纳米 MIPs 在传感器、成像和药物输送等多个领域得到广泛应用。本综述总结了纳米 MIPs 在传感器中的应用,尤其侧重于电化学检测,纳米 MIPs 在这方面的应用最为广泛。在对最广泛采用的纳米 MIP 合成方法进行总体调查之后,将讨论印迹纳米粒子与电化学传感器的整合,这是实现可靠、稳定的传感器响应的关键步骤。此外,还将对电化学信号的产生机制进行比较,并说明基于纳米 MIP 的电化学传感器在多个应用领域的应用情况。介绍了基于纳米 MIP 的电化学传感器的巨大潜力,并讨论了仍然限制其商业化的可能原因,以及将电化学传感和纳米 MIPs 结合到日益广泛的日常使用技术中需要解决的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Boosting Electrochemical Sensing Performances Using Molecularly Imprinted Nanoparticles
Nanoparticles of molecularly imprinted polymers (nanoMIPs) combine the excellent recognition ability of imprinted polymers with specific properties related to the nanosize, such as a high surface-to-volume ratio, resulting in highly performing recognition elements with surface-exposed binding sites that promote the interaction with the target and, in turn, binding kinetics. Different synthetic strategies are currently available to produce nanoMIPs, with the possibility to select specific conditions in relation to the nature of monomers/templates and, importantly, to tune the nanoparticle size. The excellent sensing properties, combined with the size, tunability, and flexibility of synthetic protocols applicable to different targets, have enabled the widespread use of nanoMIPs in several applications, including sensors, imaging, and drug delivery. The present review summarizes nanoMIPs applications in sensors, specifically focusing on electrochemical detection, for which nanoMIPs have been mostly applied. After a general survey of the most widely adopted nanoMIP synthetic approaches, the integration of imprinted nanoparticles with electrochemical transducers will be discussed, representing a key step for enabling a reliable and stable sensor response. The mechanisms for electrochemical signal generation will also be compared, followed by an illustration of nanoMIP-based electrochemical sensor employment in several application fields. The high potentialities of nanoMIP-based electrochemical sensors are presented, and possible reasons that still limit their commercialization and issues to be resolved for coupling electrochemical sensing and nanoMIPs in an increasingly widespread daily-use technology are discussed.
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