Laboratory of Analytical Chemistry, Department of Biological and Environmental Sciences and Technologies (Di.S.Te.B.A.), University of Salento, via Monteroni, 73100, Lecce, Italy.
Anal Bioanal Chem. 2022 Jul;414(18):5165-5200. doi: 10.1007/s00216-022-03981-0. Epub 2022 Mar 12.
Looking at the literature focused on molecularly imprinted polymers (MIPs) for protein, it soon becomes apparent that a remarkable increase in scientific interest and exploration of new applications has been recorded in the last several years, from 42 documents in 2011 to 128 just 10 years later, in 2021 (Scopus, December 2021). Such a rapid threefold increase in the number of works in this field is evidence that the imprinting of macromolecules no longer represents a distant dream of optimistic imprinters, as it was perceived until only a few years ago, but is rapidly becoming an ever more promising and reliable technology, due to the significant achievements in the field. The present critical review aims to summarize some of them, evidencing the aspects that have contributed to the success of the most widely used strategies in the field. At the same time, limitations and drawbacks of less frequently used approaches are critically discussed. Particular focus is given to the use of a MIP for protein in the assembly of electrochemical sensors. Sensor design indeed represents one of the most active application fields of imprinting technology, with electrochemical MIP sensors providing the broadest spectrum of protein analytes among the different sensor configurations.
查看专注于分子印迹聚合物 (MIP) 的蛋白质文献,很快就会发现,近年来对新应用的科学兴趣和探索显著增加,从 2011 年的 42 篇文献增加到仅 10 年后的 2021 年的 128 篇(Scopus,2021 年 12 月)。该领域的作品数量如此迅速地增加了三倍,这表明对大分子的印迹不再代表乐观印迹者几年前认为的遥远梦想,而是由于该领域的重大成就,正在迅速成为一种越来越有前途和可靠的技术。本批判性评论旨在总结其中的一些,证明有助于该领域最广泛使用策略成功的方面。同时,还批判性地讨论了较少使用的方法的局限性和缺点。特别关注 MIP 在电化学传感器组装中的蛋白质应用。传感器设计确实代表印迹技术最活跃的应用领域之一,电化学 MIP 传感器在不同的传感器配置中提供了最广泛的蛋白质分析物谱。