Ramanavicius Simonas, Jagminas Arunas, Ramanavicius Arunas
Department of Electrochemical Material Science, State Research Institute Center for Physical Sciences and Technology (FTMC), Sauletekio av. 3, LT-10257 Vilnius, Lithuania.
Department of Physical Chemistry, Faculty of Chemistry and Geosciences, Institute of Chemistry, Vilnius University, Naugarduko 24, LT-03225 Vilnius, Lithuania.
Polymers (Basel). 2021 Mar 22;13(6):974. doi: 10.3390/polym13060974.
Recent challenges in biomedical diagnostics show that the development of rapid affinity sensors is very important issue. Therefore, in this review we are aiming to outline the most important directions of affinity sensors where polymer-based semiconducting materials are applied. Progress in formation and development of such materials is overviewed and discussed. Some applicability aspects of conducting polymers in the design of affinity sensors are presented. The main attention is focused on bioanalytical application of conducting polymers such as polypyrrole, polyaniline, polythiophene and poly(3,4-ethylenedioxythiophene) ortho-phenylenediamine. In addition, some other polymers and inorganic materials that are suitable for molecular imprinting technology are also overviewed. Polymerization techniques, which are the most suitable for the development of composite structures suitable for affinity sensors are presented. Analytical signal transduction methods applied in affinity sensors based on polymer-based semiconducting materials are discussed. In this review the most attention is focused on the development and application of molecularly imprinted polymer-based structures, which can replace antibodies, receptors, and many others expensive affinity reagents. The applicability of electrochromic polymers in affinity sensor design is envisaged. Sufficient biocompatibility of some conducting polymers enables to apply them as "stealth coatings" in the future implantable affinity-sensors. Some new perspectives and trends in analytical application of polymer-based semiconducting materials are highlighted.
生物医学诊断领域最近面临的挑战表明,快速亲和传感器的开发是一个非常重要的问题。因此,在本综述中,我们旨在概述应用基于聚合物的半导体材料的亲和传感器的最重要发展方向。综述并讨论了此类材料形成与发展的进展。介绍了导电聚合物在亲和传感器设计中的一些应用方面。主要关注导电聚合物如聚吡咯、聚苯胺、聚噻吩和聚(3,4-乙撑二氧噻吩)邻苯二胺的生物分析应用。此外,还概述了一些适用于分子印迹技术的其他聚合物和无机材料。介绍了最适合开发适用于亲和传感器的复合结构的聚合技术。讨论了基于聚合物半导体材料的亲和传感器中应用的分析信号转导方法。在本综述中,最受关注的是基于分子印迹聚合物的结构的开发与应用,其可替代抗体、受体及许多其他昂贵的亲和试剂。设想了电致变色聚合物在亲和传感器设计中的适用性。一些导电聚合物具有足够的生物相容性,使其未来可作为可植入亲和传感器的“隐形涂层”应用。突出了基于聚合物的半导体材料分析应用中的一些新观点和趋势。