Lamaoui Abderrahman, Lahcen Abdellatif Ait, Amine Aziz
Process Engineering and Environment Lab, Chemical Analysis & Biosensors Group, Faculty of Science and Techniques, Hassan II University of Casablanca, B.P. 146, Mohammedia 28806, Morocco.
Weill Cornell Medicine, Cornell University, New York, NY 10021, USA.
Polymers (Basel). 2023 Sep 9;15(18):3712. doi: 10.3390/polym15183712.
Molecularly imprinted polymers (MIPs) are synthetic receptors that mimic the specificity of biological antibody-antigen interactions. By using a "lock and key" process, MIPs selectively bind to target molecules that were used as templates during polymerization. While MIPs are typically prepared using conventional monomers, such as methacrylic acid and acrylamide, contemporary advancements have pivoted towards the functional potential of dopamine as a novel monomer. The overreaching goal of the proposed review is to fully unlock the potential of molecularly imprinted polydopamine (MIPda) within the realm of cutting-edge sensing applications. This review embarks by shedding light on the intricate tapestry of materials harnessed in the meticulous crafting of MIPda, endowing them with tailored properties. Moreover, we will cover the diverse sensing applications of MIPda, including its use in the detection of ions, small molecules, epitopes, proteins, viruses, and bacteria. In addition, the main synthesis methods of MIPda, including self-polymerization and electropolymerization, will be thoroughly examined. Finally, we will examine the challenges and drawbacks associated with this research field, as well as the prospects for future developments. In its entirety, this review stands as a resolute guiding compass, illuminating the path for researchers and connoisseurs alike.
分子印迹聚合物(MIPs)是模拟生物抗体 - 抗原相互作用特异性的合成受体。通过“锁钥”过程,MIPs选择性地结合在聚合过程中用作模板的目标分子。虽然MIPs通常使用常规单体(如甲基丙烯酸和丙烯酰胺)制备,但当代的进展已转向多巴胺作为新型单体的功能潜力。拟议综述的总体目标是在前沿传感应用领域充分释放分子印迹聚多巴胺(MIPda)的潜力。本综述首先阐述了在精心制备MIPda过程中所使用材料的复杂网络,赋予它们特定的性质。此外,我们将涵盖MIPda的各种传感应用,包括其在离子、小分子、表位、蛋白质、病毒和细菌检测中的应用。此外,将全面研究MIPda的主要合成方法,包括自聚合和电聚合。最后,我们将审视与该研究领域相关的挑战和缺点,以及未来发展的前景。总体而言,本综述是一个坚定的指导指南,为研究人员和行家照亮道路。