Lowdon Joseph W, Diliën Hanne, Singla Pankaj, Peeters Marloes, Cleij Thomas J, van Grinsven Bart, Eersels Kasper
Sensor Engineering Department, Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, the Netherlands.
Department of Chemistry, UGC-Centre for advanced studies-1, Guru Nanak Dev University, Amritsar 143005, India.
Sens Actuators B Chem. 2020 Dec 15;325:128973. doi: 10.1016/j.snb.2020.128973. Epub 2020 Sep 30.
Molecularly imprinted polymers (MIPs) have emerged over the past few decades as interesting synthetic alternatives due to their long-term chemical and physical stability and low-cost synthesis procedure. They have been integrated into many sensing platforms and assay formats for the detection of various targets, ranging from small molecules to macromolecular entities such as pathogens and whole cells. Despite the advantages MIPs have over natural receptors in terms of commercialization, the striking success stories of biosensor applications such as the glucose meter or the self-test for pregnancy have not been matched by MIP-based sensor or detection kits yet. In this review, we zoom in on the commercial potential of MIP technology and aim to summarize the latest developments in their commercialization and integration into sensors and assays with high commercial potential. We will also analyze which bottlenecks are inflicting with commercialization and how recent advances in commercial MIP synthesis could overcome these obstacles in order for MIPs to truly achieve their commercial potential in the near future.
在过去几十年中,分子印迹聚合物(MIPs)作为一种有趣的合成替代品出现了,这得益于其长期的化学和物理稳定性以及低成本的合成过程。它们已被集成到许多传感平台和检测形式中,用于检测各种目标,从小分子到病原体和全细胞等大分子实体。尽管MIPs在商业化方面比天然受体具有优势,但基于MIP的传感器或检测试剂盒尚未能与血糖仪或妊娠自检等生物传感器应用的显著成功案例相媲美。在本综述中,我们聚焦于MIP技术的商业潜力,旨在总结其商业化以及集成到具有高商业潜力的传感器和检测方法中的最新进展。我们还将分析哪些瓶颈阻碍了商业化,以及商业MIP合成的最新进展如何克服这些障碍,以便MIPs在不久的将来真正实现其商业潜力。