Department of Applied Chemistry, Graduate School of Engineering, Osaka Prefecture University, 1-2, Gakuencho, Nakaku, Sakai, Osaka, 599-8570, Japan.
Research Institute for Light-induced Acceleration System (RILACS), Osaka Prefecture University, 1-2 Gakuen-cho, Naka-ku, Sakai, Osaka, 599-8570, Japan.
Sci Rep. 2017 Nov 30;7(1):16651. doi: 10.1038/s41598-017-15086-1.
Molecular imprinting technique enables the selective binding of nanoscale target molecules to a polymer film, within which their chemical structure is transcribed. Here, we report the successful production of mixed bacterial imprinted film (BIF) from several food poisoning bacteria by the simultaneous imprinting of their nanoscale surface chemical structures (SCS), and provide highly selective trapping of original micron-scale bacteria used in the production process of mixed BIF even for multiple kinds of bacteria in real samples. Particularly, we reveal the rapid specific identification of E. coli group serotypes (O157:H7 and O26:H11) using an alternating electric field and a quartz crystal microbalance. Furthermore, we have performed the detailed physicochemical analysis of the specific binding of SCS and molecular recognition sites (MRS) based on the dynamic Monte Carlo method under taking into account the electromagnetic interaction. The dielectrophoretic selective trapping greatly depends on change in SCS of bacteria damaged by thermal treatment, ultraviolet irradiation, or antibiotic drugs, which can be well explained by the simulation results. Our results open the avenue for an innovative means of specific and rapid detection of unknown bacteria for food safety and medicine from a nanoscale viewpoint.
分子印迹技术使纳米级目标分子能够选择性地结合到聚合物薄膜上,其化学结构被转录。在这里,我们报告了通过同时印迹几种食源性致病菌的纳米级表面化学结构(SCS),成功地制备了混合细菌印迹膜(BIF),即使对于实际样品中的多种细菌,也能高度选择性地捕获混合 BIF 生产过程中使用的原始微米级细菌。特别地,我们揭示了使用交变电场和石英晶体微天平快速特异性鉴定大肠杆菌组血清型(O157:H7 和 O26:H11)。此外,我们还基于动态蒙特卡罗方法,考虑到电磁相互作用,对基于 SCS 的分子识别位点(MRS)的特异性结合进行了详细的物理化学分析。介电泳选择性捕获在很大程度上取决于经热处理、紫外线照射或抗生素药物破坏的细菌的 SCS 的变化,这可以通过模拟结果很好地解释。我们的结果为从纳米尺度上创新的特定和快速检测食品安全和医药未知细菌的方法开辟了道路。