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Photoresponsive Cucurbit[8]uril-Mediated Adhesion of Bacteria on Supported Lipid Bilayers

机译:光响应葫芦[8]尿介导的细菌在支持的脂质双层上的粘附。

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In this work, the development of a photoresponsive platform for the presentation of bioactive ligands to study receptor-ligand interactions has been described. For this purpose, supramolecular host-guest chemistry and supported lipid bilayers (SLBs) have been combined in a microfluidic device. Quartz crystal microbalance with dissipation monitoring (QCM-D) studies on methyl viologen (MV)-functionalized oligo ethylene glycol-based self-assembled monolayers, gel and liquid-state SLBs have been compared for their nonfouling properties in the case of ConA and bacteria. In combination with bacterial adhesion test, negligible nonspecific bacterial adhesion is observed only in the case of methyl-viologen-modified liquid-state SLBs. Therefore, liquid-state SLBs have been identified as most suitable for studying specific cell interactions when MV is incorporated as a guest on the surface. The photoswitchable supramolecular ternary complex is formed by assembling cucurbit[8]uril (CB[ 8]) and an azobenzene-mannose conjugate (Azo-Man) onto MV-functionalized liquid-state SLBs and the assembly process has been characterized using QCM-D and fluorescence techniques. Mannose has been found to enable binding of E. coli via cell-surface receptors on the nonfouling supramolecular SLBs. Optical switching of the azobenzene moiety allows us to "erase" the bioactive surface after bacterial binding, providing the potential to develop reusable sensors. Localized photorelease of bacterial cells has also been shown indicating the possibility of optically guiding cellular growth, migration, and intercellular interactions.
机译:在这项工作中,已经描述了用于呈现生物活性配体以研究受体-配体相互作用的光响应平台的开发。为了这个目的,超分子主客体化学和支持的脂质双层(SLB)已经被组合在微流体装置中。带有耗散监测(QCM-D)的石英晶体微天平对甲基紫精(MV)-官能化的基于寡聚乙二醇的自组装单层,凝胶和液态SLB的研究表明,在ConA和细菌的情况下,它们的无污垢性能得到了比较。与细菌附着力测试相结合,仅在甲基紫精修饰的液态SLB中观察到微不足道的非特异性细菌附着力。因此,当将MV作为客体掺入表面时,液态SLB被认为最适合研究特定的细胞相互作用。通过将葫芦[8] uril(CB [8])和偶氮苯-甘露糖共轭物(Azo-Man)组装到MV功能化的液态SLB上来形成可光转换的超分子三元复合物,并使用QCM-D对组装过程进行了表征和荧光技术。已经发现甘露糖能够通过无污垢超分子SLB上的细胞表面受体结合大肠杆菌。偶氮苯部分的光学转换使我们能够在细菌结合后“擦除”生物活性表面,为开发可重复使用的传感器提供了潜力。还显示了细菌细胞的局部光释放,表明有光学指导细胞生长,迁移和细胞间相互作用的可能性。

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