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Functionalization of DNA-Dendron Supramolecular Fibers and Application in Regulation of Escherichia coli Association

机译:DNA-树枝状超分子纤维的功能化及其在大肠杆菌协会调控中的应用

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摘要

Specific carbohydrate recognition in biology is a dynamic process. Thus, supramolecular multivalent scaffolds with dynamic features have been applied to mimic this process. Herein, we prepared DNA-dendron supramolecular fibers and synthesized carbohydrate-oligonucleotide conjugates (C18-mannose). Via DNA hybridization, the C18-mannose could be guided onto the fiber platform and form multiple mannose-functionalized fibers, which can be utilized to agglutinate E. coli because of high affinity among multivalent mannose ligands and receptors on E. coli. In addition, via chain exchange reaction of DNAs, the E. coli could be dissociated by replacing multivalent mannose ligands with competitive unmodified DNA sequences. The association and dissociation processes of E. coli are confirmed by fluorescent microscope and transmission electron microscope (TEM). These results not only demonstrate the ability of DNA-dendron fibers in reversibly associating E. coli but also illustrate their potential to be an easily modified multivalent supramolecular platform.
机译:生物学中特定碳水化合物的识别是一个动态过程。因此,具有动态特征的超分子多价支架已被应用于模拟该过程。在这里,我们准备了DNA-树突超分子纤维,并合成了碳水化合物-寡核苷酸共轭物(C18-甘露糖)。通过DNA杂交,可以将C18-甘露糖引导到纤维平台上,并形成多个甘露糖官能化的纤维,由于大肠杆菌中多价甘露糖配体和受体之间的亲和力高,因此可用于凝集大肠杆菌。另外,通过DNA的链交换反应,可以通过用竞争性未修饰的DNA序列代替多价甘露糖配体来分离大肠杆菌。大肠杆菌的缔合和解离过程通过荧光显微镜和透射电子显微镜(TEM)得以证实。这些结果不仅证明了DNA-树枝状纤维可逆地结合大肠杆菌的能力,而且表明了它们成为易于修饰的多价超分子平台的潜力。

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