首页> 外文期刊>Chemistry: A European journal >Copper-catalyzed azide-alkyne cycloaddition in the synthesis of polydiacetylene: 'click glycoliposome' as biosensors for the specific detection of lectins
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Copper-catalyzed azide-alkyne cycloaddition in the synthesis of polydiacetylene: 'click glycoliposome' as biosensors for the specific detection of lectins

机译:聚二乙炔合成中铜催化的叠氮化物-炔烃环加成反应:“点击糖脂质体”作为生物传感器特异性检测凝集素

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摘要

Supramolecular self-assembly of conjugated diacetylenic amphiphile-tethered ligands photopolymerize to afford polydiacetylene (PDA) functional liposomes. Upon specific interaction with a variety of biological analytes in aqueous solution, PDA exhibits rapid colorimetric transitions. The PDA nanoassemblies, which are excellent membrane mimics, include an ene-yne polymeric reporter responsible for the chromatic transitions and the molecular recognition elements that are responsible for selective and specific binding to the biological target. A bottleneck in the fabrication of these colorimetric biosensors is the preparation of the diacetylenic monomer embedded with the recognition element of choice. In the present work, we make use of copper-catalyzed azide-alkyne cycloaddition (CuAAC) as key step in the preparation of sugar-coated liposome biosensors. The regioselective click ligation of the triacetylenic N-(2-propynyl)pentacosa-10,12-diynamide (NPPCDAM) with a variety of mannose-and lactose-tethered azides afforded chemo-and regioselectively the corresponding 1,2,3-triazole. The obtained diacetylenic monomers were incorporated efficiently into vesicles to afford functional mannose-and lactose-coated glycoliposomes. The obtained PDA-based click glycoliposomes have been characterized by using transmission electronic microscopy (TEM), dynamic light scattering (DLS), and UV/Vis spectroscopy. The efficiency of the reported approach was demonstrated by the rapid optimization of the hydrophilic spacer between the lipidic matrix and the mannose head group for the colorimetric detection of Concavalina A.
机译:共轭二炔两亲物系配体的超分子自组装光聚合得到聚二乙炔(PDA)功能脂质体。与水溶液中的各种生物分析物发生特异性相互作用后,PDA表现出快速的比色转换。 PDA纳米组件是出色的膜模拟物,它包括负责颜色过渡的ene-yne聚合物报告分子和负责选择性和特异性结合生物靶标的分子识别元件。这些比色生物传感器制造中的一个瓶颈是制备嵌入了所选识别元件的二炔单体。在目前的工作中,我们利用铜催化的叠氮化物-炔烃环加成(CuAAC)作为制备糖衣脂质体生物传感器的关键步骤。三炔N-(2-丙炔基)戊酸-10,12-二炔酰胺(NPPCDAM)与多种甘露糖和乳糖连接的叠氮化物的区域选择性点击连接提供了化学和区域选择性的相应的1,2,3-三唑。将获得的二炔单体有效地掺入囊泡中,以提供功能性甘露糖和乳糖包被的糖脂质体。通过使用透射电子显微镜(TEM),动态光散射(DLS)和UV / Vis光谱对获得的基于PDA的点击型糖脂质体进行了表征。快速优化脂基质和甘露糖头基之间的亲水间隔基用于比卡瓦利纳A的比色检测,证明了所报道方法的效率。

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