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首页> 外文期刊>Advanced Functional Materials >Functional hydrogel surfaces: Binding kinesin-based molecular motor proteins to selected patterned sites
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Functional hydrogel surfaces: Binding kinesin-based molecular motor proteins to selected patterned sites

机译:功能性水凝胶表面:将基于驱动蛋白的分子运动蛋白结合到选定的图案位置

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Hydrogel microstructures with micrometer-scale topography and controllable functionality have great potential for numerous nanobiotechnology applications including, for example, three-dimensional structures that exhibit controlled interactions with proteins and cells. Taking advantage of the strong affinity of histidine (His) residues for metal-ion-nitrilotriacetic acid (NTA) complexes, we have chemically modified hydrogels to enable protein immobilization with retention of activity by incorporating 2-methacrylamidobutyl nitrilotriacetic acid, an NTA-containing monomer that can be copolymerized with a series of monomers to form NTA-containing hydrogels. By varying the NTA-monomer composition in the hydrogels, it is possible to control the amount of protein bound to the hydrogel surface. The retention of biological activity was demonstrated by microtubule gliding assays. Normally, hydrogels are resistant to protein binding, but we have selected these materials because of their porous nature. Bringing together hydrogel functionalization and soft-lithography patterning techniques, it was possible to create a hybrid hydrogel superstructure that possesses binding specificity to His-tagged protein in selected sites. This type of surface and microstructure is not only advantageous for motor protein integration, but it can also be generally applied to the formation of His-tagged molecules for sensors and biochip applications.
机译:具有微米级形貌和可控功能的水凝胶微结构在许多纳米生物技术应用中具有巨大潜力,包括例如表现出与蛋白质和细胞相互作用的三维结构。利用组氨酸(His)残基对金属离子-三硝基三乙酸(NTA)配合物的强亲和力,我们进行了化学修饰的水凝胶,通过结合2-甲基丙烯酰胺基丁基次氮基三乙酸(一种含NTA的单体)来固定蛋白质并保持活性可以与一系列单体共聚形成含NTA的水凝胶。通过改变水凝胶中的NTA-单体组成,可以控制结合到水凝胶表面的蛋白质的量。通过微管滑动试验证明了生物活性的保留。通常,水凝胶对蛋白质结合具有抵抗力,但由于其多孔性质,我们选择了这些材料。将水凝胶功能化和软光刻图案技术结合在一起,就有可能创建一种杂化水凝胶超结构,该结构在选定位点具有与His标记的蛋白质的结合特异性。这种类型的表面和微观结构不仅有利于运动蛋白整合,而且还可以普遍应用于传感器和生物芯片应用中带有His标签的分子的形成。

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