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Zwitterionic Polymer-Based Platform with Two-Layer Architecture for Ultra Low Fouling and High Protein Loading

机译:基于两性离子聚合物的两层架构平台,可实现超低污染和高蛋白负载

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摘要

High resistance to nonspecific adsorption typically accompanies loss of binding capacity and vice versa for many surface coatings and applications. In this study, a zwitterionic polycarboxybetaine acrylamide (pCB)-based binding platform with a "two-layer" structure for ultra low fouling and high protein loading properties was developed. The first pCB layer with a high packing density prepared under a water-free condition serves as a protective layer to resist nonspecific adsorption from complex media. The second pCB layer with a low packing density is used to achieve high protein binding capacity. Amounts of tetraethylthiuram disulfide (TED) and water in the reaction were varied to regulate the packing density and chain length of polymers, respectively, for the second pCB layer. The in situ modification of pCB films with antihuman thyroid stimulating hormone (TSH) IgG molecules and the detection of TSH antigens were employed to demonstrate high protein immobilization and high antigen detection capabilities of this "two-layer" structure. Undiluted blood plasma was used to test the nonfouling properties of this platform. Nonspecific and specific interactions were monitored by a surface plasmon resonance sensor. This work demonstrates great promise of this "two-layer" binding platform for the improved performance of biosensors.
机译:对于许多表面涂层和应用,对非特异性吸附的高抗性通常伴随着结合能力的丧失,反之亦然。在这项研究中,基于两性离子聚羧基甜菜碱丙烯酰胺(pCB)的结合平台具有“两层”结构,可实现超低污染和高蛋白负载特性。在无水条件下制备的具有高堆积密度的第一pCB层用作保护层,可抵抗来自复杂介质的非特异性吸附。具有低堆积密度的第二pCB层用于实现高蛋白结合能力。改变反应中四乙基秋兰姆二硫化物(TED)的量和水以分别调节第二pCB层的聚合物的堆积密度和链长。用抗人甲状腺刺激激素(TSH)IgG分子对pCB膜进行原位修饰和TSH抗原的检测可证明这种“两层”结构具有高蛋白固定性和高抗原检测能力。未稀释的血浆用于测试该平台的防污性能。通过表面等离子体共振传感器监测非特异性和特异性相互作用。这项工作证明了这种“两层”结合平台对改善生物传感器性能的巨大希望。

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