首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Efficient One-Pot Synthesis of Mussel-Inspired Molecularly Imprinted Polymer Coated Graphene for Protein-Specific Recognition and Fast Separation
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Efficient One-Pot Synthesis of Mussel-Inspired Molecularly Imprinted Polymer Coated Graphene for Protein-Specific Recognition and Fast Separation

机译:贻贝启发分子印迹聚合物包覆的石墨烯的高效一锅法合成,用于蛋白质特异性识别和快速分离

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Molecular imprinting at nanomaterial surfaces has shown good prospects to extract templates easily and to achieve excellent performances such as large binding capacity and fast adsorption; In this work, we describe a one-step approach to synthesize a novel surface protein-imprinted nanomaterial employing graphene as the supporting substrate and dopamine as the polymerizing monomer. By simply immersing graphene oxide (GO) in a weak alkaline solution of dopamine (DA) containing bovine hemoglobin (BHb), GO nanosheet was readily converted to reduced GO (RGO) by dopamine with simultaneous capping by a thin polydopamine film imprinted with BHb leading to the BHb imprinted PDA(3)RGO nanomaterials. Fourier transform infrared (FT-IR), ultraviolet—visible (UV—vis), Raman spectra, X-ray diffraction (XRD), scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS), and nitrogen adsorption experiments have been used to characterize the resulting imprinted PDA$)RGO. The whole reaction process was conducted in aqueous solution at ambient temperature, which is easy to scale up at a low cost without pollution. In addition, because of the unique properties of graphene (large surface area, high surface-to-volume ratio) and polydopamine (high biocompatibility and controllable thickness), the prepared imprinted PDA@RGO not only possessed high binding capacity (198 rng/g) but also. exhibited a fast adsorption kinetics (adsorb 89% of the maximum amount within 5 min) and good selectivity toward template protein (the imprinting factor (x is 4.95). The outstanding recognizing behavior coupled to the low production cost and facile, quick, green preparation procedure makes the imprinted PDA@RGO attractive in specific protein recognition and separation, biosensors, and biochips.
机译:纳米材料表面的分子印迹显示出良好的前景,可以轻松地提取模板并获得出色的性能,例如大的结合能力和快速的吸附;在这项工作中,我们描述了一种一步法合成一种新的表面蛋白印迹纳米材料,该材料采用石墨烯作为支撑基质,多巴胺作为聚合单体。通过简单地将氧化石墨烯(GO)浸入含有牛血红蛋白(BHb)的多巴胺(DA)的弱碱性溶液中,可将GO纳米片容易地被多巴胺转化为还原的GO(RGO),并同时覆盖印有BHb前导物的聚多巴胺薄膜到BHb印迹PDA(3)RGO纳米材料。傅里叶变换红外(FT-IR),紫外-可见(UV-vis),拉曼光谱,X射线衍射(XRD),扫描电子显微镜(SEM),X射线光电子能谱(XPS)和氮吸附实验具有用来刻画最终的PDA $)RGO。整个反应过程在室温下于水溶液中进行,易于以低成本扩大规模而无污染。此外,由于石墨烯(大表面积,高表面积/体积比)和聚多巴胺(高生物相容性和可控制的厚度)的独特性质,所制备的压印PDA @ RGO不仅具有高结合能力(198 rng / g) ) 但是也。表现出快速的吸附动力学(在5分钟内吸附最大量的89%)和对模板蛋白的良好选择性(印迹因子(x为4.95)。出色的识别性能与低廉的生产成本和便捷,快速,绿色的制备方法有关该程序使印迹的PDA @ RGO在特定的蛋白质识别和分离,生物传感器和生物芯片方面具有吸引力。

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