首页> 外文期刊>Acta biomaterialia >Core-shell molecularly imprinted polymer nanoparticles with assistant recognition polymer chains for effective recognition and enrichment of natural low-abundance protein.
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Core-shell molecularly imprinted polymer nanoparticles with assistant recognition polymer chains for effective recognition and enrichment of natural low-abundance protein.

机译:具有辅助识别聚合物链的核-壳分子印迹聚合物纳米颗粒,可有效识别和富集天然低丰度蛋白质。

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摘要

Core-shell molecular imprinting of nanomaterials overcomes difficulties with template transfer and achieves higher binding capacities for macromolecular imprinting, which are more important to the imprinting of natural low-abundance proteins from cell extracts. In the present study, a novel strategy of preparing core-shell nanostructured molecularly imprinted polymers (MIPs) was developed that combined the core-shell approach with assistant recognition polymer chains (ARPCs). Vinyl-modified silica nanoparticles were used as support and ARPCs were used as additional functional monomers. Immunoglobulin heavy chain binding protein (BiP) from the endoplasmic reticulum (ER) was chosen as the model protein. The cloned template protein BiP was selectively assembled with ARPCs from their library, which contained numerous limited-length polymer chains with randomly distributed recognition and immobilization sites. The resulting complex was copolymerized onto the surface of vinyl-modified silica nanoparticles under low concentrations of the monomers. After template removal, core-shell-structured nanoparticles with a thin imprinted polymer layer were produced. The particles demonstrated considerably high adsorption capacity, fast adsorption kinetics and selective binding affinities toward the template BiP. Furthermore, the synthesized MIP nanoparticles successfully isolated cloned protein BiP from protein mixtures and highly enriched BiP from an ER extract containing thousands of kinds of proteins. The enrichment reached 115-fold and the binding capacity was 5.4 μg g(-1), which were higher than those achieved by using traditional MIP microspheres. The advantageous properties of MIP nanoparticles hold promise for further practical applications in biology, such as protein analysis and purification.
机译:纳米材料的核-壳分子印迹技术克服了模板转移的难题,并为大分子印迹技术实现了更高的结合能力,这对于从细胞提取物中印迹天然低丰度蛋白质而言更为重要。在本研究中,开发了一种新的制备核-壳纳米结构分子印迹聚合物(MIP)的策略,该策略将核-壳方法与辅助识别聚合物链(ARPC)相结合。乙烯基改性的二氧化硅纳米粒子被用作载体,而ARPC被用作其他功能单体。选择来自内质网(ER)的免疫球蛋白重链结合蛋白(BiP)作为模型蛋白。从其文库中将克隆的模板蛋白BiP与ARPC选择性组装,该库包含许多具有有限分布的识别和固定位点的有限长度的聚合物链。在低浓度的单体下将所得的络合物共聚到乙烯基改性的二氧化硅纳米粒子的表面上。去除模板后,生产出具有薄的印迹聚合物层的核-壳结构纳米颗粒。颗粒表现出相当高的吸附能力,快速的吸附动力学和对模板BiP的选择性结合亲和力。此外,合成的MIP纳米粒子成功地从蛋白质混合物中分离出克隆的蛋白质BiP,并从含有数千种蛋白质的ER提取物中成功地富集了BiP。富集达到115倍,结合能力为5.4μgg(-1),高于使用传统MIP微球获得的结合能力。 MIP纳米颗粒的优越性能有望在生物学中进一步实际应用,例如蛋白质分析和纯化。

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