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Nanoscale Protein Arrays of Rich Morphologies via Self-assembly on Chemically Treated Diblock Copolymer Surfaces

机译:通过自组装在化学处理过的二嵌段共聚物表面上通过自组装纳米级蛋白质阵列

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摘要

Well-controlled assembly of proteins on supramolecular templates of block copolymers can be extremely useful for high-throughput biodetection. We report the adsorption and assembly characteristics of a model antibody protein to various polystyrene-block-poly(4-vinylpyridine) templates whose distinctive nanoscale structures are obtained through time-regulated exposure to chloroform vapor. Strong adsorption preference of the protein to the polystyrene segment in the diblock copolymer templates leads to an easily predictable, controllable, rich set of nanoscale protein morphologies through self-assembly. We also demonstrate that the chemical identities of various subareas within individual nanostructures can be readily elucidated by investigating the corresponding protein adsorption behavior to each chemically distinct area of the template. In our approach, a rich set of intricate nanoscale morphologies of protein arrays that cannot be easily attained through other means can be generated straightforwardly via self-assembly of proteins on chemically treated diblock copolymer surfaces, without the use of clean room-based fabrication tools. Our approach provides much-needed flexibility and versatility for the use of block copolymer-based protein arrays in biodetection. The ease of fabrication in producing well-defined and self-assembled templates can contribute to a high degree of versatility and simplicity in acquiring intricate nanoscale geometry and spatial distribution of proteins in arrays. These advantages can be extremely beneficial both for fundamental research and biomedical detection, especially in the areas of solid-state based, high-throughput protein sensing.
机译:嵌段共聚物的超分子模板上蛋白质的良好控制组装对于高通量生物检测非常有用。我们报告模型抗体蛋白对各种聚苯乙烯嵌段聚(4-乙烯基吡啶)模板的吸附和组装特征,这些模板的独特纳米级结构是通过对氯仿蒸气的时间调节暴露而获得的。蛋白质对二嵌段共聚物模板中的聚苯乙烯链段的强烈吸附偏好导致可通过自组装轻松预测,控制可控的丰富纳米级蛋白质形态。我们还证明,通过研究模板对每个化学不同区域的相应蛋白质吸附行为,可以很容易地阐明单个纳米结构内各个子区域的化学特性。在我们的方法中,可以通过在化学处理过的二嵌段共聚物表面上自组装蛋白质,而无需使用基于洁净室的制造工具,直接生成蛋白质阵列的丰富复杂的纳米级形态,这些形态无法通过其他方式轻易实现。我们的方法为基于嵌段共聚物的蛋白质阵列在生物检测中的使用提供了急需的灵活性和多功能性。易于生产清晰定义和自组装的模板,可以在获得复杂的纳米级几何形状和阵列中蛋白质的空间分布方面,实现高度的多功能性和简便性。这些优势对于基础研究和生物医学检测都非常有利,特别是在基于固态的高通量蛋白质传感领域。

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