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双嵌段共聚物模板上的二维自组装蛋白质纳米阵列。

Two-dimensionally self-arranged protein nanoarrays on diblock copolymer templates.

作者信息

Kumar Nitin, Parajuli Omkar, Hahm Jong-In

机构信息

Department of Chemical Engineering, The Pennsylvania State University, 160 Fenske Laboratory, University Park, Pennsylvania 16802, USA.

出版信息

J Phys Chem B. 2007 May 3;111(17):4581-7. doi: 10.1021/jp068509p. Epub 2007 Apr 11.

Abstract

Novel methods for creating protein arrays with two-dimensional control can significantly enhance basic biological research as well as various bioarray applications. We demonstrate that the structural variety and chemical heterogeneity of self-assembled, hexagonal polystyrene-b-poly(vinylpyridine) micelles can be successfully exploited as templates for easy and rapid fabrication of functional protein arrays over a large scale. Spontaneous formation of such polymeric template-guided protein molecules yields high-density protein arrays that exhibit repeat spacings in a nanoscopic dimension. The ensuing self-assembled protein molecules in the array maintain their natural conformation and activity over a very long time period. By tuning the size of the underlying block copolymer templates, our amphiphilic diblock copolymer-based approach to create high-density protein patterns also permits spatial control over two-dimensional repeat spacings of protein nanoarrays. These unique advantages of polystyrene-b-poly(vinylpyridine) templates make the spontaneously constructed protein nanoarrays highly suitable as functional protein sensor substrates. Therefore, our novel two-dimensional protein assembly method can be greatly beneficial for high-throughput proteomic assays and multiplexed high-density protein sensing applications.

摘要

具有二维控制能力的新型蛋白质阵列创建方法能够显著加强基础生物学研究以及各种生物阵列应用。我们证明,自组装的六方聚苯乙烯 - b - 聚(乙烯基吡啶)胶束的结构多样性和化学异质性可成功用作模板,以便在大规模上轻松快速地制造功能性蛋白质阵列。这种聚合物模板引导的蛋白质分子的自发形成产生了在纳米尺度上具有重复间距的高密度蛋白质阵列。阵列中随后自组装的蛋白质分子在很长一段时间内保持其天然构象和活性。通过调整底层嵌段共聚物模板的大小,我们基于两亲性二嵌段共聚物创建高密度蛋白质图案的方法还允许对蛋白质纳米阵列的二维重复间距进行空间控制。聚苯乙烯 - b - 聚(乙烯基吡啶)模板的这些独特优势使得自发构建的蛋白质纳米阵列非常适合作为功能性蛋白质传感器基板。因此,我们新颖的二维蛋白质组装方法对于高通量蛋白质组学分析和多重高密度蛋白质传感应用可能非常有益。

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