基因工程多肽与微结构结合的电子控制

X. Xiong, M. Gungormus, C. Tamerler, M. Sarikaya, B. Parviz
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引用次数: 0

摘要

我们提出了一种可控的自组装方法,用于引导和定位纳米级物体到由基因工程多肽介导的微制造模板上。受大自然的启发,我们的团队已经适应了不同的基于分子生物学的协议来识别和定制能够识别和特异性结合无机表面的多肽。在本文中,我们展示了细胞表面选择金结合多肽(GBP1:MHGKTQATSGTIQS)的三重复形式。我们描述的程序包括如何识别多肽;如何利用这种多肽将半导体量子点(QDs)自下而上地自组装到微制造图案上;最后,如何通过施加偏置电压实现对多肽与微结构结合的进一步控制。我们的方法为连接生物和无机领域开辟了一个新的场所,并指导自下而上的结构和设备的自组装。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electronic Control of Binding of Genetically Engineered Polypeptides to Microfabricated Structures
We present a controllable self-assembly method for guiding and positioning nano-scale objects onto a microfabricated template mediated by a genetically engineered polypeptide. Inspired by nature, our group has adapted the different molecular biology based protocols to identify and tailor polypeptides that can recognize and specifically bind to inorganic surfaces. In this paper, we show a three-repeat form of a cell surface selected gold binding polypeptide (GBP1:MHGKTQATSGTIQS). We delineate the procedures including how to identify the polypeptide; how to use this polypeptide for the bottom up self-assembly of semiconducting quantum dots (QDs) onto microfabricated patterns; and finally how to achieve a further level of control over the binding of the polypeptide to microstructures via application of a bias voltage. Our approach opens a new venue for bridging the biological and inorganic domains, and guiding self-assembly of structures and devices from the bottom up.
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