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蛋白质工程与电化学生物传感器

Protein engineering and electrochemical biosensors.

作者信息

Lambrianou Andreas, Demin Soren, Hall Elizabeth A H

机构信息

Institute of Biotechnology, University of Cambridge, Tennis Court Road, Cambridge, UK.

出版信息

Adv Biochem Eng Biotechnol. 2008;109:65-96. doi: 10.1007/10_2007_080.

Abstract

Protein engineered biosensors provide the next best step in the advancement of protein-based sensors that can specifically identify chemical substrates. The use of native proteins for this purpose cannot adequately embrace the limits of detection and level of stability required for a usable sensor, due to globular structure restraints. This review chapter attempts to give an accurate representation of the three main strategies employed in the engineering of more suitable biological components for use in biosensor construction. The three main strategies in protein engineering for electrochemical biosensor implementation are: rational protein design, directed evolution and de novo protein design. Each design strategy has limitations to its use in a biosensor format and has advantages and disadvantages with respect to each. The three design techniques are used to modify aspects of stability, sensitivity, selectivity, surface tethering, and signal transduction within the biological environment. Furthermore with the advent of new nanomaterials the implementation of these design strategies, with the attomolar promise of nanostructures, imparts important generational leaps in research for biosensor construction, based on highly specific, very robust, and electrically wired protein engineered biosensors.

摘要

蛋白质工程化生物传感器为基于蛋白质的传感器的发展提供了下一个最佳步骤,这类传感器能够特异性识别化学底物。由于球状结构的限制,使用天然蛋白质无法充分满足可用传感器所需的检测限和稳定性水平。本章综述旨在准确介绍在工程化更适合用于生物传感器构建的生物组件时所采用的三种主要策略。用于电化学生物传感器的蛋白质工程的三种主要策略是:理性蛋白质设计、定向进化和从头蛋白质设计。每种设计策略在生物传感器形式中的应用都有其局限性,且各有优缺点。这三种设计技术用于改变生物环境中稳定性、灵敏度、选择性、表面连接和信号转导等方面。此外,随着新型纳米材料的出现,这些设计策略的实施,借助纳米结构的阿托摩尔级前景,基于高度特异性、非常稳健且有线连接的蛋白质工程化生物传感器,在生物传感器构建研究中实现了重要的代际跨越。

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