Amperometric enzyme biosensors based on optimised electron-transfer pathways and non-manual immobilisation procedures

Wolfgang Schuhmann
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引用次数: 149

Abstract

Development of reagentless biosensors implies the tight and functional immobilisation of biological recognition elements on transducer surfaces. Specifically, in the case of amperometric enzyme electrodes, electron-transfer pathways between the immobilised redox protein and the electrode surface have to be established allowing a fast electron transfer concomitantly avoiding free-diffusing redox species. Based on the specific nature of different redox proteins and non-manual immobilisation procedures possible biosensor designs are discussed, namely biosensors based on (i) direct electron transfer between redox proteins and electrodes modified with self-assembled monolayers; (ii) anisotropic orientation of redox proteins at monolayer-modified electrodes; (iii) electron-transfer cascades via redox hydrogels; and (iv) electron-transfer via conducting polymers.

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基于优化电子转移途径和非手动固定程序的安培酶生物传感器
无试剂生物传感器的发展意味着生物识别元件在传感器表面的紧密和功能固定。具体来说,在安培酶电极的情况下,必须建立固定氧化还原蛋白和电极表面之间的电子转移途径,以允许快速电子转移,同时避免自由扩散的氧化还原物质。基于不同氧化还原蛋白的特定性质和非手动固定程序,讨论了可能的生物传感器设计,即基于(i)氧化还原蛋白和自组装单层修饰电极之间的直接电子转移的生物传感器;(ii)氧化还原蛋白在单层修饰电极上的各向异性取向;(iii)通过氧化还原水凝胶的电子转移级联;(4)导电聚合物的电子转移。
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Subject Index Author Index Core and periphery functionalized dendrimers for transition metal catalysis; a covalent and a non-covalent approach Dendritic supports in organic synthesis Peptide dendrimers: applications and synthesis
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