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生物电化学界面工程:电化学生物传感器、生物燃料电池和自供电逻辑生物传感器的制造。

Bioelectrochemical interface engineering: toward the fabrication of electrochemical biosensors, biofuel cells, and self-powered logic biosensors.

机构信息

State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, P.R. China.

出版信息

Acc Chem Res. 2011 Nov 15;44(11):1232-43. doi: 10.1021/ar200096g. Epub 2011 Aug 3.

Abstract

Over the past decade, researchers have devoted considerable attention to the integration of living organisms with electronic elements to yield bioelectronic devices. Not only is the integration of DNA, enzymes, or whole cells with electronics of scientific interest, but it has many versatile potential applications. Researchers are using these ideas to fabricate biosensors for analytical applications and to assemble biofuel cells (BFCs) and biomolecule-based devices. Other research efforts include the development of biocomputing systems for information processing. In this Account, we focus on our recent progress in engineering at the bioelectrochemical interface (BECI) for the rational design and construction of important bioelectronic devices, ranging from electrochemical (EC-) biosensors to BFCs, and self-powered logic biosensors. Hydrogels and sol-gels provide attractive materials for the immobilization of enzymes because they make EC-enzyme biosensors stable and even functional in extreme environments. We use a layer-by-layer (LBL) self-assembly technique to fabricate multicomponent thin films on the BECI at the nanometer scale. Additionally, we demonstrate how carbon nanomaterials have paved the way for new and improved EC-enzyme biosensors. In addition to the widely reported BECI-based electrochemical impedance spectroscopy (EIS)-type aptasensors, we integrate the LBL technique with our previously developed "solid-state probe" technique for redox probes immobilization on electrode surfaces to design and fabricate BECI-based differential pulse voltammetry (DPV)-type aptasensors. BFCs can directly harvest energy from ambient biofuels as green energy sources, which could lead to their application as simple, flexible, and portable power sources. Porous materials provide favorable microenvironments for enzyme immobilization, which can enhance BFC power output. Furthermore, by introducing aptamer-based logic systems to BFCs, such systems could be applied as self-powered and intelligent aptasensors for the logic detection. We have developed biocomputing keypad lock security systems which can be also used for intelligent medical diagnostics. BECI engineering provides a simple but effective approach toward the design and fabrication of EC-biosensors, BFCs, and self-powered logic biosensors, which will make essential contributions in the development of creative and practical bioelectronic devices. The exploration of novel interface engineering applications and the creation of new fabrication concepts or methods merit further attention.

摘要

在过去的十年中,研究人员已经将相当多的注意力集中在将生物体与电子元件集成,以产生生物电子设备上。将 DNA、酶或整个细胞与电子学集成不仅具有科学意义,而且具有许多多功能的潜在应用。研究人员正在利用这些想法来制造分析应用的生物传感器,以及组装生物燃料电池 (BFC) 和基于生物分子的器件。其他研究工作包括开发用于信息处理的生物计算系统。在本专题介绍中,我们重点介绍了我们在生物电化学界面 (BECI) 工程方面的最新进展,用于合理设计和构建重要的生物电子设备,从电化学 (EC-) 生物传感器到 BFC 和自供电逻辑生物传感器。水凝胶和溶胶-凝胶为酶的固定化提供了有吸引力的材料,因为它们使 EC-酶生物传感器在极端环境中稳定甚至功能化。我们使用层层 (LBL) 自组装技术在纳米尺度上在 BECI 上制造多组分薄膜。此外,我们展示了碳纳米材料如何为新型和改进的 EC-酶生物传感器铺平道路。除了广泛报道的基于 BECI 的电化学阻抗谱 (EIS) 型适体传感器外,我们还将 LBL 技术与我们之前开发的“固态探针”技术相结合,用于将氧化还原探针固定在电极表面上,设计和制造基于 BECI 的差分脉冲伏安法 (DPV) 型适体传感器。BFC 可以直接从环境生物燃料中获取绿色能源,这可能导致它们作为简单、灵活和便携式电源的应用。多孔材料为酶的固定化提供了有利的微环境,可以提高 BFC 的功率输出。此外,通过将基于适体的逻辑系统引入 BFC,此类系统可以用作自供电和智能适体传感器,用于逻辑检测。我们已经开发了生物计算键盘锁安全系统,也可用于智能医疗诊断。BECI 工程为 EC-生物传感器、BFC 和自供电逻辑生物传感器的设计和制造提供了一种简单但有效的方法,将为创意和实用的生物电子设备的发展做出重要贡献。新型界面工程应用的探索以及新的制造概念或方法的创造值得进一步关注。

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