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基于离子选择性碳纳米管场效应晶体管的传感器阵列的酶分析。

Enzyme assays using sensor arrays based on ion-selective carbon nanotube field-effect transistors.

机构信息

Institute for Nanoelectronics, Department of Electrical Engineering and Information Technology, Technische Universität München, 80333 Munich, Germany.

Institute for Nanoelectronics, Department of Electrical Engineering and Information Technology, Technische Universität München, 80333 Munich, Germany.

出版信息

Biosens Bioelectron. 2016 Oct 15;84:7-14. doi: 10.1016/j.bios.2016.04.077. Epub 2016 Apr 23.

Abstract

In the fields of clinical diagnostics and point-of-care diagnosis as well as food and environmental monitoring there is a high demand for reliable high-throughput, rapid and highly sensitive assays for a simultaneous detection of several analytes in complex and low-volume samples. Sensor platforms based on solution-processable electrolyte-gated carbon nanotube field-effect transistors (CNT-FETs) are a simple and cost-effective alternative for conventional assays. In this work we demonstrate a selective as well as direct detection of the products of an enzyme-substrate interaction, here the for metabolic processes important urea-urease system, with sensors based on spray-coated CNT-FETs. The selective and direct detection is achieved by immobilizing the enzyme urease via certain surface functionalization techniques on the sensor surface and further modifying the active interfaces with polymeric ion-selective membranes as well as pH-sensitive layers. Thereby, we can avoid the generally applied approach for a field-effect based detection of enzyme reactions via detecting changes in the pH value due to an on-going enzymatic reaction and directly detect selectively the products of the enzymatic conversion. Thus, we can realize a buffering-capacity independent monitoring of changes in the substrate concentration.

摘要

在临床诊断和即时诊断、食品和环境监测领域,人们强烈需要可靠的高通量、快速和高灵敏度的分析方法,以便同时检测复杂和低体积样品中的多个分析物。基于溶液处理的电解质门控碳纳米管场效应晶体管(CNT-FET)的传感器平台是传统分析方法的简单且具有成本效益的替代方案。在这项工作中,我们使用基于喷涂 CNT-FET 的传感器,对酶-底物相互作用的产物进行了选择性和直接检测,这里选择了代谢过程中重要的尿素-脲酶系统。通过特定的表面功能化技术将酶脲酶固定在传感器表面上,并进一步用聚合物离子选择性膜和 pH 敏感层对活性界面进行修饰,从而实现了选择性和直接检测。这样,我们就可以避免通常采用的基于场效应的酶反应检测方法,即通过检测由于正在进行的酶反应而导致的 pH 值变化,而是直接选择性地检测酶转化的产物。因此,我们可以实现对底物浓度变化的缓冲能力独立监测。

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