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基于全细胞电化学传感器灵敏安培检测核黄素。

Sensitive amperometric detection of riboflavin with a whole-cell electrochemical sensor.

机构信息

Biofuels Institute, School of the Environment and Safety Engineering, Jiangsu University, 301 Xuefu Road, Zhenjiang 212013, Jiangsu Province, China.

Biofuels Institute, School of the Environment and Safety Engineering, Jiangsu University, 301 Xuefu Road, Zhenjiang 212013, Jiangsu Province, China.

出版信息

Anal Chim Acta. 2017 Sep 8;985:148-154. doi: 10.1016/j.aca.2017.06.053. Epub 2017 Jul 6.

Abstract

A novel whole-cell electrochemical sensor was developed and applied for sensitive amperometric detection of riboflavin. In this work, a whole-cell based riboflavin redox cycling system was characterized, in which electroactive bacteria Shewanella oneidensis MR-1 was employed as the biocatalyst to regenerate the reduced riboflavin after the electrode oxidation. This redox cycling system efficiently enhanced the electrochemical response of riboflavin and enabled a stable current output at poised electrode potential. Thus, a sensitive amperometric biosensing system for riboflavin detection was developed by integrating this whole-cell redox cycling system with the conventional riboflavin electrochemical sensor. Remarkably, this riboflavin biosensor exhibited high sensitivity (LOD = 0.85 ± 0.09 nM, S/N = 3), excellent selectivity and stability. Additionally, reliable analysis of real samples (food and pharmaceutical samples) by this biosensor was achieved. This work provided sensitive and practical tool for riboflavin detection, and demonstrated that the integration of electroactive bacteria and using its outwards electron transfer for redox cycling would be a powerful and promising strategy to improve the performance of electrochemical sensing system.

摘要

一种新型的全细胞电化学传感器被开发出来,并应用于灵敏的安培检测核黄素。在这项工作中,描述了一种基于全细胞的核黄素氧化还原循环系统,其中电活性细菌希瓦氏菌(Shewanella oneidensis MR-1)被用作生物催化剂,在电极氧化后再生还原核黄素。这种氧化还原循环系统有效地增强了核黄素的电化学响应,并在固定的电极电势下实现了稳定的电流输出。因此,通过将这种全细胞氧化还原循环系统与传统的核黄素电化学传感器集成,开发了一种用于检测核黄素的灵敏安培生物传感系统。值得注意的是,这种核黄素生物传感器表现出高灵敏度(LOD=0.85±0.09 nM,S/N=3)、优异的选择性和稳定性。此外,通过该生物传感器实现了对真实样品(食品和药物样品)的可靠分析。这项工作为核黄素检测提供了灵敏实用的工具,并证明了将电活性细菌与利用其外向电子转移进行氧化还原循环相结合,将是提高电化学传感系统性能的一种强大而有前途的策略。

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