Henan Joint International Research Laboratory of Green Construction of Functional Molecules and Their Bioanalytical Applications, Zhengzhou Key Laboratory of Functional Nanomaterial and Medical Theranostic, Zhengzhou University, Zhengzhou, China.
School of Ecology and Environment, Zhengzhou University, Zhengzhou, China.
Anal Bioanal Chem. 2024 Sep;416(21):4649-4662. doi: 10.1007/s00216-024-05230-y. Epub 2024 Mar 8.
With the rapid development of society, it is of paramount importance to expeditiously assess environmental pollution and provide early warning of toxicity risks. Microbial fuel cell-based self-powered biosensors (MFC-SPBs) have emerged as a pivotal technology, obviating the necessity for external power sources and aligning with the prevailing trends toward miniaturization and simplification in biosensor development. In this case, vigorous advancements in MFC-SPBs have been acquired in past years, irrespective of whether the target identification event transpires at the anode or cathode. The present article undertakes a comprehensive review of developed MFC-SPBs, categorizing them into substrate effect and microbial activity effect based on the nature of the target identification event. Furthermore, various enhancement strategies to improve the analytical performance like accuracy and sensitivity are also outlined, along with a discussion of future research trends and application prospects of MFC-SPBs for their better developments.
随着社会的快速发展,迅速评估环境污染并对毒性风险发出预警至关重要。基于微生物燃料电池的自供电生物传感器(MFC-SPB)已经成为一项关键技术,它不需要外部电源,符合生物传感器发展的小型化和简化趋势。在这种情况下,无论目标识别事件发生在阳极还是阴极,MFC-SPB 在过去几年中都取得了迅猛的发展。本文对已开发的 MFC-SPB 进行了全面综述,根据目标识别事件的性质将其分为基质效应和微生物活性效应两类。此外,还概述了各种提高分析性能(如准确性和灵敏度)的增强策略,并讨论了 MFC-SPB 的未来研究趋势和应用前景,以促进其更好的发展。