舍瓦内拉
生物传感器
污染物
纳米技术
生化工程
微生物燃料电池
环境科学
化学传感器
计算机科学
检出限
化学
纳米传感器
材料科学
动态范围
作者
Xing‐Yu Wang,Yue Wang,J R Ding,Xiao‐Li Liu,Meng-Jie Luo,Meng Liu,Dong‐Feng Liu,Zhixiang She,Yang Mu
摘要
ABSTRACT Rapid detection of toxic trace contaminants is critical for global water security, yet routine monitoring relies on costly, time‐consuming laboratory analyses. Microbial sensors offer a promising alternative but suffer from limited specificity, insufficient stability, and slow kinetics. Herein, we report a programmable and printable microbial bioelectronic sensor that overcomes these bottlenecks through multi‐scale chemical design. Using 2,4‐dinitrotoluene as a model pollutant, we genetically reprogrammed the extracellular electron transfer pathway of Shewanella oneidensis by coupling specific pollutant recognition to inner‐membrane cytochrome expression, thereby enabling highly specific bioelectrical detection of target pollutants. For robust deployment, these sensing microbes were encapsulated into a dual‐network hydrogel sustained by reversible hydrogen bonding, ensuring structural resilience and biocompatibility. By 3D‐printing the biosensor into a biomimetic fractal architecture, we minimized mass transport resistance, achieving a response time of 5 min, a 24‐fold acceleration over conventional counterparts. The biosensor also exhibited a low detection limit of 6.75 µg L −1 and a broad dynamic range from 20.4 to 700.0 µg L −1 ( R 2 > 0.999). Crucially, the biosensor maintained high accuracy (relative error < 4.2%) in actual wastewaters. This work establishes that the multiscale chemical design of microbial bioelectronic sensors enables real‐time, targeted pollutant monitoring.
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