Translating Extracellular Electron Transfer Activities with Organic Electrochemical Transistors.

IF 1.2 4区 综合性期刊 Q3 MULTIDISCIPLINARY SCIENCES Jove-Journal of Visualized Experiments Pub Date : 2025-01-31 DOI:10.3791/67928
Yang Gao, Yuchen Zhou, Xudong Ji, Austin J Graham, Christopher M Dundas, Ismar E Miniel Mahfoud, Bailey M Tibbett, Benjamin Tan, Gina Partipilo, Ananth Dodabalapur, Jonathan Rivnay, Benjamin K Keitz
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Abstract

Extracellular electron transfer (EET) is a process through which certain microorganisms can transfer electrons across their cell membranes to external electron acceptors, linking cellular metabolism to their environment. While Geobacter and Shewanella have been the primary models for EET research, emerging studies reveal that EET-active species are also associated with fermentation and the human gut microbiome. Leveraging the ability of EET to bridge biological and electronic systems, we present a protocol for using organic electrochemical transistors (OECTs) to translate microbial EET activity into easily detectable electrical signals. This system enables the use of cellular responses to external stimuli for biosensing and biocomputing applications. Specifically, we demonstrated the de-doping of the p-type poly(3,4-ethylenedioxythiophene): poly(styrenesulfonate) (PEDOT: PSS) channel in the OECT is driven by cellular EET from Shewanella oneidensis. By transcriptionally controlling EET flux by genetic circuits, we establish the biosensing capability of this hybrid OECT system to detect chemical stimuli, such as inducer molecules. Furthermore, we introduce plasmid-based Boolean logic gates within the cells, allowing them to process environmental signals and drive current changes in the OECTs, further demonstrating the biocomputing potential of these devices. This method provides a novel interface between biological systems and electronics, enabling future high-throughput screening, biosensing, and biocomputing applications.

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利用有机电化学晶体管转换细胞外电子转移活动。
细胞外电子转移(EET)是指某些微生物通过细胞膜将电子转移到外部电子受体,将细胞代谢与环境联系起来的过程。虽然地杆菌和希瓦氏菌一直是EET研究的主要模型,但新兴的研究表明,EET活性物种也与发酵和人类肠道微生物群有关。利用EET连接生物和电子系统的能力,我们提出了一种使用有机电化学晶体管(OECTs)将微生物EET活性转化为易于检测的电信号的协议。该系统能够利用细胞对外部刺激的反应进行生物传感和生物计算应用。具体来说,我们证明了OECT中p型聚(3,4-乙烯二氧噻吩):聚(苯乙烯磺酸)(PEDOT: PSS)通道的脱掺杂是由来自希瓦氏菌的细胞EET驱动的。通过遗传电路转录控制EET通量,我们建立了这种混合OECT系统的生物传感能力,以检测化学刺激,如诱导剂分子。此外,我们在细胞内引入了基于质粒的布尔逻辑门,允许它们处理环境信号并驱动oect中的电流变化,进一步展示了这些设备的生物计算潜力。这种方法在生物系统和电子学之间提供了一种新的接口,使未来的高通量筛选,生物传感和生物计算应用成为可能。
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来源期刊
Jove-Journal of Visualized Experiments
Jove-Journal of Visualized Experiments MULTIDISCIPLINARY SCIENCES-
CiteScore
2.10
自引率
0.00%
发文量
992
期刊介绍: JoVE, the Journal of Visualized Experiments, is the world''s first peer reviewed scientific video journal. Established in 2006, JoVE is devoted to publishing scientific research in a visual format to help researchers overcome two of the biggest challenges facing the scientific research community today; poor reproducibility and the time and labor intensive nature of learning new experimental techniques.
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