生物电子学
模块化设计
神经形态工程学
生物传感器
纳米技术
合成生物学
晶体管
计算机科学
舍瓦内拉
生物
计算生物学
材料科学
人工智能
工程类
电气工程
电压
人工神经网络
遗传学
操作系统
细菌
作者
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
标识
DOI:10.1038/s41467-024-45759-1
摘要
Organic electrochemical transistors (OECTs) are ideal devices for translating biological signals into electrical readouts and have applications in bioelectronics, biosensing, and neuromorphic computing. Despite their potential, developing programmable and modular methods for living systems to interface with OECTs has proven challenging. Here we describe hybrid OECTs containing the model electroactive bacterium Shewanella oneidensis that enable the transduction of biological computations to electrical responses. Specifically, we fabricated planar p-type OECTs and demonstrated that channel de-doping is driven by extracellular electron transfer (EET) from S. oneidensis. Leveraging this mechanistic understanding and our ability to control EET flux via transcriptional regulation, we used plasmid-based Boolean logic gates to translate biological computation into current changes within the OECT. Finally, we demonstrated EET-driven changes to OECT synaptic plasticity. This work enables fundamental EET studies and OECT-based biosensing and biocomputing systems with genetically controllable and modular design elements.
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