首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >A modular cell-based biosensor using engineered genetic logic circuits to detect and integrate multiple environmental signals
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A modular cell-based biosensor using engineered genetic logic circuits to detect and integrate multiple environmental signals

机译:基于模块化细胞的生物传感器,使用工程遗传逻辑电路检测和整合多种环境信号

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摘要

Cells perceive a wide variety of cellular and environmental signals, which are often processed combinatorially to generate particular phenotypic responses. Here, we employ both single and mixed cell type populations, pre-programmed with engineered modular cell signalling and sensing circuits, as processing units to detect and integrate multiple environmental signals. Based on an engineered modular genetic AND logic gate, we report the construction of a set of scalable synthetic microbe-based biosensors comprising exchangeable sensory, signal processing and actuation modules. These cellular biosensors were engineered using distinct signalling sensory modules to precisely identify various chemical signals, and combinations thereof, with a quantitative fluorescent output. The genetic logic gate used can function as a biological filter and an amplifier to enhance the sensing selectivity and sensitivity of cell-based biosensors. In particular, an Escherichia coli consortium-based biosensor has been constructed that can detect and integrate three environmental signals (arsenic, mercury and copper ion levels) via either its native two-component signal transduction pathways or synthetic signalling sensors derived from other bacteria in combination with a cell-cell communication module. We demonstrate how a modular cell-based biosensor can be engineered predictably using exchangeable synthetic gene circuit modules to sense and integrate multiple-input signals. This study illustrates some of the key practical design principles required for the future application of these biosensors in broad environmental and healthcare areas.
机译:细胞感知到各种各样的细胞和环境信号,这些信号通常被组合处理以产生特定的表型反应。在这里,我们采用预先设计好的模块化细胞信号和传感电路对单个和混合细胞类型种群进行处理,以检测和整合多种环境信号。基于工程化的模块化遗传与逻辑门,我们报告了一组可扩展的基于合成微生物的生物传感器的构建,该传感器包括可交换的传感,信号处理和驱动模块。这些细胞生物传感器使用独特的信号传感模块进行工程设计,以精确识别各种化学信号及其组合,并具有定量荧光输出。所使用的遗传逻辑门可以用作生物滤波器和放大器,以增强基于细胞的生物传感器的传感选择性和灵敏度。特别是,已构建了一种基于大肠杆菌财团的生物传感器,该传感器可通过其天然的两组分信号转导途径或源自其他细菌的合成信号传感器组合检测和整合三种环境信号(砷,汞和铜离子水平)与单元间通讯模块。我们演示了如何使用可交换的合成基因电路模块可预测地工程化基于模块细胞的生物传感器,以感应和整合多输入信号。这项研究说明了这些生物传感器在广泛的环境和医疗保健领域的未来应用所需的一些关键实用设计原则。

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