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Engineering a novel self-powering electrochemical biosensor

机译:设计一种新型的自供电电化学生物传感器

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摘要

This paper records the efforts of a multi-disciplinary team of undergraduate students from Glasgow University to collectively design and carry out a 10 week project in Synthetic Biology as part of the international Genetic Engineered Machine competition (iGEM). The aim of the project was to design and build a self-powering electrochemical biosensor called ‘ElectrEcoBlu’. The novelty of this engineered machine lies in coupling a biosensor with a microbial fuel cell to transduce a pollution input into an easily measurable electrical output signal. The device consists of two components; the sensor element which is modular, allowing for customisation to detect a range of input signals as required, and the universal reporter element which is responsible for generating an electrical signal as an output. The genetic components produce pyocyanin, a competitive electron mediator for microbial fuel cells, thus enabling the generation of an electrical current in the presence of target chemical pollutants. The pollutants tested in our implementation were toluene and salicylate. ElectrEcoBlu is expected to drive forward the development of a new generation of biosensors. Our approach exploited a range of state-of-the-art modelling techniques in a unified framework of qualitative, stochastic and continuous approaches to support the design and guide the construction of this novel biological machine. This work shows that integrating engineering techniques with scientific methodologies can provide new insights into genetic regulation and can be considered as a reference framework for the development of biochemical systems in synthetic biology.
机译:本文记录了来自格拉斯哥大学的多学科本科生团队的努力,作为国际基因工程机器竞赛(iGEM)的一部分,集体设计并开展了为期10周的合成生物学项目。该项目的目的是设计和制造一种名为“ ElectrEcoBlu”的自供电电化学生物传感器。这种工程机器的新颖之处在于将生物传感器与微生物燃料电池相结合,将污染输入转换为易于测量的电输出信号。该设备由两个组件组成;传感器模块是模块化的,可以根据需要进行定制以检测一系列输入信号,而通用报告器元素则负责生成电信号作为输出。基因成分产生了花青素,它是微生物燃料电池的竞争性电子介体,因此能够在目标化学污染物存在的情况下产生电流。在我们的实施中测试的污染物是甲苯和水杨酸盐。预计ElectrEcoBlu将推动新一代生物传感器的发展。我们的方法在定性,随机和连续方法的统一框架中利用了一系列最新的建模技术,以支持设计并指导这种新型生物机器的构建。这项工作表明,将工程技术与科学方法论相结合可以为遗传调控提供新的见解,并且可以被视为发展合成生物学中生化系统的参考框架。

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