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An arsenic-specific biosensor with genetically engineered Shewanella oneidensis in a bioelectrochemical system

机译:生物电化学系统中具有基因改造的沙瓦氏菌的砷特异性生物传感器

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摘要

Genetically engineered microbial biosensors have yet to realize commercial success in environmental applications due, in part, to difficulties associated with transducing and transmitting traditional bioluminescent information. Bioelectrochemical systems (BESs) output a direct electric signal that can be incorporated into devices for remote environmental monitoring. Here, we describe a BES-based biosensor with genetically encoded specificity for a toxic metal. By placing an essential component of the metal reduction (Mtr) pathway of Shewanella oneidensis under the control of an arsenic-sensitive promoter, we have genetically engineered a strain that produces increased current in response to arsenic when inoculated into a BES. Our BES-based biosensor has a detection limit of ~40 μM arsenite with a linear range up to 100 μM arsenite. Because our transcriptional circuit relies on the activation of a single promoter, similar sensing systems may be developed to detect other analytes by the swap of a single genetic part.
机译:基因工程微生物生物传感器在环境应用方面尚未取得商业成功,部分原因是与转导和传输传统生物发光信息有关的困难。生物电化学系统(BES)输出直接的电信号,可以将其合并到用于远程环境监测的设备中。在这里,我们描述了一种基于BES的生物传感器,对有毒金属具有遗传编码的特异性。通过将Shewanella oneidensis的金属还原(Mtr)途径的重要组成部分置于对砷敏感的启动子的控制下,我们通过基因工程设计了一种菌株,该菌株在接种到BES中时会产生对砷的增加电流。我们基于BES的生物传感器的检测极限为〜40μM亚砷酸盐,线性范围高达100μM亚砷酸盐。因为我们的转录回路依赖于单个启动子的激活,所以可以开发类似的传感系统来通过交换单个遗传部分来检测其他分析物。

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