The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Kongens Lyngby, Denmark.
Institute of Environmental Sciences, Robert H. Smith Faculty of Agriculture, Food and Environment, Hebrew University of Jerusalem, Rehovot, Israel.
Nat Commun. 2024 Sep 27;15(1):8316. doi: 10.1038/s41467-024-52755-y.
Biosensors are used to detect and quantify chemicals produced in industrial microbiology with high specificity, sensitivity, and portability. Most biosensors, however, are limited by the need for transcription factors engineered to recognize specific molecules. In this study, we overcome the limitations typically associated with traditional biosensors by engineering Pseudomonas putida for whole-cell sensing of a variety of chemicals. Our approach integrates fluorescent reporters with synthetic auxotrophies within central metabolism that can be complemented by target analytes in growth-coupled setups. This platform enables the detection of a wide array of structurally diverse chemicals under various conditions, including co-cultures of producer cell factories and sensor strains. We also demonstrate the applicability of this versatile biosensor platform for monitoring complex biochemical processes, including plastic degradation by either purified hydrolytic enzymes or engineered bacteria. This microbial system provides a rapid, sensitive, and readily adaptable tool for monitoring cell factory performance and for environmental analyzes.
生物传感器用于以高特异性、灵敏度和便携性检测和量化工业微生物学中产生的化学物质。然而,大多数生物传感器受到需要转录因子的限制,这些转录因子经过工程设计以识别特定分子。在这项研究中,我们通过工程化假单胞菌来克服传统生物传感器的局限性,使其能够进行各种化学物质的全细胞感应。我们的方法将荧光报告基因与中心代谢中的合成营养缺陷型整合在一起,在生长偶联设置中可以通过目标分析物进行补充。该平台可在各种条件下检测到广泛的结构多样的化学物质,包括生产细胞工厂和传感器菌株的共培养物。我们还展示了这种多功能生物传感器平台在监测复杂生化过程中的适用性,包括通过纯化的水解酶或工程细菌进行塑料降解。这种微生物系统为监测细胞工厂性能和环境分析提供了一种快速、敏感且易于适应的工具。