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将生物传感领域新的合成生物学进展转化应用于地球与环境科学

Translating New Synthetic Biology Advances for Biosensing Into the Earth and Environmental Sciences.

作者信息

Del Valle Ilenne, Fulk Emily M, Kalvapalle Prashant, Silberg Jonathan J, Masiello Caroline A, Stadler Lauren B

机构信息

Systems, Synthetic, and Physical Biology Graduate Program, Rice University, Houston, TX, United States.

Department of BioSciences, Rice University, Houston, TX, United States.

出版信息

Front Microbiol. 2021 Feb 4;11:618373. doi: 10.3389/fmicb.2020.618373. eCollection 2020.

Abstract

The rapid diversification of synthetic biology tools holds promise in making some classically hard-to-solve environmental problems tractable. Here we review longstanding problems in the Earth and environmental sciences that could be addressed using engineered microbes as micron-scale sensors (biosensors). Biosensors can offer new perspectives on open questions, including understanding microbial behaviors in heterogeneous matrices like soils, sediments, and wastewater systems, tracking cryptic element cycling in the Earth system, and establishing the dynamics of microbe-microbe, microbe-plant, and microbe-material interactions. Before these new tools can reach their potential, however, a suite of biological parts and microbial chassis appropriate for environmental conditions must be developed by the synthetic biology community. This includes diversifying sensing modules to obtain information relevant to environmental questions, creating output signals that allow dynamic reporting from hard-to-image environmental materials, and tuning these sensors so that they reliably function long enough to be useful for environmental studies. Finally, ethical questions related to the use of synthetic biosensors in environmental applications are discussed.

摘要

合成生物学工具的迅速多样化有望解决一些传统上难以解决的环境问题。在此,我们回顾地球与环境科学中一些长期存在的问题,这些问题可通过将工程微生物用作微米级传感器(生物传感器)来解决。生物传感器可为一些悬而未决的问题提供新视角,包括了解微生物在土壤、沉积物和废水系统等异质基质中的行为、追踪地球系统中隐秘的元素循环,以及确定微生物-微生物、微生物-植物和微生物-材料相互作用的动态。然而,在这些新工具发挥其潜力之前,合成生物学界必须开发出一套适合环境条件的生物部件和微生物底盘。这包括使传感模块多样化,以获取与环境问题相关的信息;创建输出信号,以便从难以成像的环境材料中进行动态报告;以及对这些传感器进行调整,使其能够可靠地运行足够长的时间以便用于环境研究。最后,我们讨论了在环境应用中使用合成生物传感器相关的伦理问题。

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