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在嗜热细菌中开发核糖开关介导的基因调控控制

Developing Riboswitch-Mediated Gene Regulatory Controls in Thermophilic Bacteria.

作者信息

Marcano-Velazquez Joan G, Lo Jonathan, Nag Ambarish, Maness Pin-Ching, Chou Katherine J

机构信息

Biosciences Center , National Renewable Energy Laboratory , Golden , Colorado 80401 , United states.

Computational Science Center , National Renewable Energy Laboratory , Golden , Colorado 80401 , United states.

出版信息

ACS Synth Biol. 2019 Apr 19;8(4):633-640. doi: 10.1021/acssynbio.8b00487. Epub 2019 Apr 5.

Abstract

Thermophilic bacteria are attractive hosts to produce bio-based chemicals. While various genetic manipulations have been employed in the metabolic engineering of thermophiles, a robust means to regulate gene expression in these bacteria (∼55 °C) is missing. Our bioinformatic search for various riboswitches in thermophilic bacteria revealed that major classes of riboswitches are present, suggesting riboswitches' regulatory roles in these bacteria. By building synthetic constructs incorporating natural and engineered purine riboswitch sequences originated from foreign species, we quantified respective riboswitches activities in repressing and up-regulating gene expression in Geobacillus thermoglucosidasius using a green fluorescence protein. The elicited regulatory response was ligand-concentration-dependent. We further demonstrated that riboswitch-mediated gene expression of adhE (responsible for ethanol production) in Clostridium thermocellum can modulate ethanol production, redirect metabolites, and control cell growth in the adhE knockout mutant. This work has made tunable gene expression feasible across different thermophiles for broad applications including biofuels production and gene-to-trait mapping.

摘要

嗜热细菌是生产生物基化学品的理想宿主。虽然在嗜热菌的代谢工程中已经采用了各种基因操作,但在这些细菌(约55°C)中缺少一种强大的基因表达调控手段。我们通过生物信息学方法在嗜热细菌中寻找各种核糖开关,发现存在主要类型的核糖开关,这表明核糖开关在这些细菌中具有调控作用。通过构建包含源自外来物种的天然和工程化嘌呤核糖开关序列的合成构建体,我们使用绿色荧光蛋白定量了嗜热栖热放线菌中各个核糖开关在抑制和上调基因表达方面的活性。引发的调控反应是配体浓度依赖性的。我们进一步证明,热纤梭菌中adhE(负责乙醇生产)的核糖开关介导的基因表达可以调节乙醇产量、重定向代谢物,并控制adhE基因敲除突变体中的细胞生长。这项工作使跨不同嗜热菌的可调基因表达在包括生物燃料生产和基因到性状映射在内的广泛应用中成为可行。

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