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通过基于适体的调控机制在枯草芽孢杆菌中创建体内双功能基因表达回路,用于动态代谢工程。

Creating an in vivo bifunctional gene expression circuit through an aptamer-based regulatory mechanism for dynamic metabolic engineering in Bacillus subtilis.

机构信息

Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, Jiangnan University, Wuxi, 214122, China; Key Laboratory of Industrial Biotechnology, Ministry of Education, Jiangnan University, Wuxi, 214122, China.

Department of Bioengineering, Imperial College London, London, SW7 2AZ, UK.

出版信息

Metab Eng. 2019 Sep;55:179-190. doi: 10.1016/j.ymben.2019.07.008. Epub 2019 Jul 20.

Abstract

Aptamer-based regulatory biosensors can dynamically regulate the expression of target genes in response to ligands and could be used in dynamic metabolic engineering for pathway optimization. However, the existing aptamer-ligand biosensors can only function with non-complementary DNA elements that cannot replicate in growing cells. Here, we construct an aptamer-based synthetic regulatory circuit that can dynamically upregulate and downregulate the expression of target genes in response to the ligand thrombin at transcriptional and translational levels, respectively, and further used this system to dynamically engineer the synthesis of 2'-fucosyllactose (2'-FL) in Bacillus subtilis. First, we demonstrated the binding of ligand molecule thrombin with the aptamer can induce the unwinding of fully complementary double-stranded DNA. Based on this finding, we constructed a bifunctional gene expression regulatory circuit using ligand thrombin-bound aptamers. The expression of the reporter gene ranged from 0.084- to 48.1-fold. Finally, by using the bifunctional regulatory circuit, we dynamically upregulated the expression of key genes fkp and futC and downregulated the expression of gene purR, resulting in the significant increase of 2'-FL titer from 24.7 to 674 mg/L. Compared with the other pathway-specific dynamic engineering systems, here the constructed aptamer-based regulatory circuit is independent of pathways, and can be generally used to fine-tune gene expression in other microbes.

摘要

基于适体的调控生物传感器可以动态调节靶基因的表达,以响应配体,可用于动态代谢工程以优化途径。然而,现有的适体-配体生物传感器只能与不能在生长细胞中复制的非互补 DNA 元件一起发挥作用。在这里,我们构建了一种基于适体的合成调控回路,该回路可以在转录和翻译水平上分别响应配体凝血酶动态地上调和下调靶基因的表达,并进一步利用该系统动态工程化枯草芽孢杆菌中 2'-岩藻糖基乳糖(2'-FL)的合成。首先,我们证明了配体分子凝血酶与适体的结合可以诱导完全互补双链 DNA 的解链。基于这一发现,我们使用与配体凝血酶结合的适体构建了一个双功能基因表达调控回路。报告基因的表达范围从 0.084 到 48.1 倍。最后,通过使用双功能调控回路,我们动态地上调了关键基因 fkp 和 futC 的表达,下调了基因 purR 的表达,使 2'-FL 产量从 24.7 增加到 674mg/L。与其他途径特异性动态工程系统相比,这里构建的基于适体的调控回路独立于途径,可以用于微调其他微生物中的基因表达。

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