Schools of Chemistry and Chemical Engineering, Chongqing University, Chongqing 400044, China; School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta 30332, USA.
Schools of Chemistry and Chemical Engineering, Chongqing University, Chongqing 400044, China; School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta 30332, USA.
Metab Eng. 2017 Jul;42:85-97. doi: 10.1016/j.ymben.2017.06.002. Epub 2017 Jun 8.
Artificial control of bio-functions through regulating gene expression is one of the most important and attractive technologies to build novel living systems that are useful in the areas of chemical synthesis, nanotechnology, pharmacology, cell biology. Here, we present a novel real-time control system of gene regulation that includes an enhancement element by introducing duplex DNA aptamers upstream promoter and a repression element by introducing a RNA aptamer upstream ribosome binding site. With the presence of ligands corresponding to the DNA aptamers, the expression of the target gene can be potentially enhanced at the transcriptional level by strengthening the recognition capability of RNAP to the recognition region and speeding up the separation efficiency of the unwinding region due to the induced DNA bubble around the thrombin-bound aptamers; while with the presence of RNA aptamer ligand, the gene expression can be repressed at the translational level by weakening the recognition capability of ribosome to RBS due to the shielding of RBS by the formed aptamer-ligand complex upstream RBS. The effectiveness and potential utility of the developed gene regulation system were demonstrated by regulating the expression of ecaA gene in the cell-free systems. The realistic metabolic engineering application of the system has also tested by regulating the expression of mgtC gene and thrombin cDNA in Escherichia coli JD1021 for controlling metabolic flux and improving thrombin production, verifying that the real-time control system of gene regulation is able to realize the dynamic regulation of gene expression with potential applications in bacterial physiology studies and metabolic engineering.
通过调控基因表达来人工控制生物功能是构建新型生命系统的最重要和最有吸引力的技术之一,这些新型生命系统在化学合成、纳米技术、药理学和细胞生物学等领域具有广泛的应用前景。在这里,我们提出了一种新型的基因调控实时控制系统,该系统包括通过在启动子上游引入双链 DNA 适体增强元件,以及通过在核糖体结合位点上游引入 RNA 适体抑制元件。在存在与 DNA 适体相对应的配体的情况下,通过增强 RNA 聚合酶对识别区域的识别能力,并由于凝血酶结合适体周围形成的 DNA 泡,加速解链区域的分离效率,目标基因的表达可以在转录水平上得到潜在增强;而在存在 RNA 适体配体的情况下,通过形成适体-配体复合物在上游 RBS 处屏蔽 RBS,基因表达可以在翻译水平上受到抑制,从而降低核糖体对 RBS 的识别能力。通过在无细胞体系中调节 ecaA 基因的表达,验证了所开发的基因调控系统的有效性和潜在应用价值。还通过在大肠杆菌 JD1021 中调节 mgtC 基因和凝血酶 cDNA 的表达,对该系统的实际代谢工程应用进行了测试,以控制代谢通量并提高凝血酶产量,验证了基因调控的实时控制系统能够实现基因表达的动态调控,具有在细菌生理学研究和代谢工程中的潜在应用价值。