Joint BioEnergy Institute, 5885 Hollis St., Emeryville, CA 94608, USA; Biological Systems & Engineering Division, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
Joint BioEnergy Institute, 5885 Hollis St., Emeryville, CA 94608, USA; Department of Bioengineering and Biotechnology, Sandia National Laboratory, Livermore, CA, USA.
Metab Eng. 2017 Nov;44:325-336. doi: 10.1016/j.ymben.2017.11.004. Epub 2017 Nov 10.
Inducible gene expression systems are widely used in microbial host strains for protein and commodity chemical production because of their extensive characterization and ease of use. However, some of these systems have disadvantages such as leaky expression, lack of dynamic control, and the prohibitively high costs of inducers associated with large-scale production. Quorum sensing (QS) systems in bacteria control gene expression in response to population density, and the LuxI/R system from Vibrio fischeri is a well-studied example. A QS system could be ideal for biofuel production strains as it is self-regulated and does not require the addition of inducer compounds, which reduce operational costs for inducer. In this study, a QS system was developed for inducer-free production of the biofuel compound bisabolene from engineered E. coli. Seven variants of the Sensor plasmid, which carry the luxI-luxR genes, and four variants of the Response plasmid, which carry bisabolene producing pathway genes under the control of the P promoter, were designed for optimization of bisabolene production. Furthermore, a chromosome-integrated QS strain was engineered with the best combination of Sensor and Response plasmid and produced bisabolene at a titer of 1.1g/L without addition of external inducers. This is a 44% improvement from our previous inducible system. The QS strain also displayed higher homogeneity in gene expression and isoprenoid production compared to an inducible-system strain.
诱导型基因表达系统因其广泛的特征和易用性而被广泛应用于微生物宿主菌株中的蛋白质和商品化学品生产。然而,其中一些系统存在一些缺点,例如表达渗漏、缺乏动态控制,以及与大规模生产相关的诱导剂成本过高。细菌中的群体感应(QS)系统根据种群密度控制基因表达,而发光杆菌(Vibrio fischeri)的 LuxI/R 系统是一个经过充分研究的例子。QS 系统非常适合生物燃料生产菌株,因为它是自我调节的,不需要添加诱导剂化合物,从而降低了诱导剂的运营成本。在这项研究中,开发了一种 QS 系统,用于从工程大肠杆菌中无诱导剂生产生物燃料化合物双醇。设计了七种带有 luxI-luxR 基因的传感器质粒变体和四种带有 P 启动子控制的双醇生产途径基因的响应质粒变体,用于优化双醇生产。此外,还对染色体整合的 QS 菌株进行了工程设计,将最佳的传感器和响应质粒组合,并在不添加外部诱导剂的情况下生产出 1.1g/L 的双醇。与我们之前的诱导型系统相比,这提高了 44%。与诱导型系统菌株相比,QS 菌株在基因表达和异戊二烯生产方面也表现出更高的均一性。