School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, China; State Key Laboratory of Chemical Engineering, Tianjin University, Tianjin, 300072, China.
School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, China.
Metab Eng. 2021 Sep;67:186-197. doi: 10.1016/j.ymben.2021.07.002. Epub 2021 Jul 3.
Quorum sensing (QS) offers cell density dependent dynamic regulations in cell culture through devices such as synchronized lysis circuit (SLC) and metabolic toggle switch (MTS). However, there is still a lack of studies on cocultivation with a combination of different QS-based devices. Taking the production of isopropanol and salidroside as case studies, we have mathematically modeled a comprehensive set of QS-regulated cocultivation schemes and constructed experimental combinations of QS devices, respectively, to evaluate their feasibility and optimality for regulating growth competition and corporative production. Glucose split ratio is proposed for the analysis of competition between cell growth and targeted production. Results show that the combination of different QS devices across multiple members offers a new tool with the potential to effectively coordinate synthetic microbial consortia for achieving high product titer in cross-feeding cocultivation. It is also evident that the performance of such systems is significantly affected by dynamic characteristics of chosen QS devices, carbon source control and the operational settings. This study offers insights for future applications of combinational QS devices in synthetic microbial consortia.
群体感应(QS)通过同步裂解电路(SLC)和代谢切换开关(MTS)等设备为细胞培养提供了基于细胞密度的动态调控。然而,目前仍然缺乏关于不同基于 QS 的设备组合共培养的研究。以异丙醇和红景天苷的生产为例,我们对一套全面的 QS 调控共培养方案进行了数学建模,并分别构建了 QS 设备的实验组合,以评估它们在调节生长竞争和协同生产方面的可行性和最优性。葡萄糖分配比被提出用于分析细胞生长和目标产物生产之间的竞争。结果表明,跨多个成员的不同 QS 设备的组合为有效协调合成微生物群落以实现交叉喂养共培养中高产物滴度提供了一种新工具。显然,此类系统的性能受到所选 QS 设备、碳源控制和操作设置的动态特性的显著影响。本研究为组合 QS 设备在合成微生物群落中的未来应用提供了见解。