Cao Zhuoning, Liu Zhen, Mao Xiangzhao
Qingdao Key Laboratory of Food Biotechnology, College of Food Science and Engineering, Ocean University of China, Qingdao 266404, China.
Key Laboratory of Biological Processing of Aquatic Products, China National Light Industry, Qingdao 266404, China.
J Agric Food Chem. 2023 Apr 5;71(13):5062-5074. doi: 10.1021/acs.jafc.3c00176. Epub 2023 Mar 26.
Metabolic engineering is widely utilized in the food and other fields and has the benefits of low-cost substrates, eco-friendly fermentation processes, and efficient substrate synthesis. Microbial synthesis by metabolic engineering requires maintaining the productive capacity of the microorganism. Moreover, economic reasons limit the use of inducers in the exogenous synthesis pathway. Most unicellular microorganisms can interact by emitting signaling molecules; this mechanism, known as quorum sensing (QS), is an autoinduced system of microorganisms. With the deepening research on QS systems of different microorganisms, its components are widely used to regulate the metabolic synthesis of microorganisms as a dynamic regulatory system. In this Review, we described the typical bacterial QS mechanisms. Then, we summarized various regulatory strategies for QS and their applications to metabolic engineering. Finally, we underlined the potential for QS modularity in future metabolic engineering and suggested stimulating research on fungal QS systems.
代谢工程在食品和其他领域得到了广泛应用,具有底物成本低、发酵过程环保和底物合成效率高的优点。通过代谢工程进行微生物合成需要维持微生物的生产能力。此外,经济因素限制了外源合成途径中诱导剂的使用。大多数单细胞微生物可以通过释放信号分子进行相互作用;这种机制称为群体感应(QS),是微生物的一种自诱导系统。随着对不同微生物QS系统研究的深入,其组成部分作为一种动态调控系统被广泛用于调节微生物的代谢合成。在本综述中,我们描述了典型的细菌QS机制。然后,我们总结了QS的各种调控策略及其在代谢工程中的应用。最后,我们强调了QS模块化在未来代谢工程中的潜力,并建议加强对真菌QS系统的研究。