Miami University, Department of Chemical, Paper, and Biomedical Engineering, Oxford, OH 45056, USA.
Miami University, Department of Microbiology, Oxford, OH 45056, USA.
Curr Opin Biotechnol. 2018 Oct;53:33-38. doi: 10.1016/j.copbio.2017.11.012. Epub 2017 Dec 5.
The microbial production of chemicals has traditionally relied on a single engineered microbe to enable the complete bioconversion of substrate to final product. Recently, a growing fraction of research has transitioned towards employing a modular co-culture engineering strategy using multiple microbes growing together to facilitate a divide-and-conquer approach for chemical biosynthesis. Here, we review key success stories that leverage the unique advantages of co-culture engineering, while also addressing the critical concerns that will limit the wide-spread implementation of this technology. Future studies that address the need to monitor and control the population dynamics of each strain module, while maintaining robust flux routes towards a wide range of desired products will lead the efforts to realize the true potential of co-culture engineering.
微生物化学物质的生产传统上依赖于单个工程微生物,以实现底物到最终产物的完全生物转化。最近,越来越多的研究转向使用多微生物共培养工程策略,利用多个微生物共同生长来促进化学生物合成的分而治之方法。在这里,我们回顾了利用共培养工程独特优势的关键成功案例,同时也解决了限制该技术广泛应用的关键问题。未来的研究需要监测和控制每个菌株模块的种群动态,同时保持向广泛的目标产物的稳健通量途径,这将推动实现共培养工程的真正潜力。