Department of Energy, Environmental and Chemical Engineering, Division of Biology and Biomedical Sciences, Washington University in St Louis, St Louis, MO 63130, USA.
Trends Biotechnol. 2022 Dec;40(12):1405-1414. doi: 10.1016/j.tibtech.2022.08.010. Epub 2022 Sep 15.
The past two decades have witnessed rapid advances in engineering individual microbial strains to produce biochemicals and biomaterials. However, engineering microbial consortia has been relatively slow. Using systems and synthetic biology approaches, researchers have been developing tools for engineering complex microbiota. In this opinion article, I discuss future directions and visions regarding developing microbiota as a biomanufacturing host. Specifically, I propose that we can develop the soil microbial community itself as a huge bioreactor. Ultimately, researchers will provide a generalizable system that enables us to understand a microbial consortium's interaction and metabolism on diverse temporal and spatial scales to address global problems, including the climate crisis, food inequality, the issue of waste, and sustainable bioproduction.
过去二十年见证了将单个微生物菌株工程化以生产生物化学物质和生物材料的快速发展。然而,微生物群落的工程化相对较慢。利用系统和合成生物学方法,研究人员一直在开发用于工程复杂微生物组的工具。在这篇观点文章中,我讨论了将微生物组开发为生物制造宿主的未来方向和愿景。具体来说,我提出我们可以将土壤微生物群落本身开发为一个巨大的生物反应器。最终,研究人员将提供一个可推广的系统,使我们能够在不同的时间和空间尺度上理解微生物群落的相互作用和代谢,以解决全球性问题,包括气候危机、粮食不平等、废物问题和可持续生物生产。