Song Xinyu, Ju Yue, Chen Lei, Zhang Weiwen
Frontier Science Center for Synthetic Biology and Key Laboratory of Systems Bioengineering, Ministry of Education of China, Tianjin, 300072, People's Republic of China.
Laboratory of Synthetic Microbiology, School of Chemical Engineering & Technology, Tianjin University, Tianjin, 300072, People's Republic of China.
Biotechnol Biofuels Bioprod. 2024 Dec 19;17(1):148. doi: 10.1186/s13068-024-02594-2.
Inspired by the natural symbiotic relationships between diverse microbial members, researchers recently focused on modifying microbial chassis to create artificial coculture systems using synthetic biology tools. An increasing number of scientists are now exploring these systems as innovative biosynthetic platforms for biomass conversion. While significant advancements have been achieved, challenges remain in maintaining the stability and productivity of these systems. Sustaining an optimal population ratio over a long time period and balancing anabolism and catabolism during cultivation have proven difficult. Key issues, such as competitive or antagonistic relationships between microbial members, as well as metabolic imbalances and maladaptation, are critical factors affecting the stability and productivity of artificial coculture systems. In this article, we critically review current strategies and methods for improving the stability and productivity of these systems, with a focus on recent progress in biomass conversion. We also provide insights into future research directions, laying the groundwork for further development of artificial coculture biosynthetic platforms.
受不同微生物成员之间自然共生关系的启发,研究人员最近致力于利用合成生物学工具改造微生物底盘,以创建人工共培养系统。现在越来越多的科学家将这些系统作为生物质转化的创新生物合成平台进行探索。尽管已经取得了重大进展,但在维持这些系统的稳定性和生产力方面仍然存在挑战。事实证明,长期维持最佳种群比例以及在培养过程中平衡合成代谢和分解代谢是很困难的。微生物成员之间的竞争或拮抗关系以及代谢失衡和适应不良等关键问题,是影响人工共培养系统稳定性和生产力的关键因素。在本文中,我们批判性地回顾了当前提高这些系统稳定性和生产力的策略和方法,重点关注生物质转化方面的最新进展。我们还对未来的研究方向提供了见解,为人工共培养生物合成平台的进一步发展奠定基础。