Chung Jae Hyuk, Lee Jieun, Kim Sooah, Kim Kyoung Heon
Department of Biotechnology, Graduate School, Korea University, Seoul 02841, Republic of Korea.
Department of Environmental Science and Biotechnology, Jeonju University, Jeonju 55069, Republic of Korea.
J Microbiol Biotechnol. 2025 Feb 25;35:e2407028. doi: 10.4014/jmb.2407.07028.
, a strict gram-positive anaerobe, plays a pivotal role in biotechnological applications, particularly in the biosynthesis of 1,3-propanediol, a critical biofuel component and monomer for bioplastic production. This study introduces DG1, a metabolically engineered strain designed to enhance the 1,3-propanediol pathway. Despite its development, comprehensive metabolic comparisons between the parent and modified strains remain unexplored. Our research addresses this gap by employing gas chromatography coupled with time-of-flight mass spectrometry to delineate the global metabolite landscapes of both strains. Through multivariate statistical analysis such as principal component analysis and hierarchical clustering analysis, we discovered pronounced disparities in their metabolite profiles across the acidogenic and solventogenic phases. Detailed metabolomics investigations underscored significant divergences in amino acid metabolism, fatty acid metabolism, and the tricarboxylic acid cycle. These findings shed light on the metabolic alterations induced by genetic engineering in , offering novel insights into microbial metabolism that could guide future biotechnological innovations.
作为一种严格的革兰氏阳性厌氧菌,在生物技术应用中发挥着关键作用,特别是在1,3 - 丙二醇的生物合成中,1,3 - 丙二醇是生物燃料的关键成分和生物塑料生产的单体。本研究引入了DG1,这是一种经过代谢工程改造的菌株,旨在增强1,3 - 丙二醇途径。尽管已经开发出来,但亲本菌株和改良菌株之间的全面代谢比较仍未得到探索。我们的研究通过采用气相色谱与飞行时间质谱联用技术来描绘两种菌株的整体代谢物图谱,从而填补了这一空白。通过主成分分析和层次聚类分析等多元统计分析,我们发现在产酸阶段和溶剂生成阶段,它们的代谢物谱存在明显差异。详细的代谢组学研究强调了氨基酸代谢、脂肪酸代谢和三羧酸循环中的显著差异。这些发现揭示了基因工程在[具体菌名未给出]中引起的代谢变化,为微生物代谢提供了新的见解,可指导未来的生物技术创新。