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首页> 外文期刊>Journal of Biotechnology >Metabolic model reconstruction and analysis of an artificial microbial ecosystem for vitamin C production
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Metabolic model reconstruction and analysis of an artificial microbial ecosystem for vitamin C production

机译:用于维生素C生产的人工微生物生态系统的代谢模型重建和分析

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An artificial microbial ecosystem (AME) consisting of Ketogulonicigenium vulgare and Bacillus megaterium is currently used in a two-step fermentation process for vitamin C production. In order to obtain a comprehensive understanding of the metabolic interactions between the two bacteria, a two-species stoichiometric metabolic model (iWZ-KV-663-BM-1055) consisting of 1718 genes, 1573 metabolites, and 1891 reactions (excluding exchange reactions) was constructed based on separate genome-scale metabolic models (GSMMs) of K. vulgare and B. megaterium. These two compartments (k and b) of iWZ-KV-663-BM-1055 shared 453 reactions and 548 metabolites. Compartment b was richer in subsystems than compartment k. In minimal media with glucose (MG), metabolite exchange between compartments was assessed by constraint-based analysis. Compartment b secreted essential amino acids, nucleic acids, vitamins and cofactors important for K. vulgare growth and biosynthesis of 2-keto-L-gulonic acid (2-KLG). Further research showed that when co-cultured with B. megaterium in L-sorbose-CSLP medium, the growth rate of K. vulgare and 2-KLG production were increased by 111.9% and 29.42%, respectively, under the constraints employed. Our study demonstrated that GSMMs and constraint-based methods can be used to decode the physiological features and inter-species interactions of AMEs used in industrial biotechnology, which will be of benefit for improving regulation and refinement in future industrial processes
机译:目前,在两个步骤的发酵过程中,使用了由普通角腐病菌和巨大芽孢杆菌组成的人工微生物生态系统(AME),以生产维生素C。为了全面了解两种细菌之间的代谢相互作用,建立了一种由1718个基因,1573个代谢物和1891个反应(不包括交换反应)组成的两种化学计量代谢模型(iWZ-KV-663-BM-1055)该基因是基于普通菜和巨大芽孢杆菌的基因组规模代谢模型(GSMM)构建的。 iWZ-KV-663-BM-1055的这两个部分(k和b)共有453个反应和548个代谢产物。隔间b在子系统中比隔间k丰富。在含葡萄糖(MG)的基本培养基中,隔室之间的代谢物交换通过基于限制的分析进行评估。隔室b分泌了必不可少的氨基酸,核酸,维生素和辅因子,对K. vulgare的生长和2-酮-L-古洛糖酸(2-KLG)的生物合成很重要。进一步的研究表明,在L-山梨糖-CSLP培养基中与巨大芽孢杆菌共培养时,在所采用的限制条件下,普通芽孢杆菌和2-KLG的生长速率分别提高了111.9%和29.42%。我们的研究表明,GSMM和基于约束的方法可用于解码工业生物技术中使用的AME的生理特征和种间相互作用,这将有利于改善未来工业流程中的监管和完善

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