恶臭假单胞菌
生物
糖异生
糖酵解
焊剂(冶金)
代谢通量分析
代谢物
新陈代谢
代谢途径
生物化学
碳通量
系统生物学
利基
细胞生物学
酶
生态学
计算生物学
生态系统
化学
有机化学
作者
Severin Josef Schink,Dimitris Christodoulou,Avik Mukherjee,Edward Athaide,Viktoria Brunner,Tobias Fuhrer,Gary A. Bradshaw,Uwe Sauer,Markus Basan
标识
DOI:10.15252/msb.202110704
摘要
Central carbon metabolism is highly conserved across microbial species, but can catalyze very different pathways depending on the organism and their ecological niche. Here, we study the dynamic reorganization of central metabolism after switches between the two major opposing pathway configurations of central carbon metabolism, glycolysis, and gluconeogenesis in Escherichia coli, Pseudomonas aeruginosa, and Pseudomonas putida. We combined growth dynamics and dynamic changes in intracellular metabolite levels with a coarse-grained model that integrates fluxes, regulation, protein synthesis, and growth and uncovered fundamental limitations of the regulatory network: After nutrient shifts, metabolite concentrations collapse to their equilibrium, rendering the cell unable to sense which direction the flux is supposed to flow through the metabolic network. The cell can partially alleviate this by picking a preferred direction of regulation at the expense of increasing lag times in the opposite direction. Moreover, decreasing both lag times simultaneously comes at the cost of reduced growth rate or higher futile cycling between metabolic enzymes. These three trade-offs can explain why microorganisms specialize for either glycolytic or gluconeogenic substrates and can help elucidate the complex growth patterns exhibited by different microbial species.
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