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首页> 外文期刊>Journal of industrial microbiology & biotechnology >Phenotypic characterization of Corynebacterium glutamicum under osmotic stress conditions using elementary mode analysis
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Phenotypic characterization of Corynebacterium glutamicum under osmotic stress conditions using elementary mode analysis

机译:利用基本模式分析在渗透胁迫条件下谷氨酸棒杆菌的表型特征

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Corynebacterium glutamicum, a soil bacterium, is used to produce amino acids such as lysine and glutamate. C. glutamicum is often exposed to osmolality changes in its medium, and the bacterium has therefore evolved several adaptive response mechanisms to overcome them. In this study we quantify the metabolic response of C. glutamicum under osmotic stress using elementary mode analysis (EMA). Further, we obtain the optimal phenotypic space for the synthesis of lysine and formation of biomass. The analysis demonstrated that with increasing osmotic stress, the flux towards trehalose formation and energy-generating pathways increased, while the flux of anabolic reactions diminished. Nodal analysis indicated that glucose-6-phosphate, phosphoenol pyruvate, and pyruvate nodes were capable of adapting to osmotic stress, whereas the oxaloacetic acid node was relatively unresponsive. Fewer elementary modes were active under stress indicating the rigid behavior of the metabolism in response to high osmolality. Optimal phenotypic space analysis revealed that under normal conditions the organism optimized growth during the initial log phase and lysine and trehalose formation during the stationary phase. However, under osmotic stress, the analysis demonstrated that the organism operates under suboptimal conditions for growth, and lysine and trehalose formation.
机译:谷氨酸棒杆菌是土壤细菌,用于产生氨基酸,例如赖氨酸和谷氨酸。谷氨酸棒杆菌通常在其介质中暴露于重量克分子渗透压浓度,因此细菌已进化出几种适应性反应机制来克服它们。在这项研究中,我们使用基本模式分析(EMA)量化了在渗透胁迫下谷氨酸棒杆菌的代谢反应。此外,我们获得了赖氨酸合成和生物质形成的最佳表型空间。分析表明,随着渗透压力的增加,海藻糖形成和能量生成途径的通量增加,而合成代谢反应的通量减少。节点分析表明,6-磷酸葡萄糖,磷酸烯醇丙酮酸和丙酮酸节点能够适应​​渗透压,而草酰乙酸​​节点则相对无响应。较少的基本模式在压力下是活跃的,表明新的僵硬行为响应高渗透压。最佳的表型空间分析表明,在正常条件下,有机体在初始对数期优化了生长,在固定期优化了赖氨酸和海藻糖的形成。然而,在渗透胁迫下,分析表明该生物体在生长,赖氨酸和海藻糖形成的最佳条件下运行。

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