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Functional implementation of a linear glycolysis for sugar catabolism in Pseudomonas putida

机译:Pseudomonas Pivida糖分解代谢线性糖酵解的功能实施

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摘要

The core metabolism for glucose assimilation of the soil bacterium and platform strain Pseudomonas putida KT2440 has been reshaped from the native, cyclically-operating Entner-Doudoroff (ED) pathway to a linear Embden-Meyerhof-Parnas (EMP) glycolysis. The genetic strategy deployed to obtain a suitable host for the synthetic EMP route involved not only eliminating enzymatic activities of the ED pathway, but also erasing peripheral reactions for glucose oxidation that divert carbon skeletons into the formation of organic acids in the periplasm. Heterologous glycolytic enzymes, recruited from Escherichia coil, were genetically knocked-in in the mutant strain to fill the metabolic gaps for the complete metabolism of glucose to pyruvate through a synthetic EMP route. A suite of genetic, physiological, and biochemical tests in the thereby-refactored P. putida strain-which grew on glucose as the sole carbon and energy source-demonstrated the functional replacement of the native sugar metabolism by a synthetic catabolism. C-13-labelling experiments indicated that the bulk of pyruvate in the resulting strain was generated through the metabolic device grafted in P. putida. Strains carrying the synthetic glycolysis were further engineered for carotenoid synthesis from glucose, indicating that the implanted EMP route enabled higher carotenoid content on biomass and yield on sugar as compared with strains running the native hexose catabolism. Taken together, our results highlight how conserved metabolic features in a platform bacterium can be rationally reshaped for enhancing physiological traits of interest.
机译:土壤细菌和平台菌株Pseudomonas普拉维拉KT2440的葡萄糖同化核糖的核心代谢已被从天然,循环操作的Entner-doudoroff(ED)途径中重塑到Linear Embden-Meyerhof-Parnas(EMP)糖酵解。部署的遗传策略以获得合成的EMP途径的合适宿主不仅消除了ED途径的酶活性,而且还擦除了葡萄糖氧化的外周反应,使将碳骨架转移到周质中的有机酸中的形成。从大肠杆菌卷中募集的异源糖糖酶在突变菌株中遗传敲入突变菌株,以通过合成EMP途径填充葡萄糖完全代谢的代谢间隙。在由此重构的P. PieChemical菌株中进行遗传,生理和生化试验 - 这在葡萄糖上,作为唯一的碳和能量来源,通过合成分解代谢显示了天然糖代谢的功能替代。 C-13标记实验表明,通过在P. Pivida接枝的代谢器件产生所得菌株中的大量丙酮酸。进一步改进携带合成糖酵解的菌株用于葡萄糖的类胡萝卜素合成,表明植入的EMP途径使得与运行天然己糖酵素分解代谢的菌株相比,使植入的EMP途径能够对生物质和糖的产率产生较高的类胡萝卜素含量。在一起,我们的结果强调了平台细菌中的保守代谢特征可以合理地重塑,以增强感兴趣的生理性状。

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