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13C metabolic flux analysis of three divergent extremely thermophilic bacteria: Geobacillus sp. LC300 Thermus thermophilus HB8 and Rhodothermus marinus DSM 4252

机译:三种发散性极高温细菌的13C代谢通量分析:Geobacillus sp.。 LC300嗜热栖热菌HB8和海生杜鹃(Rhodothermus marinus)DSM 4252

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摘要

Thermophilic organisms are being increasingly investigated and applied in metabolic engineering and biotechnology. The distinct metabolic and physiological characteristics of thermophiles, including broad substrate range and high uptake rates, coupled with recent advances in genetic tool development, present unique opportunities for strain engineering. However, poor understanding of the cellular physiology and metabolism of thermophiles has limited the application of systems biology and metabolic engineering tools to these organisms. To address this concern, we applied high resolution 13C metabolic flux analysis to quantify fluxes for three divergent extremely thermophilic bacteria from separate phyla: Geobacillus sp. LC300, Thermus thermophilus HB8, and Rhodothermus marinus DSM 4252. We performed 18 parallel labeling experiments, using all singly labeled glucose tracers for each strain, reconstructed and validated metabolic network models, measured biomass composition, and quantified precise metabolic fluxes for each organism. In the process, we resolved many uncertainties regarding gaps in pathway reconstructions and elucidated how these organisms maintain redox balance and generate energy. Overall, we found that the metabolisms of the three thermophiles were highly distinct, suggesting that adaptation to growth at high temperatures did not favor any particular set of metabolic pathways. All three strains relied heavily on glycolysis and TCA cycle to generate key cellular precursors and cofactors. None of the investigated organisms utilized the Entner-Doudoroff pathway and only one strain had an active oxidative pentose phosphate pathway. Taken together, the results from this study provide a solid foundation for future model building and engineering efforts with these and related thermophiles.
机译:嗜热生物正在被越来越多地研究并应用于代谢工程和生物技术中。嗜热菌独特的代谢和生理特征,包括广泛的底物范围和高摄取率,以及遗传工具开发的最新进展,为菌株工程提供了独特的机会。但是,对嗜热细胞的细胞生理学和代谢的了解不足,限制了系统生物学和代谢工程工具对这些生物的应用。为了解决这个问题,我们应用了高分辨率的 13 C代谢通量分析来量化来自不同门的三种发散性极端嗜热细菌的通量:Geobacillus sp.。 LC300,Thermus thermophilus HB8和Rhodothermus marinus DSM4252。我们使用每个菌株的所有单独标记的葡萄糖示踪剂进行了18个平行标记实验,重建和验证了代谢网络模型,测量了生物量组成,并对每种生物定量了精确的代谢通量。在此过程中,我们解决了有关途径重建方面的许多不确定性,并阐明了这些生物如何维持氧化还原平衡并产生能量。总的来说,我们发现这三种嗜热菌的代谢高度不同,这表明在高温下适应生长并不有利于任何特定的代谢途径。这三种菌株都严重依赖糖酵解和TCA循环来产生关键的细胞前体和辅因子。没有一个被研究的生物利用Entner-Doudoroff途径,只有一种菌株具有活性的氧化戊糖磷酸途径。两者合计,这项研究的结果为这些以及相关嗜热菌的未来模型构建和工程研究奠定了坚实的基础。

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