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A genome-scale metabolic network reconstruction of extremely halophilic bacterium Salinibacter ruber

机译:极嗜盐细菌盐沼细菌基因组规模的代谢网络重建

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摘要

A genome-scale metabolic network reconstruction of Salinibacter ruber DSM13855 is presented here. To our knowledge, this is the first metabolic model of an organism in the phylum Rhodothermaeota. This model, which will be called iMB631, was reconstructed based on genomic and biochemical data available on the strain Salinibacter ruber DSM13855. This network consists of 1459 reactions, 1363 metabolites and 631 genes. Model evaluation was performed based on existing biochemical data in the literature and also by performing laboratory experiments. For growth on different carbon sources, we show that iMB631 is able to correctly predict the growth in 91% of cases where growth has been observed experimentally and 83% of conditions in which S. ruber did not grow. The F-score was 93%, demonstrating a generally acceptable performance of the model. Based on the predicted flux distributions, we found that under certain autotrophic condition, a reductive tricarboxylic acid cycle (rTCA) has fluxes in all necessary reactions to support autotrophic growth. To include special metabolites of the bacterium, salinixanthin biosynthesis pathway was modeled based on the pathway proposed recently. For years, main glucose consumption pathway has been under debates in S. ruber. Using flux balance analysis, iMB631 predicts pentose phosphate pathway, rather than glycolysis, as the active glucose consumption method in the S. ruber.
机译:此处介绍了盐杆菌属DSM13855的基因组规模代谢网络重建。据我们所知,这是Rhodothermaeota门中生物的第一个代谢模型。该模型将被称为iMB631,是根据Salibacter ruber DSM13855菌株的基因组和生化数据重建的。该网络由1459个反应,1363个代谢产物和631个基因组成。基于文献中现有的生化数据并通过进行实验室实验来进行模型评估。对于在不同碳源上的生长,我们表明iMB631能够正确预测91%的实验观察到生长情况以及83%的不存在红曲霉的生长情况。 F分数为93%,表明该模型的性能通常可以接受。基于预测的通量分布,我们发现在某些自养条件下,还原性三羧酸循环(rTCA)在所有必要的反应中均具有通量以支持自养生长。为了包括细菌的特殊代谢物,基于最近提出的途径对盐基黄嘌呤生物合成途径进行了建模。多年来,主要的葡萄糖消耗途径一直在红宝石中争论不休。使用流量平衡分析,iMB631可以预测戊糖磷酸途径而不是糖酵解,这是S. ruber中的活性葡萄糖消耗方法。

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