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Genome-Scale Metabolic Reconstruction and Hypothesis Testing in the Methanogenic Archaeon Methanosarcina acetivorans C2A

机译:产甲烷古细菌产甲烷乙酸甲烷单胞菌C2A的基因组规模代谢重建和假设检验。

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摘要

Methanosarcina acetivorans strain C2A is a marine methanogenic archaeon notable for its substrate utilization, genetic tractability, and novel energy conservation mechanisms. To help probe the phenotypic implications of this organism's unique metabolism, we have constructed and manually curated a genome-scale metabolic model of M. acetivorans, iMB745, which accounts for 745 of the 4,540 predicted protein-coding genes (16%) in the M. acetivorans genome. The reconstruction effort has identified key knowledge gaps and differences in peripheral and central metabolism between methanogenic species. Using flux balance analysis, the model quantitatively predicts wild-type phenotypes and is 96% accurate in knockout lethality predictions compared to currently available experimental data. The model was used to probe the mechanisms and energetics of by-product formation and growth on carbon monoxide, as well as the nature of the reaction catalyzed by the soluble heterodisulfide reductase HdrABC in M. acetivorans. The genome-scale model provides quantitative and qualitative hypotheses that can be used to help iteratively guide additional experiments to further the state of knowledge about methanogenesis.
机译:乙酸甲烷单孢菌菌株C2A是海洋产甲烷古生菌,以其底物利用,遗传易加工性和新颖的节能机制而著称。为了帮助探究该生物体独特代谢的表型意义,我们构建并手动制定了乙酸食盐支原体的基因组规模代谢模型iMB745,该模型占M中4,540个预测的蛋白质编码基因中的745(占16%)乙炔基因组。重建工作已经确定了关键的知识差距以及产甲烷物种之间在外围和中央代谢方面的差异。通过使用通量平衡分析,该模型可以定量预测野生型表型,并且与目前可用的实验数据相比,其在敲除致死率预测中的准确性为96%。该模型用于探讨副产物在一氧化碳上形成和生长的机理和能量,以及可溶性杂二硫键还原酶HdrABC催化的乙酸食甲烷支原体催化反应的性质。基因组规模模型提供了定量和定性的假设,可用于帮助迭代地指导其他实验,以进一步了解甲烷生成的知识状态。

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