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对球形红细菌能量和代谢网络的全球洞察。

Global insights into energetic and metabolic networks in Rhodobacter sphaeroides.

作者信息

Imam Saheed, Noguera Daniel R, Donohue Timothy J

机构信息

Department of Bacteriology, University of Wisconsin, Madison, Suite 5166, Wisconsin Energy Institute, 1552 University Avenue, Madison, WI 53726-4084, USA.

出版信息

BMC Syst Biol. 2013 Sep 13;7:89. doi: 10.1186/1752-0509-7-89.

Abstract

BACKGROUND

Improving our understanding of processes at the core of cellular lifestyles can be aided by combining information from genetic analyses, high-throughput experiments and computational predictions.

RESULTS

We combined data and predictions derived from phenotypic, physiological, genetic and computational analyses to dissect the metabolic and energetic networks of the facultative photosynthetic bacterium Rhodobacter sphaeroides. We focused our analysis on pathways crucial to the production and recycling of pyridine nucleotides during aerobic respiratory and anaerobic photosynthetic growth in the presence of an organic electron donor. In particular, we assessed the requirement for NADH/NADPH transhydrogenase enzyme, PntAB during respiratory and photosynthetic growth. Using high-throughput phenotype microarrays (PMs), we found that PntAB is essential for photosynthetic growth in the presence of many organic electron donors, particularly those predicted to require its activity to produce NADPH. Utilizing the genome-scale metabolic model iRsp1095, we predicted alternative routes of NADPH synthesis and used gene expression analyses to show that transcripts from a subset of the corresponding genes were conditionally increased in a ΔpntAB mutant. We then used a combination of metabolic flux predictions and mutational analysis to identify flux redistribution patterns utilized in the ΔpntAB mutant to compensate for the loss of this enzyme. Data generated from metabolic and phenotypic analyses of wild type and mutant cells were used to develop iRsp1140, an expanded genome-scale metabolic reconstruction for R. sphaeroides with improved ability to analyze and predict pathways associated with photosynthesis and other metabolic processes.

CONCLUSIONS

These analyses increased our understanding of key aspects of the photosynthetic lifestyle, highlighting the added importance of NADPH production under these conditions. It also led to a significant improvement in the predictive capabilities of a metabolic model for the different energetic lifestyles of a facultative organism.

摘要

背景

整合来自遗传分析、高通量实验和计算预测的信息,有助于加深我们对细胞生命活动核心过程的理解。

结果

我们整合了来自表型、生理、遗传和计算分析的数据及预测结果,以剖析兼性光合细菌球形红细菌的代谢和能量网络。我们重点分析了在存在有机电子供体的情况下,有氧呼吸和厌氧光合生长过程中对吡啶核苷酸产生和循环至关重要的途径。特别是,我们评估了呼吸和光合生长过程中对NADH/NADPH转氢酶PntAB的需求。使用高通量表型微阵列(PMs),我们发现PntAB对于在许多有机电子供体存在下的光合生长至关重要,尤其是那些预计需要其活性来产生NADPH的供体。利用基因组规模代谢模型iRsp1095,我们预测了NADPH合成的替代途径,并通过基因表达分析表明,相应基因子集中的转录本在ΔpntAB突变体中会有条件地增加。然后,我们结合代谢通量预测和突变分析,以识别ΔpntAB突变体中用于补偿该酶缺失的通量重新分布模式。野生型和突变体细胞的代谢和表型分析产生的数据被用于开发iRsp1140,这是一个扩展的球形红细菌基因组规模代谢重建模型,具有更强的分析和预测与光合作用及其他代谢过程相关途径的能力。

结论

这些分析加深了我们对光合生命活动关键方面的理解,突出了在这些条件下NADPH产生的额外重要性。这也显著提高了代谢模型对兼性生物不同能量代谢方式的预测能力。

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