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基于约束的模型对铁还原菌硫还原地杆菌代谢特征的研究

Characterization of metabolism in the Fe(III)-reducing organism Geobacter sulfurreducens by constraint-based modeling.

作者信息

Mahadevan R, Bond D R, Butler J E, Esteve-Nuñez A, Coppi M V, Palsson B O, Schilling C H, Lovley D R

机构信息

Genomatica, 5405 Morehouse Dr., Ste. 210, San Diego, CA 92121, USA.

出版信息

Appl Environ Microbiol. 2006 Feb;72(2):1558-68. doi: 10.1128/AEM.72.2.1558-1568.2006.

Abstract

Geobacter sulfurreducens is a well-studied representative of the Geobacteraceae, which play a critical role in organic matter oxidation coupled to Fe(III) reduction, bioremediation of groundwater contaminated with organics or metals, and electricity production from waste organic matter. In order to investigate G. sulfurreducens central metabolism and electron transport, a metabolic model which integrated genome-based predictions with available genetic and physiological data was developed via the constraint-based modeling approach. Evaluation of the rates of proton production and consumption in the extracellular and cytoplasmic compartments revealed that energy conservation with extracellular electron acceptors, such as Fe(III), was limited relative to that associated with intracellular acceptors. This limitation was attributed to lack of cytoplasmic proton consumption during reduction of extracellular electron acceptors. Model-based analysis of the metabolic cost of producing an extracellular electron shuttle to promote electron transfer to insoluble Fe(III) oxides demonstrated why Geobacter species, which do not produce shuttles, have an energetic advantage over shuttle-producing Fe(III) reducers in subsurface environments. In silico analysis also revealed that the metabolic network of G. sulfurreducens could synthesize amino acids more efficiently than that of Escherichia coli due to the presence of a pyruvate-ferredoxin oxidoreductase, which catalyzes synthesis of pyruvate from acetate and carbon dioxide in a single step. In silico phenotypic analysis of deletion mutants demonstrated the capability of the model to explore the flexibility of G. sulfurreducens central metabolism and correctly predict mutant phenotypes. These results demonstrate that iterative modeling coupled with experimentation can accelerate the understanding of the physiology of poorly studied but environmentally relevant organisms and may help optimize their practical applications.

摘要

硫还原地杆菌是地杆菌科中一个经过充分研究的代表物种,该科在与铁(III)还原耦合的有机物氧化、受有机物或金属污染的地下水生物修复以及从废弃有机物中发电等过程中发挥着关键作用。为了研究硫还原地杆菌的中心代谢和电子传递,通过基于约束的建模方法,开发了一个将基于基因组的预测与可用的遗传和生理数据相结合的代谢模型。对细胞外和细胞质区室中质子产生和消耗速率的评估表明,与细胞内电子受体相关的能量守恒相比,利用细胞外电子受体(如铁(III))进行的能量守恒受到限制。这种限制归因于细胞外电子受体还原过程中细胞质质子消耗的缺乏。对产生细胞外电子穿梭体以促进电子转移到不溶性铁(III)氧化物的代谢成本进行基于模型的分析,揭示了在地下环境中,不产生穿梭体的地杆菌属物种相对于产生穿梭体的铁(III)还原菌具有能量优势的原因。计算机模拟分析还表明,由于存在丙酮酸-铁氧还蛋白氧化还原酶,硫还原地杆菌的代谢网络比大肠杆菌的代谢网络能更有效地合成氨基酸,该酶可一步催化由乙酸盐和二氧化碳合成丙酮酸。对缺失突变体的计算机模拟表型分析证明了该模型能够探索硫还原地杆菌中心代谢的灵活性并正确预测突变体表型。这些结果表明,迭代建模与实验相结合可以加速对研究较少但与环境相关的生物体生理学的理解,并可能有助于优化它们的实际应用。

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