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Kinetics and Mechanism of Mineral Respiration: How Iron Hemes Synchronize Electron Transfer Rates

机译:矿物呼吸动力学和机制:铁血液如何使电子传输速率同步

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Anaerobic microorganisms of the Geobacter genus are effective electron sources for the synthesis of nanoparticles, for bioremediation of polluted water, and for the production of electricity in fuel cells. In multistep reactions, electrons are transferred via iron/heme cofactors of c-type cytochromes from the inner cell membrane to extracellular metal ions, which are bound to outer membrane cytochromes. We measured electron production and electron flux rates to 5x10(5) e s(-1) per G. sulfurreducens. Remarkably, these rates are independent of the oxidants, and follow zero order kinetics. It turned out that the microorganisms regulate electron flux rates by increasing their Fe2+/Fe3+ ratios in the multiheme cytochromes whenever the activity of the extracellular metal oxidants is diminished. By this mechanism the respiration remains constant even when oxidizing conditions are changing. This homeostasis is a vital condition for living systems, and makes G. sulfurreducens a versatile electron source.
机译:Geobacter Genus的厌氧微生物是用于合成纳米颗粒的有效电子来源,用于污染水的生物化,以及用于生产燃料电池的电力。在多步骤反应中,通过从内部电池膜的C型细胞变色剂的铁/血红素辅因子转移到细胞外金属离子,其与外膜细胞变色结合。我们测量电子产生和电子通量速率为每G硫化琥珀·琥珀炔的5×10(5)℃(-1)。值得注意的是,这些速率与氧化剂无关,并遵循零阶动力学。结果证明,每当细胞外金属氧化剂的活性降低时,微生物通过增加多血泡细胞变性中的Fe2 + / Fe3 +比来调节电子通量速率。通过该机制,即使在氧化条件发生变化时,呼吸仍然保持恒定。这种稳态是生命系统的重要条件,使G.硫化琥珀源是多功能电子来源。

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