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Exploiting algal NADPH oxidase for biophotovoltaic energy

机译:用于生物光伏能量的藻类NADPH氧化酶

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Photosynthetic microbes exhibit light-dependent electron export across the cell membrane, which can generate electricity in biological photovoltaic (BPV) devices. How electrons are exported remains to be determined; the identification of mechanisms would help selection or generation of photosynthetic microbes capable of enhanced electrical output. We show that plasma membrane NADPH oxidase activity is a significant component of light-dependent generation of electricity by the unicellular green alga Chlamydomonas reinhardtii. NADPH oxidases export electrons across the plasma membrane to form superoxide anion from oxygen. The C. reinhardtii mutant lacking the NADPH oxidase encoded by RBO1 is impaired in both extracellular superoxide anion production and current generation in a BPV device. Complementation with the wild-type gene restores both capacities, demonstrating the role of the enzyme in electron export. Monitoring light-dependent extracellular superoxide production with a colorimetric assay is shown to be an effective way of screening for electrogenic potential of candidate algal strains. The results show that algal NADPH oxidases are important for superoxide anion production and open avenues for optimizing the biological component of these devices.
机译:光合微生物在细胞膜上表现出轻依赖的电子输出,这可以在生物光伏(BPV)器件中产生电力。如何将电子出口仍有待确定;机制的识别将有助于选择或产生能够增强电输出的光合微生物。我们展示了血浆膜NADPH氧化酶活性是单细胞绿藻骨髓Reinhardtii的轻质依赖性电力的重要组成部分。 NADPH氧化酶在血浆膜上出口电子以形成超氧化物阴离子。缺乏由RBO1编码的NADPH氧化酶的C. Reinhardtii突变体在BPV装置中的细胞外超氧化物阴离子生产和电流产生中受损。与野生型基因的互补恢复了两种能力,证明了酶在电子出口中的作用。监测具有比色测定的光依赖性细胞外超氧化物产生是筛选候选藻类菌株的电势的有效方法。结果表明,藻类NADPH氧化酶对超氧化物阴离子生产和开放途径很重要,用于优化这些装置的生物成分。

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