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Transition from Anoxygenic to Oxygenic Photosynthesis in a Microcoleus chthonoplastes Cyanobacterial Mat

机译:拟南芥微藻蓝藻垫中从无氧光合作用到有氧光合作用的过渡

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Benthic cyanobacterial mats with the filamentous Microcoleus chthonoplastes as the dominant phototroph grow in oxic hypersaline environments such as Solar Lake, Sinai. The cyanobacteria are in situ exposed to chemical variations between 200 μmol of sulfide liter?1 at night and 1 atm pO2 during the day. During experimental H2S to O2 transitions the microbial community was shown to shift from anoxygenic photosynthesis, with H2S as the electron donor, to oxygenic photosynthesis. Microcoleus filaments could carry out both types of photosynthesis concurrently. Anoxygenic photosynthesis dominated at high sulfide levels, 500 μmol liter?1, while the oxygenic reaction became dominant when the sulfide level was reduced below 100 to 300 μmol liter?1 (25 to 75 μmol of H2S liter?1). An increasing inhibition of the oxygenic photosynthesis was observed upon transition to oxic conditions from increasing sulfide concentrations. Oxygen built up within the Microcoleus layer of the mat even under 5 mmol of sulfide liter?1 (500 μmol of H2S liter?1) in the overlying water. The implications of such a localized O2 production in a highly reducing environment are discussed in relation to the evolution of oxygenic photosynthesis during the Proterozoic era.
机译:在有氧的高盐环境中,例如西奈的太阳盐湖中,以丝状微囊藻为优势的光养生物的底栖蓝藻垫生长。蓝细菌原位暴露于夜间200μmol硫化物升?1和白天1 atm pO2的化学变化之间。在从H2S到O2的实验过程中,微生物群落已从以H2S为电子供体的无氧光合作用转变为氧光合作用。微彩丝可以同时进行两种光合作用。生氧光合作用在高硫化物含量(500μmol升?1)下占主导地位,而当硫化物含量降至100至300μmol升?1(25至75μmolH2S升?1)以下时,氧反应占主导地位。从硫化物浓度增加过渡到有氧条件后,观察到对氧光合作用的抑制作用增强。即使在上层水中的硫化物升≤1(500μmolH2S升≤1)的情况下,垫的微色层中也会积聚氧气。讨论了在高度还原的环境中这种局部化的O2产生的意义,涉及到元古代的氧光合作用的演变。

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