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Published on: July 24, 2016
Geobacter metallireducens-evaluation of its sustainability in nitrate-reducing Fe(II) oxidation under autotrophic
Stefanie Becker1, Lukas Ostler1, Andreas Kappler1
1Geomicrobiology, Department of Geosciences, University of Tübingen, Schnarrenbergstrasse 94‒96, D-72076 Tübingen, Germany.
Abstract:
Bacterial nitrate (NO3-) reducing Fe(II) oxidation is often regarded as an autotrophic process, although its long-term sustainability is rarely demonstrated. Here, we assessed whether Geobacter metallireducens (ATCC 53774) can sustain chemolithoautotrophic nitrate-reducing Fe(II) oxidation. Cultures were incubated with Fe(II) and NO3- as electron donor and acceptor, respectively, and CO2 as the sole carbon source. Negative controls contained either (1) electron acceptor, (2) donor or (3) no substrates. We found that first-generation cultures transferred from a washed NO3-/acetate-grown preculture oxidized 21.0±1.3% (2.09±0.14 mM) of 10 mM Fe(II) and reduced 5.2±3.9% (0.20±0.15 mM) of 4 mM NO3-. Nitrite remained below the detection limit and ammonium increase was not observed while total N2O accumulated up to 31.34±1.90 µM. However, following transfers under organic-free conditions did not sustain Fe(II) oxidation. Further, we did not observe a decrease in nitrate, although we found low N2O formation of total 9.10±0.42 µM and 14.10±3.90 µM in later generations. These results demonstrate that G. metallireducens does not sustain autotrophic nitrate-reducing Fe(II) oxidation, although it may contribute to coupled Fe(II) oxidation and nitrate reduction in organic environments.
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