| Literature DB >> 27496777 |
Katja Laufer1, Hans Røy2, Bo Barker Jørgensen2, Andreas Kappler3.
Abstract
Nitrate-reducingEntities:
Mesh:
Substances:
Year: 2016 PMID: 27496777 PMCID: PMC5068159 DOI: 10.1128/AEM.01570-16
Source DB: PubMed Journal: Appl Environ Microbiol ISSN: 0099-2240 Impact factor: 4.792
FIG 1Schematic representation of the experimental setup. (Top) The microcosm experiment was divided into two phases. The purpose of the first phase was to deplete the microcosms from bioavailable organic carbon to be able to quantify the incorporation of 14CO2 in the second phase by autotrophic nitrate-reducing Fe(II) oxidizers. (Bottom) Sampling procedure. Asterisks indicate parameters that were measured only during the first phase or that were measured by a different method in the second phase. MQ, Milli-Q water.
Geochemical parameters and MPN of Fe(III) reducers and nitrate-reducing Fe(II) oxidizers in sediment from Norsminde Fjord and Kalø Vig
| Parameter | Value for sediment | |
|---|---|---|
| Norsminde Fjord | Kalø Vig | |
| % O2 saturation of water column | 100 | 100 |
| O2 penetration depth in sediment (mm) | 2 | 5 |
| Salinity | 22.1 | 23.3 |
| pH of water column | 8.2 | 7.8 |
| pH in anoxic part of sediment (sediment depth [mm]) | 7.4 (2) | 7.2 (7) |
| Redox potential in water column (mV) | +380 | +435 |
| Redox potential in sediment (mV) (sediment depth [mm]) | −98 (5) | +263 (15) |
| Mean Fe(II) concn in pore water (μmol liter−1) ± SD | 92 ± 60 | 23 ± 53 |
| Mean Fe(II) concn in sediment (1 M HCl extraction) (μmol g−1 [dry wt]) ± SD | 35 ± 21 | 0.4 ± 0.1 |
| NO3− concn in water column (μmol liter−1) | 64 | ND |
| NO2− concn in water column (μmol liter−1) | BDL | ND |
| Mean NO3− concn in pore water (μmol liter−1) ± SD | BDL | 11.66 ± 2.9 |
| NO2− concn in pore water (μmol liter−1) | BDL | BDL |
| Mean TOC concn in sediment (%) ± SD | 2.9 (per wt) | 0.45 ± 0.32 |
| Mean DOC concn in water column (mg liter−1) ± SD | 4.9 | 4.4 ± 0.1 |
| Mean MPN NO3−-reducing Fe(II) oxidizers | 6.9 × 103 (3.2 × 103–8.3 × 103) | 5.7 × 103 (2.4 × 103–7.9 × 103) |
| Mean MPN Fe(III) reducers (cells g−1 [dry wt]) (range) | 4.7 × 103 (9.8 × 102–6.2 × 103) | 2.9 × 102 (1.2 × 102–6.7 × 102) |
BDL, below the detection limit; ND, not determined.
MPN were determined only for mixotrophic nitrate-reducing Fe(II) oxidizers, as due to the high TOC concentration in the sediment, it was not possible to determine MPN for autotrophic nitrate-reducing Fe(II) oxidizers.
FIG 2Temporal development of Fe(II) (top) and NO3− (bottom) concentrations in the first and second phases of the microcosm experiment with sediment from Norsminde Fjord. Shown are the data for total Fe(II) (extraction with 40 mM sulfamic acid) and NO3− in the dissolved phase. In the top panel, the black arrow indicates the time point at which Fe(II) was readded to the microcosms. In the bottom panel, the black arrows indicate the time points at which NO3− was readded to the microcosms. Phase 1 is the first phase of the experiment, in which nitrate was added, organic carbon was depleted, and Fe was cycled. The light gray boxes in phase 1 indicate when Fe(III) reduction was occurring. Error bars show standard deviations of data from three replicates.
FIG 3(Left) Temporal development of Fe(II) (top) and NO3− (bottom) concentrations in the second phase of the microcosm experiment with sediment from Norsminde Fjord. Shown are the data for total Fe(II) (extraction with 40 mM sulfamic acid) and NO3− in the dissolved phase. The incorporation of an inorganic 14C tracer (14C-labeled bicarbonate) into biomass was quantified in mini-microcosms at three time intervals (T1, T2, and T3) (indicated by the white boxes). Error bars show standard deviations of data from three replicates (in some cases, they are smaller than the symbol). (Right) Results of liquid scintillation counting of 14C incorporated into biomass from incubations in mini-microcosms during the three different time intervals.
Decreases of Fe(II) and NO3− concentrations and rates and stoichiometries of Fe(II) oxidation, Fe(III) reduction, and NO3− reduction in the two phases of the microcosm experiment with sediment from Norsminde Fjord
| Parameter | Value for expt | |||
|---|---|---|---|---|
| Phase 1 | Phase 2 | |||
| Cycle 1 | Cycle 2 | Cycle 3 | ||
| Decrease of Fe(II) concn (mM) | 3.15 | 1.98 | 2.59 | 3.20 |
| Decrease of Fe(III) concn (mM) | 1.79 | 2.41 | — | — |
| Decrease of NO3− concn (mM) | 3.87 | 3.69 (−1.74 | 1.16 | 0.90 |
| Rate of Fe(II) oxidation (mM day−1) | 0.26 | 0.15 | 0.19 | 0.23 |
| Rate of Fe(III) reduction (mM day−1) | 0.16 | 0.18 | — | — |
| Rate of NO3− reduction (mM day−1) | 0.31 | 0.14 | 0.083 | 0.064 |
| Stoichiometry of NO3−reduced/Fe(II)oxidized | 1.23 | 0.89 | 0.44 | 0.28 |
No Fe(III) reduction was measured.
Amount of nitrate that was reduced while Fe(II) was oxidized.
FIG 4Development of Fe(II) and NO3− concentrations in a microcosm experiment with sediment from Kalø Vig. Shown are data for total Fe(II) (extraction with 40 mM sulfamic acid) and NO3− in the dissolved phase. The time interval “A,” marked by red lines in the graphs, shows that nitrate reduction had ceased because oxidizable Fe(II) was depleted, but nitrate reduction started again at day 32 when fresh Fe(II) was added. Error bars show standard deviations of data from triplicates (in some cases, they are smaller than the symbol).
Decreases of Fe(II) and NO3− concentrations and rates and stoichiometries of Fe(II) oxidation and NO3− reduction at different time intervals in the microcosm experiment with sediment from Kalø Vig
| Time of incubation (days) | Decrease of Fe(II) concn (mM) [rate of Fe(II) oxidation (mM day−1)] | Decrease of NO3− concn (mM) (rate of NO3− oxidation [mM day−1]) | Stoichiometry of NO3−reduced/Fe(II)oxidized |
|---|---|---|---|
| 0–25 | 2.5 (0.10) | 1.25 (0.05) | 0.49 |
| 32–88 | 2.17 (0.039) | 0.47 (0.008) | 0.22 |
FIG 5C fixation rates measured in mini-microcosms during three time intervals in phase 2 of the experiment. Rates from incubations where Fe(II) was added (NO3− was still present after preincubation) are shown on the left. Rates from incubations where no Fe(II) was added and also no consumption of NO3− was observed over time (NO3− was still present after preincubation) are shown on the right. Error bars show standard deviations of data for three samples (available for the 18-h samples only).