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Frostegard, A.

Publications and source records attributed to Frostegard, A..

3 recordsLinked to original sources

Linking meta-omics to the kinetics of denitrification intermediates reveals pH-dependent causes of N2O emissions and nitrite accumulation in soil

Denitrifier community phenotypes often result in transient accumulation of denitrification (NO3-[->]NO2-[->]NO[->]N2O[->]N2) intermediates. Consequently, anoxic spells drive NO-, N2O- and possibly HONO-emissions to the atmosphere, affecting both climate and tropospheric chemistry. Soil pH is a key controller of intermediate levels, and while there is a clear negative correlation between pH and emission of N2O, NO2- concentrations instead increase with pH. These divergent trends are probably a combination of direct effects of pH on the expression/activity of denitrification enzymes, and an indirect effect via altered community composition. This was studied by analyzing metagenomics/transcriptomics and phenomics of two soil denitrifier communities, one of pH 3.8 (Soil3.8) and the other 6.8 (Soil6.8). Soil3.8 had severely delayed N2O reduction despite early transcription of nosZ, encoding N2O reductase, by diverse denitrifiers, and of several nosZ accessory genes. This lends support to a post-transcriptional, pH-dependent mechanism acting on the NosZ apo-protein or on enzymes involved in its maturation. Metagenome/metatranscriptome reads of nosZ were almost exclusively clade I in Soil3.8 while clade II dominated in Soil6.8. Reads of genes and transcripts for NO2--reductase were dominated by nirK over nirS in both soils, while qPCR-based determinations showed the opposite, demonstrating that standard primer pairs only capture a fraction of the nirK community. The -omics results suggested that low NO2- concentrations in acidic soils, often ascribed to abiotic degradation, are primarily due to enzymatic activity. The NO reductase gene qnor was strongly expressed in Soil3.8, suggesting an important role in controlling NO. Production of HONO, for which some studies claim higher, others lower, emissions from NO2- accumulating soil, was estimated to be ten times higher from Soil3.8 than from Soil6.8. The study extends our understanding of denitrification-driven gas emissions and the diversity of bacteria involved and demonstrates that gene and transcript quantifications cannot always reliably predict community phenotypes.

microbiology

Bacteria in biogas digestates for reduced climate forcing

Inoculating agricultural soils with N2O-respiring bacteria (NRB) can reduce N2O-emissions, but would be impractical as a standalone operation. Here we demonstrate that digestates obtained after biogas production are suitable substrates and vectors for NRB. We show that indigenous NRB in digestates grew to high abundance during anaerobic enrichment under N2O. Gas-kinetics and meta-omic analyses showed that these NRB's, recovered as metagenome-assembled genomes (MAGs), grew by harvesting fermentation intermediates of the methanogenic consortium. Three NRB's were isolated, one of which matched the recovered MAG of a Dechloromonas, deemed by proteomics to be the dominant producer of N2O-reductase in the enrichment. While the isolates harbored genes required for a full denitrification pathway and could thus both produce and sequester N2O, their regulatory traits predicted that they act as N2O sinks in soil, which was confirmed experimentally. The isolates were grown by aerobic respiration in digestates, and fertilization with these NRB-enriched digestates reduced N2O emissions from soil. Our use of digestates for low-cost and large-scale inoculation with NRB in soil can be taken as a blueprint for future applications of this powerful instrument to engineer the soil microbiome, be it for enhancing plant growth, bioremediation, or any other desirable function.

microbiology

Competition for electrons favors N2O reduction in denitrifying Bradyrhizobium isolates

Bradyrhizobia are common members of soil microbiomes and known as N2-fixing symbionts of economically important legumes. Many are also denitrifiers, which can act as sinks or sources for N2O. Inoculation with compatible rhizobia is often needed for optimal N2-fixation, but the choice of inoculant may also have consequences for N2O emission. Here, we analyzed the phylogeny and denitrification capacity of Bradyrhizobium strains, most of them isolated from peanut-nodules. All were dinitrifiers, but only ~1/3 could reduce N2O while most others were net N2O producers. The N2O-reducing isolates showed strong preference for N2O- over NO3--reduction. Such preference was also observed in a study of other bradyrhizobia and tentatively ascribed to competition between the electron pathways to Nap (periplasmic NO3- reductase) and Nos (N2O reductase). Another possible explanation is lower abundance of Nap than Nos. Here, proteomics revealed that Nap was instead more abundant than Nos, supporting the hypothesis that the electron pathway to Nos outcompetes that to Nap. In contrast, Paracoccus denitrificans, which has membrane-bond NO3- reductase (Nar), reduced N2O and NO3- simultaneously. We propose that the control at the metabolic level, favoring N2O reduction over NO3- reduction, applies also to other denitrifiers carrying Nos and Nap but lacking Nar. Originality-Significance StatementThis study extends the current knowledge on denitrification in bradyrhizobia, which mostly originates from studies of one model strain, by investigating the denitrification phenotypes of a diverse collection of Bradyrhizobium isolates. Only 1/3 of them could reduce N2O while the others were net sources for this potent greenhouse gas. All N2O-reducers showed strong preference for N2O over NO3-. We revealed by proteomics that this was not explained by differences in the abundances of Nap (periplasmic nitrate reductase) and Nos (N2O reductase), which strengthens our hypothesis (Mania et al., 2020) of a metabolic control mechanism by which Nos competes efficiently with Nap for electrons, making these organisms strong sinks for N2O. The findings highlight the potential importance of these organisms as N2O sinks in natural and agricultural ecosystems and pinpoint the need to take N2O reduction into account, along with N2-fixation effectiveness, when searching for strains suitable for production of inoculants.

microbiology