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Sennett, L. B.

Publications and source records attributed to Sennett, L. B..

2 recordsLinked to original sources

Optimizing Carbon Sources to Promote Soil Denitrifiers: Lessons for Incubations, Enrichments, and Bioaugmentation

Oxygen concentrations fluctuate in soil across time and space. Under anoxic conditions, the three main microbial metabolic pathways - denitrification, fermentation, and DNRA - compete for the same carbon (C) sources. Studies on denitrification in complex soil communities often rely on incubation experiments to determine how various factors affect the regulatory biology of denitrifying organisms and their N2O emissions. These experiments typically require an exogenous C source to stimulate measurable activity, and the choice of C source is critical as it should support denitrification while minimizing competition from fermentation and DNRA. This consideration is equally important for the enrichment and isolation of diverse denitrifying organisms and for bioaugmentation-based N2O-mitigation strategies. Here, we compared twelve C sources, including glutamic acid, acetate, an artificial root exudate cocktail (eight compounds, individually and in combination), and a clover extract. By combining high-resolution denitrification gas kinetics, metagenomic sequencing, and 15N isotope labelling, we aimed to find a C source(s) that (1) supports a diverse soil-derived denitrifying community and (2) limits the competition for C from alternative anaerobic pathways. Among the tested substrates, only the clover extract supported denitrification and maintained a complex denitrifying community. Yet, it also promoted fermentation and DNRA, revealing that a trade-off must exist between fostering denitrifier diversity and limiting growth of organisms using competing anaerobic pathways. More broadly, our results highlight that C source is a methodological fulcrum in controlled soil microbiome studies. It shapes community composition, drives metabolic processes, and ultimately determines the ecological relevance of experimental outcomes and the success of enrichments and soil bioaugmentation approaches.

microbiology↗

Distinct denitrification phenotypes in closely related bacteria: clues to understanding variations in nitrite accumulation among Stutzerimonas strains

Nitrite (NO2-) is a key denitrification intermediate, formed from nitrate (NO3-). Transient NO2- accumulation varies among denitrifiers, yet the underlying causes remain poorly understood, despite its potential toxicity and role in NO and N2O emissions. We profiled eighteen related Stutzerimonas strains, including the model S. perfectomarina ZoBell, and identified three phenotypic clusters (full, partial and low nitrite accumulators; FNA, PNA and LNA) based on the fraction of NO3--N transiently accumulated as NO2-. LNA strains lack or express the membrane-bound nitrate reductase (NarG) late, relying on periplasmic NapA for NO3- reduction, possibly explaining their balanced NO2- production/reduction. FNA and PNA strains possess NapA and NarG but differ in their nitrite reductase (NirS) clades. Delayed nirS transcription as FNA strains transition to NO3- respiration likely accounts for some NO2- accumulation. However, addition of NO3- halted NO2- reduction in FNA strains, suggesting additional metabolic control. This may require the cytochromes NirTB, which are only found in FNA strains. The regulator DnrE was also unique to NO2--accumulators, likely having a role in finetuning NO2- regulation. Our findings reveal diverse NO2--handling phenotypes among denitrifiers and provide insights for optimizing wastewater nitrogen removal and soil bioaugmentation strategies to mitigate N2O emissions.

microbiology↗