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Oshiki, M.

Publications and source records attributed to Oshiki, M..

2 recordsLinked to original sources

Hydrogel-enhanced bioelectrochemical nitrate reduction for ammonium recovery from dilute nitrate via Shewanella oneidensis MR-1

Bioelectrochemical reduction of dilute nitrate (NO-; sub-mM to low-mM range) to ammonium (NH) offers a promising route toward circular nitrogen management from contaminated groundwater and environmental waters. However, on-site application of bioelectrochemical systems remains challenging due to low reduction rates and poor electron transfer efficiency of naturally formed biofilm electrodes. Here, we constructed a hydrogel biocathode by applying a carbon black/riboflavin/sodium alginate/cellulose hydrogel incorporating Shewanella oneidensis MR-1 cells to a graphite felt electrode via brush coating. The hydrogel electrode achieved NH production rates of 0.16-0.19 mol m-3 h-{superscript 1} without NO2- accumulation, and these rates were maintained without significant performance loss across three consecutive cycles with medium exchange over 1.5 days of total operation. The hydrogel electrode increased the current density by more than 5-fold compared with a conventional S. oneidensis biofilm electrode, indicating enhanced electron transfer efficiency per unit biomass, which directly contributed to the high NH production rates. The electricity consumption for NH production of 1.68-2.39 x 10{superscript 2} kJ g-N-{superscript 1} was substantially lower than that of metal catalyst systems at comparable NO- concentrations (typically, >104 kJ g-N-{superscript 1}). These findings demonstrate that the hydrogel electrode design represents an energy-efficient, and readily fabricated platform for bioelectrochemical NH production from dilute NO-.

microbiology↗

Membrane vesicles of Shewanella oneidensis MR-1 enhance denitrification growth in a species-selective manner

Denitrification, a fundamental bacterial respiratory process that occurs in anoxic environments, plays a pivotal role in energy synthesis and the global nitrogen cycle. Although the significance of this process is well-recognized, its regulation within polymicrobial communities remains poorly understood, particularly concerning interspecies interactions. In this study, we investigated the role that bacterial membrane vesicles (MV) play in modulating denitrification across bacterial species. MV is known to carry specific biomolecules such as secondary metabolites, proteins, and nucleic acids, therefore considered to be a secretion pathway. We found that MV produced by Shewanella oneidensis enhanced denitrification in a species-specific manner. Bacteria with highly hydrophobic surfaces tended to respond to denitrification enhancement, suggesting that the MV-bacteria attachment process is the key to generating species specificity. Transcriptome analysis and isotopic metabolite tracking indicated that the MV influenced denitrifying activities, rather than the transcription of denitrification-related genes. We further demonstrated that c-type cytochromes in MV act as key components that enhance denitrification. These insights expand our understanding of bacterial ecology, highlighting the role of membrane vesicles in facilitating respiratory competition and cooperation in polymicrobial communities.

microbiology↗