ArticleNature communications2025
Denitrification is a community trait with partial pathways dominating across microbial genomes and biomes.
Article in Nature communications, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers.
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Who cites it
13 citing papers in PubMed.
- Active layer microbial inocula restore missing functions across thawed permafrost soils.Nature communications · 2026Article
- Three Decades of Soil NGlobal change biology · 2026Review
- Denitrification Modularity and Its Environmental Controls in Transiently Versus Permanently Anoxic Marine Systems.Environmental microbiology · 2026Article
- Comparative analysis of soil prokaryotic community structure and function in Ethiopian Church Forests and adjacent habitats.Scientific reports · 2026Article
- Genetic Potential for N₂O Metabolism in Tree Tissues: Insights From Nitrogen Cycling Gene Prevalence and nosZ Diversity Across Tree Species.Microbial ecology · 2026Article
- Identification of bacterial candidates that promote the growth of the seagrassbioRxiv : the preprint server for biology · 2026Article
- Article
- Learning functional groups in complex microbiomes.bioRxiv : the preprint server for biology · 2026Article
- Robiginitalea rubriflava sp. nov. and Robiginitalea insularis sp. nov., isolated from coastal seawaters of the Yellow Sea.Journal of microbiology (Seoul, Korea) · 2026Article
- Metabolic division of labor drives estuarine-coastal N2O emissions.The ISME journal · 2026Article
- Flavobacteria consume nitrous oxide produced by partial denitrifiers in coastal sediments.The ISME journal · 2026Article
- Unexpected novel clade III type nitrous oxide-reducing bacteria from incubated lake sediments.ISME communications · 2026Article
- Microorganisms in the phyllosphere of Norway spruce controlling nitrous oxide dynamics.ISME communications · 2025Article
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Authors and funding
4 authors.
Funding
Abstract
Diverse microorganisms can execute one or more steps in denitrification, during which nitrate or nitrite is successively reduced into nitric oxide, nitrous oxide, and ultimately dinitrogen. Many of the best-characterized denitrifiers are complete denitrifiers capable of executing all steps in the pathway, but their dominance in natural communities and what metabolic traits and environmental factors drive the global distribution of complete vs. partial denitrifiers are unclear. To address this, we conducted a comparative analysis of denitrification genes in 61,293 genomes, 3991 metagenomes, and 413 terrestrial and aquatic metatranscriptomes. We show that partial denitrifiers outnumber complete denitrifiers and the potential to initiate denitrification is more common than the potential to terminate it, particularly in nutrient rich environments. Our results further indicate that complete denitrifiers tend to be fast-growing organisms, favoring organic acid over sugar metabolism, and encoding the ability to oxidize and reduce a broader range of organic and inorganic compounds compared to partial denitrifiers. This suggests complete denitrifiers are metabolically flexible opportunists. Together, our results indicate an environmental footprint on the presence of denitrification genes which favors the genomic potential for partial over complete denitrification in most biomes and highlight that completion of the denitrification pathway is a community effort.
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