Substrate induced denitrification over or under estimates shifts in soil N₂/N₂O ratios.

The increase in atmospheric nitrous oxide (N₂O), a potent greenhouse and ozone depleting gas, is of serious global concern. Soils are large contributors to this increase through microbial processes that are enhanced in agricultural land due to nitrogenous fertilizer applications. Denitrification, a...

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Main Authors: Nicholas J Morley, David J Richardson, Elizabeth M Baggs
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0108144
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author Nicholas J Morley
David J Richardson
Elizabeth M Baggs
author_facet Nicholas J Morley
David J Richardson
Elizabeth M Baggs
author_sort Nicholas J Morley
collection DOAJ
description The increase in atmospheric nitrous oxide (N₂O), a potent greenhouse and ozone depleting gas, is of serious global concern. Soils are large contributors to this increase through microbial processes that are enhanced in agricultural land due to nitrogenous fertilizer applications. Denitrification, a respiratory process using nitrogen oxides as electron acceptors in the absence of oxygen, is the main source of N₂O. The end product of denitrification is benign dinitrogen (N₂) and understanding what regulates the shift in ratio of N₂O and N₂ emission is crucial for mitigation strategies. The role of organic carbon in controlling N₂O reduction is poorly understood, and mostly based on application of glucose. Here we investigated how a range of carbon compounds (succinate, butyrate, malic acid, acetate, glucose, sucrose and cysteine) affect denitrifier N₂/N₂O production stoichiometry under laboratory conditions. The results show that a soil's capability in efficiently reducing N₂O to N₂ is C substrate dependent and most compounds tested were different in regards to this efficiency compared to glucose. We challenge the concept of using glucose as a model soil C compound in furthering our understanding of denitrification and specifically the efficiency in the N₂O reductase enzyme. Organic acids, commonly exuded by roots, increased N₂/N₂O ratios compared to glucose, and therefore mitigated net N₂O release and we suggest provides better insights into soil regulatory aspects of N₂O reduction. The widespread use of glucose in soil laboratory studies could lead to misleading knowledge on the functioning of denitrification in soils with regards to N₂O reduction.
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spelling doaj-art-8a4c69e2db764f0faec354c4e89a5bbd2025-08-20T02:34:13ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0199e10814410.1371/journal.pone.0108144Substrate induced denitrification over or under estimates shifts in soil N₂/N₂O ratios.Nicholas J MorleyDavid J RichardsonElizabeth M BaggsThe increase in atmospheric nitrous oxide (N₂O), a potent greenhouse and ozone depleting gas, is of serious global concern. Soils are large contributors to this increase through microbial processes that are enhanced in agricultural land due to nitrogenous fertilizer applications. Denitrification, a respiratory process using nitrogen oxides as electron acceptors in the absence of oxygen, is the main source of N₂O. The end product of denitrification is benign dinitrogen (N₂) and understanding what regulates the shift in ratio of N₂O and N₂ emission is crucial for mitigation strategies. The role of organic carbon in controlling N₂O reduction is poorly understood, and mostly based on application of glucose. Here we investigated how a range of carbon compounds (succinate, butyrate, malic acid, acetate, glucose, sucrose and cysteine) affect denitrifier N₂/N₂O production stoichiometry under laboratory conditions. The results show that a soil's capability in efficiently reducing N₂O to N₂ is C substrate dependent and most compounds tested were different in regards to this efficiency compared to glucose. We challenge the concept of using glucose as a model soil C compound in furthering our understanding of denitrification and specifically the efficiency in the N₂O reductase enzyme. Organic acids, commonly exuded by roots, increased N₂/N₂O ratios compared to glucose, and therefore mitigated net N₂O release and we suggest provides better insights into soil regulatory aspects of N₂O reduction. The widespread use of glucose in soil laboratory studies could lead to misleading knowledge on the functioning of denitrification in soils with regards to N₂O reduction.https://doi.org/10.1371/journal.pone.0108144
spellingShingle Nicholas J Morley
David J Richardson
Elizabeth M Baggs
Substrate induced denitrification over or under estimates shifts in soil N₂/N₂O ratios.
PLoS ONE
title Substrate induced denitrification over or under estimates shifts in soil N₂/N₂O ratios.
title_full Substrate induced denitrification over or under estimates shifts in soil N₂/N₂O ratios.
title_fullStr Substrate induced denitrification over or under estimates shifts in soil N₂/N₂O ratios.
title_full_unstemmed Substrate induced denitrification over or under estimates shifts in soil N₂/N₂O ratios.
title_short Substrate induced denitrification over or under estimates shifts in soil N₂/N₂O ratios.
title_sort substrate induced denitrification over or under estimates shifts in soil n₂ n₂o ratios
url https://doi.org/10.1371/journal.pone.0108144
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AT elizabethmbaggs substrateinduceddenitrificationoverorunderestimatesshiftsinsoiln2n2oratios