Abstract
Chemolithoautotrophic AOB (ammonia-oxidizing bacteria) form a crucial component in microbial nitrogen cycling in both natural and engineered systems. Under specific conditions, including transitions from anoxic to oxic conditions and/or excessive ammonia loading, and the presence of high nitrite (NO 2 - ) concentrations, these bacteria are also documented to produce nitric oxide (NO) and nitrous oxide (N 2O) gases. Essentially, ammonia oxidation in the presence of non-limiting substrate concentrations (ammonia and O 2) is associated with N 2O production. An exceptional scenario that leads to such conditions is the periodical switch between anoxic and oxic conditions, which is rather common in engineered nitrogen-removal systems. In particular, the recovery from, rather than imposition of, anoxic conditions has been demonstrated to result in N2O production. However, applied engineering perspectives, so far, have largely ignored the contribution of nitrification to N 2O emissions in greenhouse gas inventories fromwastewater-treatment plants. Recent field-scale measurements have revealed that nitrification-related N 2O emissions are generally far higher than emissions assigned to heterotrophic denitrification. In the present paper, the metabolic pathways, which could potentially contribute to NO and N 2O production by AOB have been conceptually reconstructed under conditions especially relevant to engineered nitrogen-removal systems. Taken together, the reconstructed pathways, field- and laboratory-scale results suggest that engineering designs that achieve low effluent aqueous nitrogen concentrations also minimize gaseous nitrogen emissions. ©The Authors Journal compilation ©2011 Biochemical Society.
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Chandran, K., Stein, L. Y., Klotz, M. G., & Van Loosdrecht, M. C. M. (2011). Nitrous oxide production by lithotrophic ammonia-oxidizing bacteria and implications for engineered nitrogen-removal systems. In Biochemical Society Transactions (Vol. 39, pp. 1832–1837). https://doi.org/10.1042/BST20110717
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