27. Felgate H, Giannopoulos G, Sullivan MJ et al (2012) The impact of copper, nitrate and
carbon status on the emission of nitrous oxide by two species of bacteria with biochemically
distinct denitrification pathways. Environ Microbiol 14:1788–1800
28. Hallin S, Philippot L, Löffler FE et al (2018) Genomics and ecology of novel N 2 O-reducing
microorganisms. Trends Microbiol 26:43–55
29. Yoon S, Song B, Phillips RL et al (2019) Ecological and physiological implications of
nitrogen oxide reduction pathways on greenhouse gas emissions in agroecosystems. FEMS
Micobiol Ecol 95: fiz066
30. Poole RK (2005) Nitric oxide and nitrosative stress tolerance in bacteria. Biochem Soc Trans
33:176–180
31. Luckmann M, Mania D, Kern M et al (2014) Production and consumption of nitrous oxide
in nitrate-ammonifying Wolinella succinogenes cells. Microbiology 160:1749–1759
32. Spott O, Russow R, Stange CF (2011) Formation of hybrid N 2 O and hybrid N 2 due to
codenitrification: first review of a barely considered process of microbially mediated
N-nitrosation. Soil Biol Biochem 43:1995–2011
33. Zhu-Barker X, Cavazos AR, Ostrom NE et al (2015) The importance of abiotic reactions for
nitrous oxide production. Biogeochemistry 126:251–267
34. Onley JR, Ahsan S, Sanford RA et al (2017) Denitrification by Anaeromyxobacter
dehalogenans, a common soil bacterium lacking nitrite reductase genes (nirS/nirK). Appl
Environ Microbiol 4:e01985-e2017
35. Lim NYN, Frostegård Å, Bakken LR (2018) Nitrite kinetics during anoxia: the role of
abiotic reactions versus microbial reduction. Soil Biol Biochem 119:203–209
36. Zumft WG (1997) Cell biology and molecular basis of denitrification. Microbiol Mol Biol
Rev 61:533–616
37. Sanford RA, Wagner DD, Wu Q et al (2012) Unexpected nondenitrifier nitrous oxide
reductase gene diversity and abundance in soils. Proc Natl Acad Sci USA 109:19709–19714
38. Jones CM, Graf DR, Bru D et al (2013) The unaccounted yet abundant nitrous
oxide-reducing microbial community: a potential nitrous oxide sink. ISME J 7:417–426
39. Bueno E, Mania D, Frostegård Å (2015) Anoxic growth of Ensifer meliloti 1021 by
N 2 O-reduction, a potential mitigation strategy. Front Microbiol 6:537
40. Tucker KD, Neal JL (1988) Growth and respiration of Bradyrhizobium japonicum
USDA143 with nitrous oxide as the terminal electron acceptor. Curr Microbiol 17:89–94
41. Yoon S, Nissen S, Park D et al (2016) Nitrous oxide reduction kinetics distinguish bacteria
harboring clade I NosZ from those harboring clade II NosZ. Appl Environ Microbiol
82:3793–3800
42. Suenaga T, Riya S, Hosomi M et al (2018) Biokinetic characterization and activities of
N 2 O-reducing bacteria in response to various oxygen levels. Front Microbiol 9:697
43. Suenaga T, Hori T, Riya S et al (2019) Enrichment, isolation, and characterization of
high-affinity N 2 O-reducing bacteria in a gas-permeable membrane reactor. Environ Sci
Technol 53:12101–12112
44. Strohm TO, Griffin B, Zumft WG et al (2007) Growth yields in bacterial denitrification and
nitrate ammonification. Appl Environ Microbiol 73:1420–1424
45. Hein S, Witt S, Simon J (2017) Clade II nitrous oxide respiration of Wolinella succinogenes
depends on the NosG, -C1, -C2, -H electron transport module, NosB and a
Rieske/cytochrome bc complex. Environ Microbiol 19:4913–4925
46. Payne WJ, Grant MA, Shapleigh J et al (1982) Nitrogen oxide reduction in Wolinella
succinogenes and Campylobacter species. J Bacteriol 152:915–918
47. Park D, Kim H, Yoon S (2017) Nitrous oxide reduction by an obligate aerobic bacterium,
Gemmatimonas aurantiaca strain T-27. Appl Environ Microbiol 83:e00502-e517
48. Zhang H, Sekiguchi Y, Hanada S et al (2003) Gemmatimonas aurantiaca gen. nov.,
sp. nov., a gram-negative, aerobic, polyphosphate-accumulating micro-organism, the first
cultured representative of the new bacterial phylum Gemmatimonadetes phyl. nov. Int J Syst
Evol Microbiol 53:1155–1163
Mitigation of Laughing Gas Emissions …
207
carbon status on the emission of nitrous oxide by two species of bacteria with biochemically
distinct denitrification pathways. Environ Microbiol 14:1788–1800
28. Hallin S, Philippot L, Löffler FE et al (2018) Genomics and ecology of novel N 2 O-reducing
microorganisms. Trends Microbiol 26:43–55
29. Yoon S, Song B, Phillips RL et al (2019) Ecological and physiological implications of
nitrogen oxide reduction pathways on greenhouse gas emissions in agroecosystems. FEMS
Micobiol Ecol 95: fiz066
30. Poole RK (2005) Nitric oxide and nitrosative stress tolerance in bacteria. Biochem Soc Trans
33:176–180
31. Luckmann M, Mania D, Kern M et al (2014) Production and consumption of nitrous oxide
in nitrate-ammonifying Wolinella succinogenes cells. Microbiology 160:1749–1759
32. Spott O, Russow R, Stange CF (2011) Formation of hybrid N 2 O and hybrid N 2 due to
codenitrification: first review of a barely considered process of microbially mediated
N-nitrosation. Soil Biol Biochem 43:1995–2011
33. Zhu-Barker X, Cavazos AR, Ostrom NE et al (2015) The importance of abiotic reactions for
nitrous oxide production. Biogeochemistry 126:251–267
34. Onley JR, Ahsan S, Sanford RA et al (2017) Denitrification by Anaeromyxobacter
dehalogenans, a common soil bacterium lacking nitrite reductase genes (nirS/nirK). Appl
Environ Microbiol 4:e01985-e2017
35. Lim NYN, Frostegård Å, Bakken LR (2018) Nitrite kinetics during anoxia: the role of
abiotic reactions versus microbial reduction. Soil Biol Biochem 119:203–209
36. Zumft WG (1997) Cell biology and molecular basis of denitrification. Microbiol Mol Biol
Rev 61:533–616
37. Sanford RA, Wagner DD, Wu Q et al (2012) Unexpected nondenitrifier nitrous oxide
reductase gene diversity and abundance in soils. Proc Natl Acad Sci USA 109:19709–19714
38. Jones CM, Graf DR, Bru D et al (2013) The unaccounted yet abundant nitrous
oxide-reducing microbial community: a potential nitrous oxide sink. ISME J 7:417–426
39. Bueno E, Mania D, Frostegård Å (2015) Anoxic growth of Ensifer meliloti 1021 by
N 2 O-reduction, a potential mitigation strategy. Front Microbiol 6:537
40. Tucker KD, Neal JL (1988) Growth and respiration of Bradyrhizobium japonicum
USDA143 with nitrous oxide as the terminal electron acceptor. Curr Microbiol 17:89–94
41. Yoon S, Nissen S, Park D et al (2016) Nitrous oxide reduction kinetics distinguish bacteria
harboring clade I NosZ from those harboring clade II NosZ. Appl Environ Microbiol
82:3793–3800
42. Suenaga T, Riya S, Hosomi M et al (2018) Biokinetic characterization and activities of
N 2 O-reducing bacteria in response to various oxygen levels. Front Microbiol 9:697
43. Suenaga T, Hori T, Riya S et al (2019) Enrichment, isolation, and characterization of
high-affinity N 2 O-reducing bacteria in a gas-permeable membrane reactor. Environ Sci
Technol 53:12101–12112
44. Strohm TO, Griffin B, Zumft WG et al (2007) Growth yields in bacterial denitrification and
nitrate ammonification. Appl Environ Microbiol 73:1420–1424
45. Hein S, Witt S, Simon J (2017) Clade II nitrous oxide respiration of Wolinella succinogenes
depends on the NosG, -C1, -C2, -H electron transport module, NosB and a
Rieske/cytochrome bc complex. Environ Microbiol 19:4913–4925
46. Payne WJ, Grant MA, Shapleigh J et al (1982) Nitrogen oxide reduction in Wolinella
succinogenes and Campylobacter species. J Bacteriol 152:915–918
47. Park D, Kim H, Yoon S (2017) Nitrous oxide reduction by an obligate aerobic bacterium,
Gemmatimonas aurantiaca strain T-27. Appl Environ Microbiol 83:e00502-e517
48. Zhang H, Sekiguchi Y, Hanada S et al (2003) Gemmatimonas aurantiaca gen. nov.,
sp. nov., a gram-negative, aerobic, polyphosphate-accumulating micro-organism, the first
cultured representative of the new bacterial phylum Gemmatimonadetes phyl. nov. Int J Syst
Evol Microbiol 53:1155–1163
Mitigation of Laughing Gas Emissions …
207
