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Nitrification

Nitrification is the biological oxidation of ammonia to nitrate via the intermediary nitrite. Nitrification is an important step in the nitrogen cycle in soil. The process of complete nitrification may occur through separate organisms[1] or entirely within one organism, as in comammox bacteria. The transformation of ammonia to nitrite is usually the rate limiting step of nitrification. Nitrification is an aerobic process performed by small groups of autotrophic bacteria and archaea.

Nitrogen cycle

Microbiology edit

Ammonia oxidation edit

The process of nitrification begins with the first stage of ammonia oxidation, where ammonia (NH3) or ammonium (NH4+) get converted into nitrite (NO2-). This first stage is sometimes known as nitritation. It is performed by two groups of organisms, ammonia-oxidizing bacteria (AOB) and ammonia-oxidizing archaea (AOA[2]).

Ammonia-Oxidizing Bacteria edit

Ammonia-Oxidizing Bacteria (AOB) are typically Gram-negative bacteria and belong to Betaproteobacteria and Gammaproteobacteria[3] including the commonly studied genera including Nitrosomonas and Nitrococcus. They are known for their ability to utilize ammonia as an energy source and are prevalent in a wide range of environments, such as soils, aquatic systems, and wastewater treatment plants.

AOB possess enzymes called ammonia monooxygenases (AMOs), which are responsible for catalyzing the conversion of ammonia to hydroxylamine (NH2OH), a crucial intermediate in the process of nitrification.[4] This enzymatic activity is sensitive to environmental factors, such as pH, temperature, and oxygen availability.

AOB play a vital role in soil nitrification, making them key players in nutrient cycling. They contribute to the transformation of ammonia derived from organic matter decomposition or fertilizers into nitrite, which subsequently serves as a substrate for nitrite-oxidizing bacteria (NOB).

Ammonia-Oxidizing Archaea edit

Prior to the discovery of archaea capable of ammonia oxidation, ammonia-oxidizing bacteria (AOB) were considered the only organisms capable of ammonia oxidation. Since their discovery in 2005,[5] two isolates of AOAs have been cultivated: Nitrosopumilus maritimus[6] and Nitrososphaera viennensis.[7] When comparing AOB and AOA, AOA dominate in both soils and marine environments,[2][8][6][9][10][11] suggesting that Nitrososphaerota (formerly Thaumarchaeota) may be greater contributors to ammonia oxidation in these environments.[2]

Crenarchaeol, which is generally thought to be produced exclusively by AOA (specifically Nitrososphaerota), has been proposed as a biomarker for AOA and ammonia oxidation. Crenarchaeol abundance has been found to track with seasonal blooms of AOA, suggesting that it may be appropriate to use crenarchaeol abundances as a proxy for AOA populations[12] and thus ammonia oxidation more broadly. However the discovery of Nitrososphaerota that are not obligate ammonia-oxidizers[13] complicates this conclusion,[14] as does one study that suggests that crenarchaeol may be produced by Marine Group II Euryarchaeota.[15]

Nitrite oxidation edit

The second step of nitrification is the oxidation of nitrite into nitrate. This process is sometimes known as nitratation. Nitrite oxiadtion is conducted by nitrite-oxidizing bacteria (NOB) from the taxa Nitrospirota,[16] Nitrospinota,[17] Pseudomonadota[18] and Chloroflexota.[19] NOB are typically present in soil, geothermal springs, freshwater and marine ecosystems.

Complete ammonia oxidation edit

Ammonia oxidation to nitrate in a single step within one organism was predicted in 2006[20] and discovered in 2015 in the species Nitrospira inopinata. A pure culture of the organism was obtained in 2017,[21] representing a revolution in our understanding of the nitrification process.

History edit

The idea that oxidation of ammonia to nitrate is in fact a biological process was first given by Louis Pasteur in 1862.[22] Later in 1875, Alexander Müller, while conducting a quality assessment of water from wells in Berlin, noted that ammonium was stable in sterilized solutions but nitrified in natural waters. A. Müller put forward, that nitrification is thus performed by microorganisms.[23] In 1877, Jean-Jacques Schloesing and Achille Müntz, two French agricultural chemists working in Paris, proved that nitrification is indeed microbially mediated process by the experiments with liquid sewage and artificial soil matrix (sterilized sand with powdered chalk).[24] Their findings were confirmed soon (in 1878) by Robert Warington who was investigating nitrification ability of garden soil at the Rothamsted experimental station in Harpenden in England.[25] R. Warington made also the first observation that nitrification is a two-step process in 1879[26] which was confirmed by John Munro in 1886.[27] Although at that time, it was believed that two-step nitrification is separated into distinct life phases or character traits of a single microorganism.

The first pure nitrifier (ammonia-oxidizing) was most probably isolated in 1890 by Percy Frankland and Grace Frankland, two English scientists from Scotland.[28] Before that, Warington,[25] Sergei Winogradsky[29] and the Franklands were only able to enrich cultures of nitrifiers. Frankland and Frankland succeeded with a system of serial dilutions with very low inoculum and long cultivation times counting in years. Sergei Winogradsky claimed pure culture isolation in the same year (1890),[29] but his culture was still co-culture of ammonia- and nitrite-oxidizing bacteria.[30] S. Winogradsky succeeded just one year later in 1891.[31]

In fact, during the serial dilutions ammonia-oxidizers and nitrite-oxidizers were unknowingly separated resulting in pure culture with ammonia-oxidation ability only. Thus Frankland and Frankland observed that these pure cultures lose ability to perform both steps. Loss of nitrite oxidation ability was observed already by R. Warington.[26] Cultivation of pure nitrite oxidizer happened later during 20th century, however it is not possible to be certain which cultures were without contaminants as all theoretically pure strains share same trait (nitrite consumption, nitrate production).[30]

Ecology edit

Both steps are producing energy to be coupled to ATP synthesis. Nitrifying organisms are chemoautotrophs, and use carbon dioxide as their carbon source for growth. Some AOB possess the enzyme, urease, which catalyzes the conversion of the urea molecule to two ammonia molecules and one carbon dioxide molecule. Nitrosomonas europaea, as well as populations of soil-dwelling AOB, have been shown to assimilate the carbon dioxide released by the reaction to make biomass via the Calvin Cycle, and harvest energy by oxidizing ammonia (the other product of urease) to nitrite. This feature may explain enhanced growth of AOB in the presence of urea in acidic environments.[32]

In most environments, organisms are present that will complete both steps of the process, yielding nitrate as the final product. However, it is possible to design systems in which nitrite is formed (the Sharon process).

Nitrification is important in agricultural systems, where fertilizer is often applied as ammonia. Conversion of this ammonia to nitrate increases nitrogen leaching because nitrate is more water-soluble than ammonia.

Nitrification also plays an important role in the removal of nitrogen from municipal wastewater. The conventional removal is nitrification, followed by denitrification. The cost of this process resides mainly in aeration (bringing oxygen in the reactor) and the addition of an external carbon source (e.g., methanol) for the denitrification.

Nitrification can also occur in drinking water. In distribution systems where chloramines are used as the secondary disinfectant, the presence of free ammonia can act as a substrate for ammonia-oxidizing microorganisms. The associated reactions can lead to the depletion of the disinfectant residual in the system.[33] The addition of chlorite ion to chloramine-treated water has been shown to control nitrification.[34][35]

Together with ammonification, nitrification forms a mineralization process that refers to the complete decomposition of organic material, with the release of available nitrogen compounds. This replenishes the nitrogen cycle.

Nitrification in the marine environment edit

In the marine environment, nitrogen is often the limiting nutrient, so the nitrogen cycle in the ocean is of particular interest.[36][37] The nitrification step of the cycle is of particular interest in the ocean because it creates nitrate, the primary form of nitrogen responsible for "new" production. Furthermore, as the ocean becomes enriched in anthropogenic CO2, the resulting decrease in pH could lead to decreasing rates of nitrification. Nitrification could potentially become a "bottleneck" in the nitrogen cycle.[38]

Nitrification, as stated above, is formally a two-step process; in the first step ammonia is oxidized to nitrite, and in the second step nitrite is oxidized to nitrate. Diverse microbes are responsible for each step in the marine environment. Several groups of ammonia-oxidizing bacteria (AOB) are known in the marine environment, including Nitrosomonas, Nitrospira, and Nitrosococcus. All contain the functional gene ammonia monooxygenase (AMO) which, as its name implies, is responsible for the oxidation of ammonia.[2][37] Subsequent metagenomic studies and cultivation approaches have revealed that some Thermoproteota (formerly Crenarchaeota) possess AMO. Thermoproteota are abundant in the ocean and some species have a 200 times greater affinity for ammonia than AOB, contrasting with the previous belief that AOB are primarily responsible for nitrification in the ocean.[39][36] Furthermore, though nitrification is classically thought to be vertically separated from primary production because the oxidation of nitrate by bacteria is inhibited by light, nitrification by AOA does not appear to be light inhibited, meaning that nitrification is occurring throughout the water column, challenging the classical definitions of "new" and "recycled" production.[36]

In the second step, nitrite is oxidized to nitrate. In the oceans, this step is not as well understood as the first, but the bacteria Nitrospina[17][40] and Nitrobacter are known to carry out this step in the ocean.[36]

Chemistry and enzymology edit

Nitrification is a process of nitrogen compound oxidation (effectively, loss of electrons from the nitrogen atom to the oxygen atoms), and is catalyzed step-wise by a series of enzymes.

  (Nitrosomonas, Comammox)
  (Nitrobacter, Nitrospira, Comammox)

OR

 
 

In Nitrosomonas europaea, the first step of oxidation (ammonia to hydroxylamine) is carried out by the enzyme ammonia monooxygenase (AMO).

 

The second step (hydroxylamine to nitrite) is catalyzed by two enzymes. Hydroxylamine oxidoreductase (HAO), converts hydroxylamine to nitric oxide.[41]

 

Another currently unknown enzyme converts nitric oxide to nitrite.

The third step (nitrite to nitrate) is completed in a distinct organism.

 

Factors Affecting Nitrification Rates edit

Soil conditions edit

Due to its inherent microbial nature, nitrification in soils is greatly susceptible to soil conditions. In general, soil nitrification will proceed at optimal rates if the conditions for the microbial communities foster healthy microbial growth and activity. Soil conditions that have an effect on nitrification rates include:

  • Substrate availability (presence of NH4+)
  • Aeration (availability of O2)
  • Soil moisture content (availability of H2O)
  • pH (near neutral)
  • Temperature

Inhibitors of nitrification edit

Nitrification inhibitors are chemical compounds that slow the nitrification of ammonia, ammonium-containing, or urea-containing fertilizers, which are applied to soil as fertilizers. These inhibitors can help reduce losses of nitrogen in soil that would otherwise be used by crops. Nitrification inhibitors are used widely, being added to approximately 50% of the fall-applied anhydrous ammonia in states in the U.S., like Illinois.[42] They are usually effective in increasing recovery of nitrogen fertilizer in row crops, but the level of effectiveness depends on external conditions and their benefits are most likely to be seen at less than optimal nitrogen rates.[43]

The environmental concerns of nitrification also contribute to interest in the use of nitrification inhibitors: the primary product, nitrate, leaches into groundwater, producing toxicity in both humans[44] and some species of wildlife and contributing to the eutrophication of standing water. Some inhibitors of nitrification also inhibit the production of methane, a greenhouse gas.

The inhibition of the nitrification process is primarily facilitated by the selection and inhibition/destruction of the bacteria that oxidize ammonia compounds. A multitude of compounds that inhibit nitrification, which can be divided into the following areas: the active site of ammonia monooxygenase (AMO), mechanistic inhibitors, and the process of N-heterocyclic compounds. The process for the latter of the three is not yet widely understood, but is prominent. The presence of AMO has been confirmed on many substrates that are nitrogen inhibitors such as dicyandiamide, ammonium thiosulfate, and nitrapyrin.

The conversion of ammonia to hydroxylamine is the first step in nitrification, where AH2 represents a range of potential electron donors.

NH3 + AH2 + O2NH2OH + A + H2O

This reaction is catalyzed by AMO. Inhibitors of this reaction bind to the active site on AMO and prevent or delay the process. The process of oxidation of ammonia by AMO is regarded with importance due to the fact that other processes require the co-oxidation of NH3 for a supply of reducing equivalents. This is usually supplied by the compound hydroxylamine oxidoreductase (HAO) which catalyzes the reaction:

NH2OH + H2ONO2 + 5 H+ + 4 e

The mechanism of inhibition is complicated by this requirement. Kinetic analysis of the inhibition of NH3 oxidation has shown that the substrates of AMO have shown kinetics ranging from competitive to noncompetitive. The binding and oxidation can occur on two sites on AMO: in competitive substrates, binding and oxidation occurs at the NH3 site, while in noncompetitive substrates it occurs at another site.

Mechanism based inhibitors can be defined as compounds that interrupt the normal reaction catalyzed by an enzyme. This method occurs by the inactivation of the enzyme via covalent modification of the product, which ultimately inhibits nitrification. Through the process, AMO is deactivated and one or more proteins is covalently bonded to the final product. This is found to be most prominent in a broad range of sulfur or acetylenic compounds.

Sulfur-containing compounds, including ammonium thiosulfate (a popular inhibitor) are found to operate by producing volatile compounds with strong inhibitory effects such as carbon disulfide and thiourea.

In particular, thiophosphoryl triamide has been a notable addition where it has the dual purpose of inhibiting both the production of urease and nitrification.[45] In a study of inhibitory effects of oxidation by the bacteria Nitrosomonas europaea, the use of thioethers resulted in the oxidation of these compounds to sulfoxides, where the S atom is the primary site of oxidation by AMO. This is most strongly correlated to the field of competitive inhibition.

 
Examples of N-heterocyclic molecules.

N-heterocyclic compounds are also highly effective nitrification inhibitors and are often classified by their ring structure. The mode of action for these compounds is not well understood: while nitrapyrin, a widely used inhibitor and substrate of AMO, is a weak mechanism-based inhibitor of said enzyme, the effects of said mechanism are unable to correlate directly with the compound's ability to inhibit nitrification. It is suggested that nitrapyrin acts against the monooxygenase enzyme within the bacteria, preventing growth and CH4/NH4 oxidation.[46] Compounds containing two or three adjacent ring N atoms (pyridazine, pyrazole, indazole) tend to have a significantly higher inhibition effect than compounds containing non-adjacent N atoms or singular ring N atoms (pyridine, pyrrole).[47] This suggests that the presence of ring N atoms is directly correlated with the inhibition effect of this class of compounds.

Methane oxidation inhibition edit

Some enzymatic nitrification inhibitors, such as nitrapyrin, can also inhibit the oxidation of methane in methanotrophic bacteria.[48] AMO shows similar kinetic turnover rates to methane monooxygenase (MMO) found in methanotrophs, indicating that MMO is a similar catalyst to AMO for the purpose of methane oxidation. Furthermore, methanotrophic bacteria share many similarities to NH3 oxidizers such as Nitrosomonas.[49] The inhibitor profile of particulate forms of MMO (pMMO) shows similarity to the profile of AMO, leading to similarity in properties between MMO in methanotrophs and AMO in autotrophs.

Environmental concerns edit

 
Nitrification process tank at a sewage treatment plant

Nitrification inhibitors are also of interest from an environmental standpoint because of the production of nitrates and nitrous oxide from the process of nitrification. Nitrous oxide (N2O), although its atmospheric concentration is much lower than that of CO2, has a global warming potential of about 300 times greater than carbon dioxide and contributes 6% of planetary warming due to greenhouse gases. This compound is also notable for catalyzing the breakup of ozone in the stratosphere.[50] Nitrates, a toxic compound for wildlife and livestock and a product of nitrification, are also of concern.

Soil, consisting of polyanionic clays and silicates, generally has a net anionic charge. Consequently, ammonium (NH4+) binds tightly to the soil but nitrate ions (NO3) do not. Because nitrate is more mobile, it leaches into groundwater supplies through agricultural runoff. Nitrates in groundwater can affect surface water concentrations, either through direct groundwater-surface water interactions (e.g., gaining stream reaches, springs), or from when it is extracted for surface use. As an example, much of the drinking water in the United States comes from groundwater, but most wastewater treatment plants discharge to surface water.

Wildlife such as amphibians, freshwater fish, and insects are sensitive to nitrate levels, and have been known to cause death and developmental anomalies in affected species.[51] Nitrate levels also contribute to eutrophication, a process in which large algal blooms reduce oxygen levels in bodies of water and lead to death in oxygen-consuming creatures due to anoxia. Nitrification is also thought to contribute to the formation of photochemical smog, ground level ozone, acid rain, changes in species diversity, and other undesirable processes. In addition, nitrification inhibitors have also been shown to suppress the oxidation of methane (CH4), a potent greenhouse gas, to CO2. Both nitrapyrin and acetylene are shown to be especially strong suppressors of both processes, although the modes of action distinguishing them are unclear.

See also edit

References edit

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  44. ^ Duvva, Laxman Kumar; Panga, Kiran Kumar; Dhakate, Ratnakar; Himabindu, Vurimindi (2021-12-21). "Health risk assessment of nitrate and fluoride toxicity in groundwater contamination in the semi-arid area of Medchal, South India". Applied Water Science. 12 (1). doi:10.1007/s13201-021-01557-4. ISSN 2190-5487.
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  48. ^ Topp, Edward; Knowles, Roger (February 1984). "Effects of Nitrapyrin [2-Chloro-6-(Trichloromethyl) Pyridine] on the Obligate Methanotroph Methylosinus trichosporium OB3b". Applied and Environmental Microbiology. 47 (2): 258–262. Bibcode:1984ApEnM..47..258T. doi:10.1128/aem.47.2.258-262.1984. ISSN 0099-2240. PMC 239655. PMID 16346465.
  49. ^ Bédard C, Knowles R (March 1989). "Physiology, biochemistry, and specific inhibitors of CH4, NH4+, and CO oxidation by methanotrophs and nitrifiers". Microbiological Reviews. 53 (1): 68–84. doi:10.1128/MMBR.53.1.68-84.1989. PMC 372717. PMID 2496288.
  50. ^ Singh SN, Verma A (2007). "Environmental Review: The Potential of Nitrification Inhibitors to Manage the Pollution Effect of Nitrogen Fertilizers in Agricultural and Other Soils: A Review". Environmental Practice. 9 (4): 266–279. doi:10.1017/S1466046607070482. S2CID 128612680.
  51. ^ Rouse JD, Bishop CA, Struger J (October 1999). "Nitrogen pollution: an assessment of its threat to amphibian survival". Environmental Health Perspectives. 107 (10): 799–803. doi:10.2307/3454576. JSTOR 3454576. PMC 1566592. PMID 10504145.

External links edit

  • at fishdoc.co.uk
  • Nitrification at University of Aberdeen · King's College
  • Nitrification Basics for Aerated Lagoon Operators at lagoonsonline.com

nitrification, confused, with, nitration, biological, oxidation, ammonia, nitrate, intermediary, nitrite, important, step, nitrogen, cycle, soil, process, complete, nitrification, occur, through, separate, organisms, entirely, within, organism, comammox, bacte. Not to be confused with Nitration Nitrification is the biological oxidation of ammonia to nitrate via the intermediary nitrite Nitrification is an important step in the nitrogen cycle in soil The process of complete nitrification may occur through separate organisms 1 or entirely within one organism as in comammox bacteria The transformation of ammonia to nitrite is usually the rate limiting step of nitrification Nitrification is an aerobic process performed by small groups of autotrophic bacteria and archaea Nitrogen cycle Contents 1 Microbiology 1 1 Ammonia oxidation 1 1 1 Ammonia Oxidizing Bacteria 1 1 2 Ammonia Oxidizing Archaea 1 2 Nitrite oxidation 1 3 Complete ammonia oxidation 2 History 3 Ecology 3 1 Nitrification in the marine environment 4 Chemistry and enzymology 5 Factors Affecting Nitrification Rates 5 1 Soil conditions 5 2 Inhibitors of nitrification 5 3 Methane oxidation inhibition 6 Environmental concerns 7 See also 8 References 9 External linksMicrobiology editAmmonia oxidation edit The process of nitrification begins with the first stage of ammonia oxidation where ammonia NH3 or ammonium NH4 get converted into nitrite NO2 This first stage is sometimes known as nitritation It is performed by two groups of organisms ammonia oxidizing bacteria AOB and ammonia oxidizing archaea AOA 2 Ammonia Oxidizing Bacteria edit Ammonia Oxidizing Bacteria AOB are typically Gram negative bacteria and belong to Betaproteobacteria and Gammaproteobacteria 3 including the commonly studied genera including Nitrosomonas and Nitrococcus They are known for their ability to utilize ammonia as an energy source and are prevalent in a wide range of environments such as soils aquatic systems and wastewater treatment plants AOB possess enzymes called ammonia monooxygenases AMOs which are responsible for catalyzing the conversion of ammonia to hydroxylamine NH2OH a crucial intermediate in the process of nitrification 4 This enzymatic activity is sensitive to environmental factors such as pH temperature and oxygen availability AOB play a vital role in soil nitrification making them key players in nutrient cycling They contribute to the transformation of ammonia derived from organic matter decomposition or fertilizers into nitrite which subsequently serves as a substrate for nitrite oxidizing bacteria NOB Ammonia Oxidizing Archaea edit Prior to the discovery of archaea capable of ammonia oxidation ammonia oxidizing bacteria AOB were considered the only organisms capable of ammonia oxidation Since their discovery in 2005 5 two isolates of AOAs have been cultivated Nitrosopumilus maritimus 6 and Nitrososphaera viennensis 7 When comparing AOB and AOA AOA dominate in both soils and marine environments 2 8 6 9 10 11 suggesting that Nitrososphaerota formerly Thaumarchaeota may be greater contributors to ammonia oxidation in these environments 2 Crenarchaeol which is generally thought to be produced exclusively by AOA specifically Nitrososphaerota has been proposed as a biomarker for AOA and ammonia oxidation Crenarchaeol abundance has been found to track with seasonal blooms of AOA suggesting that it may be appropriate to use crenarchaeol abundances as a proxy for AOA populations 12 and thus ammonia oxidation more broadly However the discovery of Nitrososphaerota that are not obligate ammonia oxidizers 13 complicates this conclusion 14 as does one study that suggests that crenarchaeol may be produced by Marine Group II Euryarchaeota 15 Nitrite oxidation edit The second step of nitrification is the oxidation of nitrite into nitrate This process is sometimes known as nitratation Nitrite oxiadtion is conducted by nitrite oxidizing bacteria NOB from the taxa Nitrospirota 16 Nitrospinota 17 Pseudomonadota 18 and Chloroflexota 19 NOB are typically present in soil geothermal springs freshwater and marine ecosystems Complete ammonia oxidation edit Main article Comammox Ammonia oxidation to nitrate in a single step within one organism was predicted in 2006 20 and discovered in 2015 in the species Nitrospira inopinata A pure culture of the organism was obtained in 2017 21 representing a revolution in our understanding of the nitrification process History editThe idea that oxidation of ammonia to nitrate is in fact a biological process was first given by Louis Pasteur in 1862 22 Later in 1875 Alexander Muller while conducting a quality assessment of water from wells in Berlin noted that ammonium was stable in sterilized solutions but nitrified in natural waters A Muller put forward that nitrification is thus performed by microorganisms 23 In 1877 Jean Jacques Schloesing and Achille Muntz two French agricultural chemists working in Paris proved that nitrification is indeed microbially mediated process by the experiments with liquid sewage and artificial soil matrix sterilized sand with powdered chalk 24 Their findings were confirmed soon in 1878 by Robert Warington who was investigating nitrification ability of garden soil at the Rothamsted experimental station in Harpenden in England 25 R Warington made also the first observation that nitrification is a two step process in 1879 26 which was confirmed by John Munro in 1886 27 Although at that time it was believed that two step nitrification is separated into distinct life phases or character traits of a single microorganism The first pure nitrifier ammonia oxidizing was most probably isolated in 1890 by Percy Frankland and Grace Frankland two English scientists from Scotland 28 Before that Warington 25 Sergei Winogradsky 29 and the Franklands were only able to enrich cultures of nitrifiers Frankland and Frankland succeeded with a system of serial dilutions with very low inoculum and long cultivation times counting in years Sergei Winogradsky claimed pure culture isolation in the same year 1890 29 but his culture was still co culture of ammonia and nitrite oxidizing bacteria 30 S Winogradsky succeeded just one year later in 1891 31 In fact during the serial dilutions ammonia oxidizers and nitrite oxidizers were unknowingly separated resulting in pure culture with ammonia oxidation ability only Thus Frankland and Frankland observed that these pure cultures lose ability to perform both steps Loss of nitrite oxidation ability was observed already by R Warington 26 Cultivation of pure nitrite oxidizer happened later during 20th century however it is not possible to be certain which cultures were without contaminants as all theoretically pure strains share same trait nitrite consumption nitrate production 30 Ecology editBoth steps are producing energy to be coupled to ATP synthesis Nitrifying organisms are chemoautotrophs and use carbon dioxide as their carbon source for growth Some AOB possess the enzyme urease which catalyzes the conversion of the urea molecule to two ammonia molecules and one carbon dioxide molecule Nitrosomonas europaea as well as populations of soil dwelling AOB have been shown to assimilate the carbon dioxide released by the reaction to make biomass via the Calvin Cycle and harvest energy by oxidizing ammonia the other product of urease to nitrite This feature may explain enhanced growth of AOB in the presence of urea in acidic environments 32 In most environments organisms are present that will complete both steps of the process yielding nitrate as the final product However it is possible to design systems in which nitrite is formed the Sharon process Nitrification is important in agricultural systems where fertilizer is often applied as ammonia Conversion of this ammonia to nitrate increases nitrogen leaching because nitrate is more water soluble than ammonia Nitrification also plays an important role in the removal of nitrogen from municipal wastewater The conventional removal is nitrification followed by denitrification The cost of this process resides mainly in aeration bringing oxygen in the reactor and the addition of an external carbon source e g methanol for the denitrification Nitrification can also occur in drinking water In distribution systems where chloramines are used as the secondary disinfectant the presence of free ammonia can act as a substrate for ammonia oxidizing microorganisms The associated reactions can lead to the depletion of the disinfectant residual in the system 33 The addition of chlorite ion to chloramine treated water has been shown to control nitrification 34 35 Together with ammonification nitrification forms a mineralization process that refers to the complete decomposition of organic material with the release of available nitrogen compounds This replenishes the nitrogen cycle Nitrification in the marine environment edit In the marine environment nitrogen is often the limiting nutrient so the nitrogen cycle in the ocean is of particular interest 36 37 The nitrification step of the cycle is of particular interest in the ocean because it creates nitrate the primary form of nitrogen responsible for new production Furthermore as the ocean becomes enriched in anthropogenic CO2 the resulting decrease in pH could lead to decreasing rates of nitrification Nitrification could potentially become a bottleneck in the nitrogen cycle 38 Nitrification as stated above is formally a two step process in the first step ammonia is oxidized to nitrite and in the second step nitrite is oxidized to nitrate Diverse microbes are responsible for each step in the marine environment Several groups of ammonia oxidizing bacteria AOB are known in the marine environment including Nitrosomonas Nitrospira and Nitrosococcus All contain the functional gene ammonia monooxygenase AMO which as its name implies is responsible for the oxidation of ammonia 2 37 Subsequent metagenomic studies and cultivation approaches have revealed that some Thermoproteota formerly Crenarchaeota possess AMO Thermoproteota are abundant in the ocean and some species have a 200 times greater affinity for ammonia than AOB contrasting with the previous belief that AOB are primarily responsible for nitrification in the ocean 39 36 Furthermore though nitrification is classically thought to be vertically separated from primary production because the oxidation of nitrate by bacteria is inhibited by light nitrification by AOA does not appear to be light inhibited meaning that nitrification is occurring throughout the water column challenging the classical definitions of new and recycled production 36 In the second step nitrite is oxidized to nitrate In the oceans this step is not as well understood as the first but the bacteria Nitrospina 17 40 and Nitrobacter are known to carry out this step in the ocean 36 Chemistry and enzymology editNitrification is a process of nitrogen compound oxidation effectively loss of electrons from the nitrogen atom to the oxygen atoms and is catalyzed step wise by a series of enzymes 2 NH 4 3 O 2 2 NO 2 4 H 2 H 2 O displaystyle ce 2NH4 3O2 gt 2NO2 4H 2H2O nbsp Nitrosomonas Comammox 2 NO 2 O 2 2 NO 3 displaystyle ce 2NO2 O2 gt 2NO3 nbsp Nitrobacter Nitrospira Comammox OR NH 3 O 2 NO 2 3 H 2 e displaystyle ce NH3 O2 gt NO2 3H 2e nbsp NO 2 H 2 O NO 3 2 H 2 e displaystyle ce NO2 H2O gt NO3 2H 2e nbsp In Nitrosomonas europaea the first step of oxidation ammonia to hydroxylamine is carried out by the enzyme ammonia monooxygenase AMO NH 3 O 2 2 H NH 2 OH H 2 O displaystyle ce NH3 O2 2H gt NH2OH H2O nbsp The second step hydroxylamine to nitrite is catalyzed by two enzymes Hydroxylamine oxidoreductase HAO converts hydroxylamine to nitric oxide 41 NH 2 OH NO 3 H 3 e displaystyle ce NH2OH gt NO 3H 3e nbsp Another currently unknown enzyme converts nitric oxide to nitrite The third step nitrite to nitrate is completed in a distinct organism nitrite acceptor nitrate reduced acceptor displaystyle ce nitrite acceptor lt gt nitrate reduced acceptor nbsp Factors Affecting Nitrification Rates editSoil conditions edit Due to its inherent microbial nature nitrification in soils is greatly susceptible to soil conditions In general soil nitrification will proceed at optimal rates if the conditions for the microbial communities foster healthy microbial growth and activity Soil conditions that have an effect on nitrification rates include Substrate availability presence of NH4 Aeration availability of O2 Soil moisture content availability of H2O pH near neutral TemperatureInhibitors of nitrification edit Nitrification inhibitors are chemical compounds that slow the nitrification of ammonia ammonium containing or urea containing fertilizers which are applied to soil as fertilizers These inhibitors can help reduce losses of nitrogen in soil that would otherwise be used by crops Nitrification inhibitors are used widely being added to approximately 50 of the fall applied anhydrous ammonia in states in the U S like Illinois 42 They are usually effective in increasing recovery of nitrogen fertilizer in row crops but the level of effectiveness depends on external conditions and their benefits are most likely to be seen at less than optimal nitrogen rates 43 The environmental concerns of nitrification also contribute to interest in the use of nitrification inhibitors the primary product nitrate leaches into groundwater producing toxicity in both humans 44 and some species of wildlife and contributing to the eutrophication of standing water Some inhibitors of nitrification also inhibit the production of methane a greenhouse gas The inhibition of the nitrification process is primarily facilitated by the selection and inhibition destruction of the bacteria that oxidize ammonia compounds A multitude of compounds that inhibit nitrification which can be divided into the following areas the active site of ammonia monooxygenase AMO mechanistic inhibitors and the process of N heterocyclic compounds The process for the latter of the three is not yet widely understood but is prominent The presence of AMO has been confirmed on many substrates that are nitrogen inhibitors such as dicyandiamide ammonium thiosulfate and nitrapyrin The conversion of ammonia to hydroxylamine is the first step in nitrification where AH2 represents a range of potential electron donors NH3 AH2 O2 NH2OH A H2OThis reaction is catalyzed by AMO Inhibitors of this reaction bind to the active site on AMO and prevent or delay the process The process of oxidation of ammonia by AMO is regarded with importance due to the fact that other processes require the co oxidation of NH3 for a supply of reducing equivalents This is usually supplied by the compound hydroxylamine oxidoreductase HAO which catalyzes the reaction NH2OH H2O NO2 5 H 4 e The mechanism of inhibition is complicated by this requirement Kinetic analysis of the inhibition of NH3 oxidation has shown that the substrates of AMO have shown kinetics ranging from competitive to noncompetitive The binding and oxidation can occur on two sites on AMO in competitive substrates binding and oxidation occurs at the NH3 site while in noncompetitive substrates it occurs at another site Mechanism based inhibitors can be defined as compounds that interrupt the normal reaction catalyzed by an enzyme This method occurs by the inactivation of the enzyme via covalent modification of the product which ultimately inhibits nitrification Through the process AMO is deactivated and one or more proteins is covalently bonded to the final product This is found to be most prominent in a broad range of sulfur or acetylenic compounds Sulfur containing compounds including ammonium thiosulfate a popular inhibitor are found to operate by producing volatile compounds with strong inhibitory effects such as carbon disulfide and thiourea In particular thiophosphoryl triamide has been a notable addition where it has the dual purpose of inhibiting both the production of urease and nitrification 45 In a study of inhibitory effects of oxidation by the bacteria Nitrosomonas europaea the use of thioethers resulted in the oxidation of these compounds to sulfoxides where the S atom is the primary site of oxidation by AMO This is most strongly correlated to the field of competitive inhibition nbsp Examples of N heterocyclic molecules N heterocyclic compounds are also highly effective nitrification inhibitors and are often classified by their ring structure The mode of action for these compounds is not well understood while nitrapyrin a widely used inhibitor and substrate of AMO is a weak mechanism based inhibitor of said enzyme the effects of said mechanism are unable to correlate directly with the compound s ability to inhibit nitrification It is suggested that nitrapyrin acts against the monooxygenase enzyme within the bacteria preventing growth and CH4 NH4 oxidation 46 Compounds containing two or three adjacent ring N atoms pyridazine pyrazole indazole tend to have a significantly higher inhibition effect than compounds containing non adjacent N atoms or singular ring N atoms pyridine pyrrole 47 This suggests that the presence of ring N atoms is directly correlated with the inhibition effect of this class of compounds Methane oxidation inhibition edit Some enzymatic nitrification inhibitors such as nitrapyrin can also inhibit the oxidation of methane in methanotrophic bacteria 48 AMO shows similar kinetic turnover rates to methane monooxygenase MMO found in methanotrophs indicating that MMO is a similar catalyst to AMO for the purpose of methane oxidation Furthermore methanotrophic bacteria share many similarities to NH3 oxidizers such as Nitrosomonas 49 The inhibitor profile of particulate forms of MMO pMMO shows similarity to the profile of AMO leading to similarity in properties between MMO in methanotrophs and AMO in autotrophs Environmental concerns edit nbsp Nitrification process tank at a sewage treatment plantNitrification inhibitors are also of interest from an environmental standpoint because of the production of nitrates and nitrous oxide from the process of nitrification Nitrous oxide N2O although its atmospheric concentration is much lower than that of CO2 has a global warming potential of about 300 times greater than carbon dioxide and contributes 6 of planetary warming due to greenhouse gases This compound is also notable for catalyzing the breakup of ozone in the stratosphere 50 Nitrates a toxic compound for wildlife and livestock and a product of nitrification are also of concern Soil consisting of polyanionic clays and silicates generally has a net anionic charge Consequently ammonium NH4 binds tightly to the soil but nitrate ions NO3 do not Because nitrate is more mobile it leaches into groundwater supplies through agricultural runoff Nitrates in groundwater can affect surface water concentrations either through direct groundwater surface water interactions e g gaining stream reaches springs or from when it is extracted for surface use As an example much of the drinking water in the United States comes from groundwater but most wastewater treatment plants discharge to surface water Wildlife such as amphibians freshwater fish and insects are sensitive to nitrate levels and have been known to cause death and developmental anomalies in affected species 51 Nitrate levels also contribute to eutrophication a process in which large algal blooms reduce oxygen levels in bodies of water and lead to death in oxygen consuming creatures due to anoxia Nitrification is also thought to contribute to the formation of photochemical smog ground level ozone acid rain changes in species diversity and other undesirable processes In addition nitrification inhibitors have also been shown to suppress the oxidation of methane CH4 a potent greenhouse gas to CO2 Both nitrapyrin and acetylene are shown to be especially strong suppressors of both processes although the modes of action distinguishing them are unclear See also editf ratio Haber process Nitrifying bacteria Nitrogen fixation Simultaneous nitrification denitrification ComammoxReferences edit Nitrification Network Nitrification primer nitrificationnetwork org 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Caranto JD Lancaster KM August 2017 Nitric oxide is an obligate bacterial nitrification intermediate produced by hydroxylamine oxidoreductase Proceedings of the National Academy of Sciences of the United States of America 114 31 8217 8222 Bibcode 2017PNAS 114 8217C doi 10 1073 pnas 1704504114 PMC 5547625 PMID 28716929 Czapar GF Payne J Tate J 2007 An Educational Program on the Proper Timing of Fall applied Nitrogen Fertilizer Crop Management 6 1 4 doi 10 1094 CM 2007 0510 01 RS Ferguson R Lark R Slater G 2003 Approaches to management zone definition for use of nitrification inhibitors Soil Sci Soc Am J 67 3 937 947 Bibcode 2003SSASJ 67 937F doi 10 2136 sssaj2003 0937 Duvva Laxman Kumar Panga Kiran Kumar Dhakate Ratnakar Himabindu Vurimindi 2021 12 21 Health risk assessment of nitrate and fluoride toxicity in groundwater contamination in the semi arid area of Medchal South India Applied Water Science 12 1 doi 10 1007 s13201 021 01557 4 ISSN 2190 5487 McCarty GW 1999 Modes of action of nitrification inhibitors Biology and Fertility of Soils 29 1 9 doi 10 1007 s003740050518 S2CID 38059676 Topp E Knowles R February 1984 Effects of Nitrapyrin 2 Chloro 6 Trichloromethyl Pyridine on the Obligate Methanotroph Methylosinus trichosporium OB3b Applied and Environmental Microbiology 47 2 258 62 doi 10 1007 BF01576048 PMC 239655 PMID 16346465 S2CID 34551923 McCarty GW 1998 Modes of action of nitrification inhibitors Biology and Fertility of Soils 29 1 1 9 doi 10 1007 s003740050518 S2CID 38059676 Topp Edward Knowles Roger February 1984 Effects of Nitrapyrin 2 Chloro 6 Trichloromethyl Pyridine on the Obligate Methanotroph Methylosinus trichosporium OB3b Applied and Environmental Microbiology 47 2 258 262 Bibcode 1984ApEnM 47 258T doi 10 1128 aem 47 2 258 262 1984 ISSN 0099 2240 PMC 239655 PMID 16346465 Bedard C Knowles R March 1989 Physiology biochemistry and specific inhibitors of CH4 NH4 and CO oxidation by methanotrophs and nitrifiers Microbiological Reviews 53 1 68 84 doi 10 1128 MMBR 53 1 68 84 1989 PMC 372717 PMID 2496288 Singh SN Verma A 2007 Environmental Review The Potential of Nitrification Inhibitors to Manage the Pollution Effect of Nitrogen Fertilizers in Agricultural and Other Soils A Review Environmental Practice 9 4 266 279 doi 10 1017 S1466046607070482 S2CID 128612680 Rouse JD Bishop CA Struger J October 1999 Nitrogen pollution an assessment of its threat to amphibian survival Environmental Health Perspectives 107 10 799 803 doi 10 2307 3454576 JSTOR 3454576 PMC 1566592 PMID 10504145 External links editNitrification at the heart of filtration at fishdoc co uk Nitrification at University of Aberdeen King s College Nitrification Basics for Aerated Lagoon Operators at lagoonsonline com Retrieved from https en wikipedia org w index php title Nitrification amp oldid 1197860010, wikipedia, wiki, book, books, library,

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