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1 ey enzyme in cholesterol synthesis, squalene monooxygenase.
2 etheneotrophs by inducing the enzyme alkene monooxygenase.
3 hich are currently misannotated as nitronate monooxygenase.
4 -3-methylglutaryl CoA reductase and squalene monooxygenase.
5 rsible ether lipid cleavage by alkylglycerol monooxygenase.
6 for the membrane-bound (particulate) methane monooxygenase.
7 l, and stores copper for particulate methane monooxygenase.
8 nase and peptidylglycine alpha-hydroxylating monooxygenase.
9 l for the soluble form of the enzyme methane monooxygenase.
10 inct from the previously described IsdG heme monooxygenase.
11 hydroxylation step is typically catalyzed by monooxygenases.
12 e biochemical repertoire of flavin-dependent monooxygenases.
13 DPH-dependent cytochrome P450 membrane-bound monooxygenases.
14 lycoside hydrolases and lytic polysaccharide monooxygenases.
15 ain pathway for PCET in the dinuclear copper monooxygenases.
16 cluded copper-dependent lytic polysaccharide monooxygenases.
17 hydroperoxide acting as oxidizing agents in monooxygenases.
18 ohydrate esterases, and lytic polysaccharide monooxygenases.
19 and NADPH, representative of class B flavin monooxygenases.
20 gnitude slower than rates reported for other monooxygenases.
21 gulated with particulate methane and ammonia monooxygenases.
22 conformational dynamics in flavin-dependent monooxygenases.
23 oding diterpenoid synthases, cytochrome P450 monooxygenases, 2-oxoglutarate-dependent dioxygenases an
29 s applied anaerobically to the two-component monooxygenase 4-hydroxyphenylacetate 3-hydroxylase (HPAH
31 cluster encoding an antibiotic biosynthesis monooxygenase (ABM) superfamily protein leads to a signi
32 factor beta1, suggesting that alkylglycerol monooxygenase activity affects IFN-gamma/lipopolysacchar
33 wo distinct [Cu-O-Cu](2+) sites with methane monooxygenase activity are identified in the zeolite Cu-
34 and reveal that alteration of alkylglycerol monooxygenase activity has a profound impact on the lipi
37 Here we found intracellular alkylglycerol monooxygenase activity to be an important regulator of a
38 Possibly as a result of reduced kynurenine 3-monooxygenase activity, elevated central nervous system
39 Although mutation of this residue abolishes monooxygenase activity, recent work has shown that mutat
40 Purified PA1024 did not exhibit nitronate monooxygenase activity; however, it displayed NADH:quino
41 p.Lys234Arg) mutations of the alkylglycerol monooxygenase (AGMO) gene were associated with KA relaps
44 w that a single enzyme, the flavin-dependent monooxygenase AlpJ, can generate these metabolites from
45 6S rRNA gene amplicon sequencing and ammonia monooxygenase (amoA) abundance quantification through qu
47 lse addition of AgNPs on AOB and AOA ammonia monooxygenase (amoA) gene abundances and benthic nitrifi
48 ammonia and nitrite-oxidizing taxa (ammonia monooxygenase-amoA, nitrite oxidoreductase-nxrB, respect
51 squito populations differed significantly in monooxygenase and beta-esterase activities, but not in V
53 e identifies RIFMO as a class A flavoprotein monooxygenase and is similar in fold and quaternary stru
54 olite data demonstrate that the kynurenine-3-monooxygenase and kynurenine aminotransferase branches o
55 ion activity and betaproteobacterial ammonia monooxygenase and nitrite oxidoreductase transcript abun
56 raction reactions catalyzed by dopamine beta-monooxygenase and peptidylglycine alpha-hydroxylating mo
57 repertoire of genes encoding cytochrome P450 monooxygenases and glutathione S-transferases associated
60 ation by substrate free lytic polysaccharide monooxygenases and provide insights that can be extended
62 ssed genes (DEGs), including cytochrome P450 monooxygenases and UDP-glycosyltransferases, was shared
63 ygenase (peptidylglycine alpha-hydroxylating monooxygenase) and lyase (peptidyl-alpha-hydroxyglycine
65 , a methyltransferase and a flavin-dependent monooxygenase are used iteratively to introduce C5 and C
67 TMTT The DMNT biosynthetic pathway and both monooxygenases are distinct from those previously charac
70 droxylase (C4H; CYP73A) is a cytochrome P450 monooxygenase associated externally with the endoplasmic
72 2,6-dichlorobenzoic acid (2,6-DCBA) and the monooxygenase BbdD transforming 2,6-DCBA into 2,6-dichlo
73 nzyme-fusion strategy to directly couple the monooxygenase (Bik2) and methyltransferase (Bik3) to eff
74 ther lipid species upstream of alkylglycerol monooxygenase but also other more complex lipids includi
75 ilarity with well characterized flavoprotein monooxygenases, but the protein has not been isolated an
76 rmore, we uncovered a unique Baeyer-Villiger monooxygenase (BVMO) VdtE that could transform the alkyl
77 ysis using flavin-containing Baeyer-Villiger monooxygenases (BVMOs) is a well-established tool to add
78 istinguished from other class A flavoprotein monooxygenases by its unique middle domain, which is inv
79 ts host gene, MICAL3 (microtubule-associated monooxygenase, calponin, and LIM domain containing 3gene
80 detoxification gene families, including P450 monooxygenases, carboxyl/cholinesterases, glutathione-S-
83 ene epoxidase (SQLE), also known as squalene monooxygenase, catalyzes the stereospecific conversion o
85 , we describe the characterization of a P450 monooxygenase CnsC from Penicillium that catalyzes the h
86 ng this process, the two-component carnitine monooxygenase (CntAB) catalyzes the oxygen-dependent cle
88 enzyme adopts a fold common to FAD-dependent monooxygenases, contains a tightly bound FAD prosthetic
92 first example of a wild-type cytochrome P450 monooxygenase (CYP116B46 from Tepidiphilus thermophilus)
93 er stromal expression of the cytochrome P450 monooxygenase CYP26 modulates BTZ sensitivity in the BM
95 by the Brassicaceae-specific cytochrome P450 monooxygenase CYP705A1 and is transiently induced in a j
96 substrate production by the cytochrome P450 monooxygenase CYP81F2 is localized to the surface of the
97 on of (E)-nerolidol into DMNT maps to a P450 monooxygenase, CYP92C5, which is capable of converting n
98 g TMTT accumulation corresponds to a similar monooxygenase, CYP92C6, which is specific for the conver
100 They are synthesized by cytochrome P450 monooxygenases (CYPs) and degraded by soluble epoxide hy
101 f the important enzyme class cytochrome P450 monooxygenases (CYPs), thereby influencing the detoxific
102 he initial identification of cytochrome P450 monooxygenases (CYPs/P450s), great progress has been mad
104 ole hopping escape routes in cytochrome P450 monooxygenase, cytochrome c peroxidase, and benzylsuccin
105 lating monooxygenase (PHM) and dopamine beta-monooxygenase (DbetaM) are copper-dependent enzymes that
106 Kmo(-/-)) and characterized the kynurenine 3-monooxygenase-deficient mice using six behavioral assays
108 tion and down-regulation of both 1,4-dioxane monooxygenase (dxmB) and aldehyde dehydrogenase (aldH) g
109 Squalene epoxidase (also known as squalene monooxygenase, EC 1.14.99.7) is a key rate-limiting enzy
113 ta-carotene hydroxylase and carotene epsilon-monooxygenase), enzymes associated with fruit flavor and
114 emonstrated for both ammonia lyases and P450 monooxygenases expressed within live bacterial colonies
115 parallel way by modulation of alkylglycerol monooxygenase expression and of tetrahydrobiopterin bios
116 n analysis, we pinpoint the loss of squalene monooxygenase expression as a cause of cholesterol auxot
117 ctor was highly correlated with flavonoid 3'-monooxygenase (F3'H) and a DFR in spathes, suggesting th
118 polyketide synthase (PKS), Flavin-dependent monooxygenase family 3 (FMO3) and glial cells missing (G
121 one to phenalenone requires an FAD-dependent monooxygenase (FMO) PhnB, which catalyzes the C2 aromati
123 ygenase (Tmm), a bacterial flavin-containing monooxygenase (FMO), is found widespread in marine bacte
126 al circulation, and hepatic flavin-dependent monooxygenases (FMOs) efficiently oxidize TMA to TMAO.
127 mals rely on the oxidative flavin-containing monooxygenases (FMOs) to detoxify numerous and potential
128 (YUC) proteins constitute a family of flavin monooxygenases (FMOs), with an important role in auxin (
129 oxygenase from Xanthomonas campestris into a monooxygenase for oxidative cyclization of tryptophans.
130 nzymatic catalyst-based on a cytochrome P450 monooxygenase-for the highly enantioselective intermolec
132 rnative approach for these reactions, alkane monooxygenase from Pseudomonas putida (alkB) is able to
134 transcript abundance of the archaeal ammonia monooxygenase gene (amoA) in nitrifying activated sludge
135 change in nitrification performance, ammonia monooxygenase gene abundances remained constant througho
137 cteria and archaea (AOB/AOA) via the ammonia monooxygenase gene amoA, less is known about their small
138 rchaeota 16S rRNA genes and archaeal ammonia-monooxygenase gene copy number (qPCR) were significantly
140 me deletions of one hydroxylase and two P450 monooxygenase genes resulted in the production of novel
141 t fsh is due to an E40K change in the flavin monooxygenase GS-OX5, a gene encoding a glucosinolate (G
142 lysis of the dechlorinating flavin-dependent monooxygenase, HadA, from the aerobic organism Ralstonia
147 ole of tetrahydrobiopterin and alkylglycerol monooxygenase in ether lipid metabolism of murine macrop
148 dioxygenase, the previous name for nitronate monooxygenase in the GenBank(TM) and PDB databases, but
150 t negatively regulate cytochrome P450 (P450) monooxygenases in response to physiological and pathophy
151 results are consistent with AsFMO being an S-monooxygenase involved in allicin biosynthesis through d
152 Here, we report the structures of two Rieske monooxygenases involved in the biosynthesis of paralytic
153 dation of aromatic nuclei by cytochrome P450 monooxygenases is one of the major metabolic pathways of
154 n of substituted phenols by flavin-dependent monooxygenases is the first step of their biotransformat
156 smid-encoded soluble di-iron centre isoprene monooxygenase (IsoMO) is essential for isoprene metaboli
157 etabolism, including four-component isoprene monooxygenases (IsoMO), were identified and compared wit
158 ulatory enzymes in this pathway-kynurenine-3-monooxygenase (KMO) and tryptophan-2,3-dioxygenase (TDO)
166 : indoleamine dioxygenase (IDO1), kynurenine monooxygenase (KMO), and kynurenine aminotransferase II
170 N-terminal family AA10 lytic polysaccharide monooxygenase (LPMO), a family 5 chitin-binding domain (
181 The recently discovered lytic polysaccharide monooxygenases (LPMOs) carry out oxidative cleavage of p
188 fungi produce multiple lytic polysaccharide monooxygenases (LPMOs) with seemingly similar functions,
194 e, we identified a role for the flavoprotein monooxygenase MICAL3, an actin disassembly factor, in or
195 to selectively oxidize methane using methane monooxygenase (MMO) and methyl coenzyme M reductase (MCR
197 o methanol under mild conditions are methane monooxygenases (MMOs) found in methanotrophic bacteria;
200 l characterization of Nocardia farcinica Lys monooxygenase (NbtG), which has similar biochemical prop
201 f dithranol, a substrate for the nogalamycin monooxygenase (NMO) from Streptomyces nogalater As with
203 Bs3 is most closely related to plant flavin monooxygenases of the YUCCA (YUC) family, which catalyze
205 We report that a wild-type cytochrome P450 monooxygenase (P450(BM3) from Bacillus megaterium, CYP10
210 than half (51.2%) of the CBP cytochrome P450 monooxygenases (P450s) that are up-regulated in the R st
214 ATPase, and peptidylglycine alpha-amidating monooxygenase (PAM), a copper-dependent membrane enzyme.
215 granules is peptidylglycine alpha-amidating monooxygenase (PAM), an enzyme essential for amidated pe
216 y identified peptidylglycine alpha-amidating monooxygenase (PAM), an enzyme required for generating a
217 ngle enzyme, peptidylglycine alpha-amidating monooxygenase (PAM), and lack of amidation renders most
218 ting enzyme, peptidylglycine alpha-amidating monooxygenase (PAM), and the presence of peptidergic sig
219 acids derived from the cytochrome P450 (CYP) monooxygenase pathway serve as vital second messengers t
220 ation, through the sequential actions of its monooxygenase (peptidylglycine alpha-hydroxylating monoo
221 ant reactivity, on the LPMO's polysaccharide monooxygenase/peroxygenase and reductant oxidase/peroxid
222 Cu(II)(O2(*-)) active species of the copper monooxygenase PHM and exhibits enhanced reactivity towar
226 Here, we report how the reactivity of a monooxygenase (PikC) from the pikromycin pathway is modi
231 reaction is catalyzed by particulate methane monooxygenase (pMMO), a copper-dependent integral membra
232 xidation is catalyzed by particulate methane monooxygenase (pMMO), a copper-dependent, membrane metal
233 nzyme of these bacteria, particulate methane monooxygenase (pMMO), has been controversial owing to se
238 cell fusion: cwr-1 encodes a polysaccharide monooxygenase (PMO), a class of enzymes associated with
242 genes (encoding the alpha subunit of ammonia monooxygenases) preserved in a 5.8-m sediment core (span
243 initiated by two catabolic enzymes, propane monooxygenase (PRM) and tetrahydrofuran monooxygenase (T
244 n to be produced by cluster-independent P450 monooxygenases, probably to protect the fungus from the
245 ctural characterizations of a nonheme diiron monooxygenase, PtmU3, that installs a C-5 beta-hydroxyl
248 ochrome b561 associated with a dopamine beta-monooxygenase redox domain (CYBDOM), which localizes to
257 catalytic sites in two MMOs: soluble methane monooxygenase (sMMO) and particulate methane monooxygena
258 to the diiron active site of soluble methane monooxygenase (sMMO) and to a series of high-valent diir
264 , including multicopper oxidases and ammonia monooxygenase subunit C (AmoC), and stress response gene
265 esentation of members of the luciferase-like monooxygenase superfamily points toward an important rol
268 s to that of the methanotroph enzyme methane monooxygenase that activates methane at ambient conditio
269 echanism of a two-component flavin-dependent monooxygenase that can catalyze oxidative dechlorination
271 ver, knocking down shade (shd), encoding the monooxygenase that converts ecdysone (E) to the more act
272 etion of kmo-1, which encodes a kynurenine 3-monooxygenase that converts KYN to 3HKYN, drastically re
273 hitin was enhanced by a lytic polysaccharide monooxygenase that increases substrate accessibility by
274 Coq6 is thus a rare example of a flavin monooxygenase that is able to act on two different carbo
278 Nitric oxide synthases (NOSs) are heme-based monooxygenases that convert l-Arg to l-citrulline and ni
279 f physiologically important dinuclear copper monooxygenases that function with a solvent-exposed acti
280 critical subunit of the particulate methane monooxygenase, the predominant methane oxidation catalys
281 na MG08 encodes a single particulate methane monooxygenase, the serine cycle for assimilation of carb
282 pane monooxygenase (PRM) and tetrahydrofuran monooxygenase (THM), belonging to the group-6 and 5 of s
285 to using the iron-containing soluble methane monooxygenase to catalyse methane oxidation, with this s
286 elativorans sp. BNC1 can degrade EDTA with a monooxygenase to ethylenediaminediacetate (EDDA) and the
287 dopsis gene families such as cytochrome P450 monooxygenases to group the members functionally and sho
289 oxidation of n-alkanes including two alkane monooxygenases, two alcohol dehydrogenases, two aldehyde
291 aving CCO, NOV2, previously reported to be a monooxygenase, using a purified enzyme sample revealed t
295 (SidA), a member of class B flavin-dependent monooxygenases, was selected as a model system to invest
296 nctional characterization of cytochrome P450 monooxygenases, we established that trans-sabin-3-ol but
297 ive-site component of the conserved isoprene monooxygenase, which are capable of retrieving isoA sequ
298 ivity of active sites in particulate methane monooxygenase, which are enzymes able to selectively oxi
299 h of these processes is catalyzed by methane monooxygenase, which converts methane or ammonia into me
300 n cytochrome P450 (P450) is a membrane-bound monooxygenase whose catalytic activities require two ele