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(R)-cyclosarin + H2O
?
Substrates: -
Products: -
?
(R)-sarin + H2O
?
Substrates: -
Products: -
?
(RS)-propan-2-yl methylphosphonofluoridate + H2O
isopropyl phosphate methylphosphonate + fluoride
(RS)-propan-2-yl methylphosphonofluoridate + H2O
propan-2-yl methylphosphonate + fluoride
Substrates: i.e. sarin
Products: -
?
(S)-cyclosarin + H2O
?
Substrates: -
Products: -
?
1,2,2-trimethylpropyl methylphosphonofluoridoate + H2O
1,2,2-trimethylpropyl methylphosphonate + fluoride + H+
Substrates: -
Products: -
?
1-methylethyl methylphosphonofluoridoate + H2O
1-methylethyl methylphosphonate + fluoride + H+
Substrates: -
Products: -
?
2,2-dimethylcyclopentyl methylphosphonofluoridate + H2O
?
3-[fluoro(methyl)phosphoryl]oxy-2,2-dimethylbutane + H2O
3,3-dimethylbutan-2-yl methylphosphonate + fluoride
3-[fluoro(methyl)phosphoryl]oxy-2,2-dimethylbutane + H2O
Pinacolyl methylphosphonate + fluoride
Substrates: i.e. soman
Products: -
?
4-nitrophenyl-ethyl(phenyl)phosphinate + H2O
?
4-nitrophenyl-methyl(phenyl)phosphinate + H2O
?
4-nitrophenylisopropyl phenylphosphinate + H2O
?
-
Substrates: at 22% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
4-nitrophenylpropyl phenylphosphinate + H2O
?
-
Substrates: at 24% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
chlorpyrifos oxon + H2O
diethyl phosphate + 3,5,6-trichloropyridin-2-ol
coumaphos + H2O
?
-
Substrates: -
Products: -
?
cyclohexyl methyl fluorophosphate + H2O
cyclohexyl methyl hydrogen phosphate + fluoride
cyclohexyl methylphosphonofluoridate + H2O
cyclohexyl methylphosphonate + fluoride
Substrates: i.e. cyclosarin
Products: -
?
cyclohexyl methylphosphonofluoridoate + H2O
cyclohexyl methylphosphonate + fluoride + H+
Substrates: -
Products: -
?
cyclohexylmethylphosphonofluoridate + H2O
cyclohexyl methylphosphonate + fluoride
Substrates: i.e. cyclosarin
Products: -
?
cyclohexylsarin + H2O
?
-
Substrates: -
Products: -
?
diazinon + H2O
?
-
Substrates: -
Products: -
?
diethyl fluorophosphate + H2O
diethyl phosphate + fluoride
Substrates: -
Products: -
?
diethyl-paraoxon + H2O
diethyl phosphate + 4-nitrophenol
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
diisopropyl phosphofluoridate + H2O
diisopropyl phosphate + fluoride
diisopropyl phosphorofluoridate + H2O
diisopropyl phosphate + fluoride
ethyl dimethylamidocyanophosphate + H2O
ethyl hydrogen dimethylphosphoramidate + HCN
Substrates: -
Products: -
?
ethyl dimethylphosphoramidocyanidate + H2O
?
ethyl dimethylphosphoramidocyanidate + H2O
ethyl hydrogen dimethylphosphoramidate + HCN
Substrates: i.e. tabun
Products: -
?
ethyl N,N-dimethylphosphoramidocyanidate + H2O
ethyl N,N-dimethylphosphoramide + cyanide
-
Substrates: i.e. tabun
Products: -
?
fensulfothion + H2O
?
-
Substrates: -
Products: -
?
methyl parathion + H2O
?
-
Substrates: -
Products: -
?
mipafox + H2O
?
-
Substrates: i.e. N,N'-diisopropyl phosphorodiamidofluoridate, poor substrate
Products: -
?
O-cyclohexyl methylphosphonofluoridate + H2O
O-cyclohexyl methylphosphate + fluoride
O-cyclohexyl methylphosphonofluoridate + H2O
O-cyclohexyl methylphosphonate + fluoride
O-cyclohexylmethylphosphonofluoridate + H2O
?
O-ethyl S-(2-diisopropylamino)ethyl methylphosphonothioate + H2O
?
-
Substrates: an organophosphorous nerve agent
Products: -
?
O-isopropylmethylphosphonofluoridate + H2O
O-isopropylmethylphosphate + fluoride
O-pinacolyl methylphosphonofluoridate + H2O
O-pinacolyl methylphosphate + fluoride
O-pinacolylmethylphosphonofluoridate + H2O
?
-
Substrates: best substrate
Products: -
?
p-nitrophenyl-soman + H2O
p-nitrophenol + soman
-
Substrates: the enzyme is immobilized on a photoluminescent porous silicon platform
Products: soman is O-(2,3,3)-trimethylpropyl methylphosphonofluoridate
r
paraoxon + H2O
4-nitrophenol + diethyl hydrogen phosphate
Substrates: -
Products: -
?
paraoxon + H2O
diethylphosphate + 4-nitrophenol
parathion + H2O
?
-
Substrates: -
Products: -
?
phenyl acetate + H2O
phenol + acetate
additional information
?
-
(RS)-propan-2-yl methylphosphonofluoridate + H2O

isopropyl phosphate methylphosphonate + fluoride
Substrates: i.e. sarin
Products: -
?
(RS)-propan-2-yl methylphosphonofluoridate + H2O
isopropyl phosphate methylphosphonate + fluoride
Substrates: i.e. sarin
Products: -
?
(S)-sarin + H2O

?
Substrates: -
Products: -
?
(S)-sarin + H2O
?
Substrates: -
Products: the calculated free energy barrier for hydrolysis of (S)-sarin by the mechanism for diiisopropyl fluorophosphate is highly unfavorable. Hydrolysis of (S)-sarin proceeds by a mechanism in which Asp229 could activate an intervening water molecule for nucleophilic attack on the substrate
?
2,2-dimethylcyclopentyl methylphosphonofluoridate + H2O

?
Substrates: -
Products: -
?
2,2-dimethylcyclopentyl methylphosphonofluoridate + H2O
?
Substrates: -
Products: -
?
2,2-dimethylcyclopentyl methylphosphonofluoridate + H2O
?
-
Substrates: -
Products: -
?
3-[fluoro(methyl)phosphoryl]oxy-2,2-dimethylbutane + H2O

3,3-dimethylbutan-2-yl methylphosphonate + fluoride
Substrates: i.e. soman
Products: -
?
3-[fluoro(methyl)phosphoryl]oxy-2,2-dimethylbutane + H2O
3,3-dimethylbutan-2-yl methylphosphonate + fluoride
Substrates: i.e. soman
Products: -
?
4-nitrophenyl-ethyl(phenyl)phosphinate + H2O

?
-
Substrates: 40% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
4-nitrophenyl-ethyl(phenyl)phosphinate + H2O
?
-
Substrates: i.e. 4-nitrophenylethyl phenylphosphinate
Products: -
?
4-nitrophenyl-ethyl(phenyl)phosphinate + H2O
?
-
Substrates: at 46% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
4-nitrophenyl-ethyl(phenyl)phosphinate + H2O
?
-
Substrates: Rangia cuneata (Mazur-type enzyme): better substrate than diisopropyl fluorophosphate
Products: -
?
4-nitrophenyl-ethyl(phenyl)phosphinate + H2O
?
-
Substrates: i.e. NPEPP
Products: -
?
4-nitrophenyl-ethyl(phenyl)phosphinate + H2O
?
-
Substrates: i.e. NPEPP
Products: -
?
4-nitrophenyl-methyl(phenyl)phosphinate + H2O

?
-
Substrates: at 49% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
4-nitrophenyl-methyl(phenyl)phosphinate + H2O
?
-
Substrates: i.e. 4-nitrophenylmethyl phenylphosphinate
Products: -
?
4-nitrophenyl-methyl(phenyl)phosphinate + H2O
?
-
Substrates: at 28% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
chlorpyrifos + H2O

?
Substrates: -
Products: -
?
chlorpyrifos + H2O
?
-
Substrates: -
Products: -
?
chlorpyrifos oxon + H2O

diethyl phosphate + 3,5,6-trichloropyridin-2-ol
Substrates: -
Products: -
?
chlorpyrifos oxon + H2O
diethyl phosphate + 3,5,6-trichloropyridin-2-ol
Substrates: i.e. CPO, a metabolite of chlorpyrifos that is used as a pesticide in agriculture industry
Products: -
?
cyclohexyl methyl fluorophosphate + H2O

cyclohexyl methyl hydrogen phosphate + fluoride
-
Substrates: (+)isomer, pH 7.2, 1 mM MnCl2
Products: -
?
cyclohexyl methyl fluorophosphate + H2O
cyclohexyl methyl hydrogen phosphate + fluoride
-
Substrates: (+)isomer, pH 7.2, 1 mM MnCl2
Products: -
?
cyclosarin + H2O

?
-
Substrates: -
Products: -
?
cyclosarin + H2O
?
Substrates: -
Products: -
?
cyclosarin + H2O
?
-
Substrates: -
Products: -
?
cyclosarin + H2O
?
Substrates: -
Products: -
?
cyclosarin + H2O
?
-
Substrates: -
Products: -
?
cyclosarin + H2O
?
Substrates: -
Products: -
?
diethyl-paraoxon + H2O

diethyl phosphate + 4-nitrophenol
Substrates: reaction of EC 3.1.8.1
Products: -
?
diethyl-paraoxon + H2O
diethyl phosphate + 4-nitrophenol
Substrates: reaction of EC 3.1.8.1, paraoxonase
Products: -
?
diisopropyl fluorophosphate + H2O

diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: soman hydrolysed more rapidly than diisopropyl fluorophosphate
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: spectrophotometric determination with phenol red
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: highly toxic structural analogue of G-class type of nerve agents
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: best substrate of squid enzyme
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: room temperature, pH 7.5
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: The mechanism for hydrolysis of diisopropyl fluorophosphate involves nucleophilic attack by Asp229 on phosphorus to form a pentavalent intermediate. P-F bond dissociation then yields a phosphoacyl enzyme intermediate in the rate-limiting step. A water molecule, coordinated to the catalytic Ca2+, donates a proton to Asp121 and then attacks the tetrahedral phosphoacyl intermediate to liberate the diisopropyl phosphate product
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: binding free energy of substrate os -2.7 kcal/mol
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: at about 30% of O-pinacolylmethylphosphonofluoridate hydrolysis
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: binding analysis, overview
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: at about 5-10% of soman hydrolysis
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: an analogue molecule of G-type warfare agents
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. O,O-diisopropyl phosphorofluoridate
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: i.e. DFP
Products: -
?
diisopropyl fluorophosphate + H2O
diisopropyl phosphate + fluoride
-
Substrates: -
Products: -
?
diisopropyl phosphofluoridate + H2O

diisopropyl phosphate + fluoride
-
Substrates: SMP30 is important in diisopropyl phosphofluoridate detoxification
Products: -
?
diisopropyl phosphofluoridate + H2O
diisopropyl phosphate + fluoride
-
Substrates: substrate of SMP30
Products: -
?
diisopropyl phosphofluoridate + H2O
diisopropyl phosphate + fluoride
Substrates: SMP30 is important in diisopropyl phosphofluoridate detoxification
Products: -
?
diisopropyl phosphofluoridate + H2O
diisopropyl phosphate + fluoride
Substrates: -
Products: -
?
diisopropyl phosphorofluoridate + H2O

diisopropyl phosphate + fluoride
-
Substrates: pH 8.0, 25°C, 1 mM MgCl2
Products: -
?
diisopropyl phosphorofluoridate + H2O
diisopropyl phosphate + fluoride
Substrates: pH 8.0, 25°C, 1 mM MgCl2
Products: -
?
ethyl dimethylphosphoramidocyanidate + H2O

?
Substrates: i.e. tabun
Products: -
?
ethyl dimethylphosphoramidocyanidate + H2O
?
Substrates: i.e. tabun
Products: -
?
novichok A230 + H2O

?
Substrates: low activity
Products: -
?
novichok A230 + H2O
?
Substrates: low activity
Products: -
?
novichok A230 + H2O
?
-
Substrates: low activity
Products: -
?
novichok A232 + H2O

?
Substrates: low activity
Products: -
?
novichok A232 + H2O
?
Substrates: low activity
Products: -
?
novichok A232 + H2O
?
-
Substrates: low activity
Products: -
?
novichok A234 + H2O

?
Substrates: low activity
Products: -
?
novichok A234 + H2O
?
Substrates: low activity
Products: -
?
novichok A234 + H2O
?
-
Substrates: low activity
Products: -
?
O-cyclohexyl methylphosphonofluoridate + H2O

O-cyclohexyl methylphosphate + fluoride
-
Substrates: i.e. cyclosarin
Products: -
?
O-cyclohexyl methylphosphonofluoridate + H2O
O-cyclohexyl methylphosphate + fluoride
-
Substrates: i.e. cyclosarin
Products: -
?
O-cyclohexyl methylphosphonofluoridate + H2O

O-cyclohexyl methylphosphonate + fluoride
-
Substrates: no reaction with the (-)isomer O-cyclohexyl methylphosphonofluoridate
Products: -
?
O-cyclohexyl methylphosphonofluoridate + H2O
O-cyclohexyl methylphosphonate + fluoride
-
Substrates: no reaction with the (-)isomer O-cyclohexyl methylphosphonofluoridate
Products: -
?
O-cyclohexylmethylphosphonofluoridate + H2O

?
-
Substrates: i.e. GF
Products: -
?
O-cyclohexylmethylphosphonofluoridate + H2O
?
-
Substrates: at 114% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
O-isopropylmethylphosphonofluoridate + H2O

O-isopropylmethylphosphate + fluoride
-
Substrates: i.e. sarin
Products: -
?
O-isopropylmethylphosphonofluoridate + H2O
O-isopropylmethylphosphate + fluoride
Substrates: i.e. sarin
Products: -
?
O-isopropylmethylphosphonofluoridate + H2O
O-isopropylmethylphosphate + fluoride
-
Substrates: i.e. sarin
Products: -
?
O-pinacolyl methylphosphonofluoridate + H2O

O-pinacolyl methylphosphate + fluoride
-
Substrates: i.e. soman
Products: -
?
O-pinacolyl methylphosphonofluoridate + H2O
O-pinacolyl methylphosphate + fluoride
Substrates: i.e. soman
Products: -
?
O-pinacolyl methylphosphonofluoridate + H2O
O-pinacolyl methylphosphate + fluoride
-
Substrates: i.e. soman
Products: -
?
paraoxon + H2O

diethylphosphate + 4-nitrophenol
-
Substrates: -
Products: -
?
paraoxon + H2O
diethylphosphate + 4-nitrophenol
-
Substrates: i.e. diethyl-4-nitrophenyl phosphate, poor substrate
Products: -
?
paraoxon + H2O
diethylphosphate + 4-nitrophenol
-
Substrates: substrate are also 16 paraoxon analogs
Products: -
?
paraoxon + H2O
diethylphosphate + 4-nitrophenol
-
Substrates: -
Products: -
?
paraoxon + H2O
diethylphosphate + 4-nitrophenol
-
Substrates: -
Products: -
?
paraoxon + H2O
diethylphosphate + 4-nitrophenol
Substrates: -
Products: -
?
paraoxon + H2O
diethylphosphate + 4-nitrophenol
-
Substrates: i.e. diethyl-4-nitrophenyl phosphate, poor substrate
Products: -
?
paraoxon + H2O
diethylphosphate + 4-nitrophenol
-
Substrates: i.e. diethyl-4-nitrophenyl phosphate, poor substrate
Products: -
?
phenyl acetate + H2O

phenol + acetate
Substrates: -
Products: -
?
phenyl acetate + H2O
phenol + acetate
Substrates: -
Products: -
?
phenyl acetate + H2O
phenol + acetate
Substrates: pH 8.0, 25°C, 1 mM MgCl2
Products: -
?
sarin + H2O

?
-
Substrates: -
Products: -
?
sarin + H2O
?
-
Substrates: at 20% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
sarin + H2O
?
-
Substrates: substrates are also p-nitrophenyl analogs of sarin, the enzyme exhibits a stereoselective preference for the R-P-enantiomers of sarin
Products: -
?
sarin + H2O
?
-
Substrates: i.e. O-isopropylmethylphosphonofluoridate
Products: -
?
sarin + H2O
?
Substrates: -
Products: -
?
sarin + H2O
?
-
Substrates: -
Products: -
?
sarin + H2O
?
Substrates: -
Products: -
?
sarin + H2O
?
-
Substrates: -
Products: -
?
sarin + H2O
?
Substrates: -
Products: -
?
sarin + H2O
?
-
Substrates: -
Products: -
?
sarin + H2O
?
Substrates: -
Products: -
?
sarin + H2O
?
Substrates: -
Products: -
?
sarin + H2O
?
-
Substrates: at 38% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
sarin + H2O
?
-
Substrates: -
Products: -
?
sarin + H2O
?
-
Substrates: -
Products: -
?
sarin + H2O
?
-
Substrates: i.e. propyl-2-methane-fluorophosphonate
Products: -
?
sarin + H2O
?
-
Substrates: Mazur-type enzyme
Products: -
?
sarin + H2O
?
-
Substrates: i.e. O-isopropylmethylphosphonofluoridate
Products: -
?
sarin + H2O
?
-
Substrates: at 10% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
soman + H2O

?
-
Substrates: -
Products: -
?
soman + H2O
?
-
Substrates: at 240% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
soman + H2O
?
-
Substrates: i.e. O-pinacoyl methyl phosphonofluoridates
Products: -
?
soman + H2O
?
-
Substrates: substrates are also p-nitrophenyl analogs of soman, the enzyme exhibits a stereoselective preference for the R-P-enantiomers of soman
Products: -
?
soman + H2O
?
Substrates: best substrate
Products: -
?
soman + H2O
?
-
Substrates: -
Products: -
?
soman + H2O
?
-
Substrates: -
Products: -
?
soman + H2O
?
-
Substrates: -
Products: -
?
soman + H2O
?
-
Substrates: -
Products: -
?
soman + H2O
?
-
Substrates: 10-20% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
soman + H2O
?
-
Substrates: -
Products: -
?
soman + H2O
?
Substrates: -
Products: -
?
soman + H2O
?
-
Substrates: -
Products: -
?
soman + H2O
?
Substrates: -
Products: -
?
soman + H2O
?
-
Substrates: -
Products: -
?
soman + H2O
?
Substrates: -
Products: -
?
soman + H2O
?
Substrates: best substrate
Products: -
?
soman + H2O
?
-
Substrates: best substrate
Products: -
?
soman + H2O
?
-
Substrates: best substrate
Products: -
?
soman + H2O
?
-
Substrates: i.e. (3,3-dimethylbutyl)-2-methane-fluorophosphonate
Products: -
?
soman + H2O
?
-
Substrates: i.e. O-1,2,2-trimethylpropylmethylphosphono fluoride
Products: -
?
soman + H2O
?
-
Substrates: 10% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
soman + H2O
?
-
Substrates: i.e. O-1,2,2-trimethylpropylmethylphosphofluoridate
Products: -
?
soman + H2O
?
-
Substrates: -
Products: -
?
tabun + H2O

?
Substrates: -
Products: -
?
tabun + H2O
?
-
Substrates: -
Products: -
?
tabun + H2O
?
Substrates: -
Products: -
?
tabun + H2O
?
-
Substrates: -
Products: -
?
tabun + H2O
?
Substrates: -
Products: -
?
tabun + H2O
?
-
Substrates: -
Products: -
?
tabun + H2O
?
Substrates: -
Products: -
?
tabun + H2O
?
Substrates: -
Products: -
?
tabun + H2O
?
-
Substrates: i.e. N,N-dimethylethylphosphoramidocyanidate, at 124% the rate of diisopropyl fluorophosphate hydrolysis
Products: -
?
tabun + H2O
?
-
Substrates: -
Products: -
?
VR + H2O

?
Substrates: minimal activity
Products: -
?
VR + H2O
?
Substrates: minimal activity
Products: -
?
VR + H2O
?
-
Substrates: minimal activity
Products: -
?
additional information

?
-
-
Substrates: p-nitrophenyltriesters
Products: -
?
additional information
?
-
-
Substrates: not: 4-nitrophenylphosphonate, 4-nitrophenylphosphinorylcholine
Products: -
?
additional information
?
-
-
Substrates: not: 4-nitrophenylphosphate
Products: -
?
additional information
?
-
-
Substrates: 4-nitrophenylacetate, bis(4-nitrophenyl)phosphate, tris(4-nitrophenyl)phosphate
Products: -
?
additional information
?
-
-
Substrates: the natural substrates for enzyme are unknown, enzyme may, in nature, be used in peptide metabolism
Products: -
?
additional information
?
-
-
Substrates: the ability of OPAA to cleave both G-type nerve agents comes from the hydroxide ion in the metal center that facilitates nucleophilic attack on either the carbonyl oxygen of the phosphorus center of organophosphorus nerve agents. The enzyme also shows prolidase activity
Products: -
?
additional information
?
-
Substrates: minimal catalytic activity is observed for V-type nerve agents and mipafox (N,N'-diisopropyl phosphorodiamidofluoridate)
Products: -
-
additional information
?
-
-
Substrates: the enzyme shows broad substrate specificity and is able to degrade organophosphorus compounds with P-O, P-CN, and P-F bonds and is the only enzyme known to cleave the P-S bond, which is characteristic of V-type nerve agents such as VX
Products: -
?
additional information
?
-
-
Substrates: OPH is able to degrade a broad list of some of the most toxic organophosphorous pesticides, such as paraoxon, and OP nerve agents including DFP, sarin, and soman
Products: -
?
additional information
?
-
Substrates: the enzyme also exhibits activity of EC 3.1.8.1, aryldialkylphosphatase, as well as of EC 3.1.8.2, diisopropyl-fluorophosphatase. Enzyme-substrate docking study, overview
Products: -
?
additional information
?
-
-
Substrates: the natural substrates for enzyme are unknown
Products: -
?
additional information
?
-
-
Substrates: not: 4-nitrophenylphosphate
Products: -
?
additional information
?
-
-
Substrates: not: ATP
Products: -
?
additional information
?
-
-
Substrates: not: methanesulfonyl fluoride, phenylmethanesulfonyl fluoride, monofluorophosphate, iso-octamethylpyrophosphoramide (i.e. ios-OMPA)
Products: -
?
additional information
?
-
-
Substrates: the enzyme shows broad substrate specificity and is able to degrade organophosphorus compounds with P-O, P-CN, and P-F bonds and is the only enzyme known to cleave the P-S bond, which is characteristic of V-type nerve agents such as VX
Products: -
?
additional information
?
-
-
Substrates: additional substrate: dipeptide Gly-Pro, prolidase activity of enzyme
Products: -
?
additional information
?
-
Substrates: human PON1 is a calcium-dependent promiscuous enzyme (phosphotriesterase, arylesterase and lactonase) with a wide range of substrates. Human PON1 is capable of hydrolyzing a broad range of organophosphorus compounds, including paraoxon, diisopropylfluorophosphate (DFP) and nerve agents such as sarin, soman and VX
Products: -
?
additional information
?
-
Substrates: the enzyme is also active with substrates of EC 3.1.1.81, quorum-quenching N-acyl-homoserine lactonase, and EC 3.1.8.1, paraoxonase, hydrolyzing organophosphorus compounds. Measurement of N-oxodecanoyl-DL-homoserine lactone (3O-C10AHL)-hydrolyzing activity (EC 3.1.1.81) of recombinant h-PON1 enzymes is determined by using a recombinant quorum-sensing reporter Escherichia coli strain
Products: -
?
additional information
?
-
-
Substrates: the natural substrates for enzyme are unknown
Products: -
?
additional information
?
-
-
Substrates: enzyme is involved in the synthesis of isoethionate from cysteine
Products: -
?
additional information
?
-
-
Substrates: diisopropyl fluorophosphatase acts on a variety of organophosphorus compounds
Products: -
?
additional information
?
-
-
Substrates: The enzyme also acts as Ca2+-dependent phosphotriesterase. The hydrolytic reaction catalyzed by DFPase leads to the formation of a phosphate or phosphonate and a fluoride ion, resulting in detoxification of the organophosphorus agent. Presence of a phosphoenzyme intermediate in the reaction mechanism, which involves direct nucleophilic attack by Asp229 on the substrate, but no metal-assisted water activation, overview
Products: -
?
additional information
?
-
Substrates: the diisopropylfluorophosphatase (DFPase) from the ganglion and brain of Loligo vulgaris acts on P-F bonds present in some organophosphorus pesticides (OPs)
Products: -
?
additional information
?
-
Substrates: diisopropyl-fluorophosphatase (DFPase) from Loligo vulgaris is highly stable and robust biocatalyst for the hydrolysis of various chemical warfare agents such as sarin, soman, tabun, but no natural substrate for DFPase has been identified to date
Products: -
?
additional information
?
-
Substrates: the squid phosphotriesterase diisopropyl fluorophosphatase (DFPase) from Loligo vulgaris shows relatively specific substrate preference, efficiently catalyzing the hydrolysis of diisopropyl fluorophosphate (DFP) and G-type nerve agents, including tabun (GA), sarin (GB), soman (GD), and cyclohexyl sarin (GF). The detoxification of the organophosphorous agent is achieved by the hydrolytic reaction producing a phosphate or phosphonate and a fluoride ion. The DFPase from squid central nervous system shows strong preference for the hydrolysis of P-F or P-CN bonds, which are absent in natural compounds
Products: -
?
additional information
?
-
Substrates: the enzyme is not hydrolytically active against compounds with P-O or P-S leaving group bonds, except for some soman derivatives, and shows no efficient hydrolytic activity against lactones or esters
Products: -
?
additional information
?
-
Substrates: DFPase from Loligo vulgaris effectively catalyzes the hydrolysis of the bond between phosphorus and the fluoride (or cyanide) leaving group
Products: -
?
additional information
?
-
Substrates: DFPase from Loligo vulgaris effectively catalyzes the hydrolysis of the bond between phosphorus and the fluoride (or cyanide) leaving group
Products: -
?
additional information
?
-
Substrates: no activity with paraoxon, VX, or N,N-diethyl-2-(methyl-(2-methylpropoxy)phosphoryl)sulfanyl-ethanamine (VR)
Products: -
-
additional information
?
-
-
Substrates: no activity of SMP30 with paraoxon, dihydrocoumarin, gamma-nonalactone, and delta-dodecanolactone
Products: -
?
additional information
?
-
-
Substrates: the ability of OPAA to cleave both G-type nerve agents comes from the hydroxide ion in the metal center that facilitates nucleophilic attack on either the carbonyl oxygen of the phosphorus center of organophosphorus nerve agents. The enzyme also shows prolidase activity
Products: -
?
additional information
?
-
Substrates: minimal catalytic activity is observed for V-type nerve agents and mipafox (N,N'-diisopropyl phosphorodiamidofluoridate)
Products: -
-
additional information
?
-
-
Substrates: not: 4-nitrophenylphosphate
Products: -
?
additional information
?
-
-
Substrates: 4-nitrophenylacetate, bis(4-nitrophenyl)phosphate, tris(4-nitrophenyl)phosphate
Products: -
?
additional information
?
-
-
Substrates: the ability of OPAA to cleave both G-type nerve agents comes from the hydroxide ion in the metal center that facilitates nucleophilic attack on either the carbonyl oxygen of the phosphorus center of organophosphorus nerve agents. The enzyme also shows prolidase activity
Products: -
?
additional information
?
-
-
Substrates: minimal catalytic activity is observed for V-type nerve agents and mipafox (N,N'-diisopropyl phosphorodiamidofluoridate)
Products: -
-
additional information
?
-
-
Substrates: enzyme expression in liver decreases androgen-independently of aging
Products: -
?
additional information
?
-
Substrates: enzyme expression in liver decreases androgen-independently of aging
Products: -
?
additional information
?
-
-
Substrates: no activity of SMP30 with paraoxon, dihydrocoumarin, gamma-nonalactone, and delta-dodecanolactone
Products: -
?
additional information
?
-
Substrates: no activity of SMP30 with paraoxon, dihydrocoumarin, gamma-nonalactone, and delta-dodecanolactone
Products: -
?
additional information
?
-
-
Substrates: no activity with paraoxon, dihydrocoumarin, gamma-nonalactone and delta-dodecanolactone
Products: -
?
additional information
?
-
Substrates: no activity with paraoxon, dihydrocoumarin, gamma-nonalactone and delta-dodecanolactone
Products: -
?
additional information
?
-
Substrates: the substrates of enzyme OPH include organophosphate insecticides paraoxon, parathion, methylparathion, coumaphos, and diazinon, as well as potent nerve agents sarin, soman, and their analogue diisopropylfluorophosphate (DFP), cf. EC 3.1.8.1 and 3.1.8.2
Products: -
?
additional information
?
-
-
Substrates: no substrates are N-acetylvaline, N-acetylleucine, N-acetylmethionine or N-acetylalanine, sodium diphosphate, parathion, octamethylpyrophosphoramide (i.e. OMPA), triacetin, creatine phosphate, acetylcholine, butyrylcholine
Products: -
?
additional information
?
-
-
Substrates: not: ATP
Products: -
?
additional information
?
-
-
Substrates: Tetrahymena thermophila has 5 enzyme forms, some share characteristics of both the squid and the Mazur-type DFPase
Products: -
?
additional information
?
-
-
Substrates: the natural substrates for enzyme are unknown
Products: -
?
Please wait a moment until the data is sorted. This message will disappear when the data is sorted.
Please wait a moment until the data is sorted. This message will disappear when the data is sorted.
Please wait a moment until the data is sorted. This message will disappear when the data is sorted.
Please wait a moment until the data is sorted. This message will disappear when the data is sorted.
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0.39
Coumaphos
-
pH not specified in the publication, temperature not specified in the publication
0.45
diazinon
-
pH not specified in the publication, temperature not specified in the publication
0.048 - 65.45
diisopropyl fluorophosphate
0.46
fensulfothion
-
pH not specified in the publication, temperature not specified in the publication
0.08
methyl parathion
-
pH not specified in the publication, temperature not specified in the publication
0.68
O-cyclohexyl methylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
0.43
O-ethyl S-(2-diisopropylamino)ethyl methylphosphonothioate
-
pH not specified in the publication, temperature not specified in the publication
0.7 - 1.57
O-isopropylmethylphosphonofluoridate
0.5 - 2.48
O-pinacolyl methylphosphonofluoridate
0.24
parathion
-
pH not specified in the publication, temperature not specified in the publication
additional information
additional information
-
0.048
diisopropyl fluorophosphate

-
pH not specified in the publication, temperature not specified in the publication
2.12
diisopropyl fluorophosphate
mutant enzyme E37A/Y144A/R146A/T195M
2.72
diisopropyl fluorophosphate
wild-type, pH 7.5, 25°C, in nitrogen atmosphere
2.92
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 1-amino-2-propanol
2.95
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 2-amino-2-methyl-1-propanol
2.99
diisopropyl fluorophosphate
-
-
2.99
diisopropyl fluorophosphate
-
pH not specified in the publication, temperature not specified in the publication
2.99
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 1 mM NaF
3.01
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme
3.08
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethanol
3.1
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y/L140Y
3.15
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM monoethanolamine
3.18
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methanol
3.2
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y
3.2
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant L140Y
3.35
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM diethanolamine
3.38
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM glycerol
3.57
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 2 mM NaF
3.63
diisopropyl fluorophosphate
pH 10.5, 25°C, recombinant PON1 wild-type enzyme
3.76
diisopropyl fluorophosphate
wild type enzyme
3.87
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 200 mM thiodipropanol and 1 mM NaF
3.93
diisopropyl fluorophosphate
mutant enzyme E37D/Y144A/R16A/T195M
3.97
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodiglycol
4
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y/L140Y, with 300 mM triethanolamine
4.06
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodipropanol and 1 mM NaF
4.1
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethanolamine
4.17
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methylamine and 300 mM ethanol
4.2
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y, with 300 mM triethanolamine
4.21
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triisopropanolamine
4.23
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 100 mM thiodipropanol and 1 mM NaF
4.3
diisopropyl fluorophosphate
-
pH 7.5, 22°C
4.32
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM triethanolamine
4.32
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethylamine and 300 mM ethanol
4.41
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM diethylamine and 300 mM ethanol
4.44
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methylamine
4.45
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethylamine and 300 mM ethanol
4.45
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 3 mM NaF
4.5
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant L140Y, with 300 mM triethanolamine
4.52
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethylamine
4.54
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 200 mM thiodipropanol and 2 mM NaF
4.56
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethylamine
4.58
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodipropanol and 2 mM NaF
4.61
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 3-amino-1-propanol
4.67
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM diethylamine
4.7
diisopropyl fluorophosphate
pH 10.5, 25°C, recombinant PON1-hFc fusion enzyme
4.77
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodipropanol
4.87
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 100 mM thiodipropanol and 2 mM NaF
4.89
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodipropanol and 3 mM NaF
5.04
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 200 mM thiodipropanol and 3 mM NaF
5.58
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 100 mM thiodipropanol and 3 mM NaF
23.36
diisopropyl fluorophosphate
wild-type, presence of 1 mM O,O-dicyclopentylphosphoroamidate, pH 7.5, 25°C, in nitrogen atmosphere
65.45
diisopropyl fluorophosphate
wild-type, presence of 3 mM O,O-dicyclopentylphosphoroamidate, pH 7.5, 25°C, in nitrogen atmosphere
0.7
O-isopropylmethylphosphonofluoridate

-
pH not specified in the publication, temperature not specified in the publication
1.57
O-isopropylmethylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
0.5
O-pinacolyl methylphosphonofluoridate

-
pH not specified in the publication, temperature not specified in the publication
2.48
O-pinacolyl methylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
0.058
paraoxon

-
pH not specified in the publication, temperature not specified in the publication
0.362
paraoxon
at pH 7.0 and 30°C
1.27
paraoxon
-
pH not specified in the publication, temperature not specified in the publication
2.48
soman

-
-
additional information
additional information

-
-
-
additional information
additional information
-
-
-
additional information
additional information
-
effects of pH, temperature and ionic strength on KM are studied
-
additional information
additional information
-
comparison of kinetic constants of paraoxon analogs
-
additional information
additional information
reaction kinetics of wild-type and mutant enzymes, overview
-
additional information
additional information
Michaelis-Menten kinetic analysis, substrate diisopropyl fluorophosphate in presence of aminoalcohol activators
-
additional information
additional information
Michaelis-Menten kinetics
-
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610
Coumaphos
-
pH not specified in the publication, temperature not specified in the publication
176
diazinon
-
pH not specified in the publication, temperature not specified in the publication
0.0115 - 2111
diisopropyl fluorophosphate
67
fensulfothion
-
pH not specified in the publication, temperature not specified in the publication
189
methyl parathion
-
pH not specified in the publication, temperature not specified in the publication
652
O-cyclohexyl methylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
0.3
O-ethyl S-(2-diisopropylamino)ethyl methylphosphonothioate
-
pH not specified in the publication, temperature not specified in the publication
56 - 442
O-isopropylmethylphosphonofluoridate
5 - 151
O-pinacolyl methylphosphonofluoridate
630
parathion
-
pH not specified in the publication, temperature not specified in the publication
0.0115
diisopropyl fluorophosphate

pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM glycerol
0.0117
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme
0.0123
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethanol
0.0123
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methanol
0.0142
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 3-amino-1-propanol
0.0148
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethylamine
0.0151
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodipropanol
0.0155
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethylamine and 300 mM ethanol
0.0163
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM diethylamine
0.0178
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM diethylamine and 300 mM ethanol
0.018
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethylamine
0.0193
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methylamine
0.0195
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethylamine and 300 mM ethanol
0.0195
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 1-amino-2-propanol
0.0209
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM monoethanolamine
0.0211
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 2-amino-2-methyl-1-propanol
0.0216
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methylamine and 300 mM ethanol
0.0295
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodiglycol
0.031
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant L140Y
0.0312
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM diethanolamine
0.0361
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triisopropanolamine
0.042
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethanolamine
0.0477
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM triethanolamine
0.048
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y/L140Y
0.049
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y
0.142
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant L140Y, with 300 mM triethanolamine
0.182
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y, with 300 mM triethanolamine
0.217
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y/L140Y, with 300 mM triethanolamine
9.69
diisopropyl fluorophosphate
pH 10.5, 25°C, recombinant PON1 wild-type enzyme
20.35
diisopropyl fluorophosphate
pH 10.5, 25°C, recombinant PON1-hFc fusion enzyme
208
diisopropyl fluorophosphate
-
pH 8, 35°C, effects of pH, temperature and ionic strength on kcat are studied
211
diisopropyl fluorophosphate
wild type enzyme
230
diisopropyl fluorophosphate
-
pH not specified in the publication, temperature not specified in the publication
291
diisopropyl fluorophosphate
mutant enzyme E37A/Y144A/R146A/T195M
376
diisopropyl fluorophosphate
mutant enzyme E37D/Y144A/R16A/T195M
465
diisopropyl fluorophosphate
-
pH not specified in the publication, temperature not specified in the publication
583
diisopropyl fluorophosphate
-
pH 7.5, 22°C
917
diisopropyl fluorophosphate
-
value above
2091
diisopropyl fluorophosphate
wild-type, presence of 3 mM O,O-dicyclopentylphosphoroamidate, pH 7.5, 25°C, in nitrogen atmosphere
2107
diisopropyl fluorophosphate
wild-type, pH 7.5, 25°C, in nitrogen atmosphere
2111
diisopropyl fluorophosphate
wild-type, presence of 1 mM O,O-dicyclopentylphosphoroamidate, pH 7.5, 25°C, in nitrogen atmosphere
56
O-isopropylmethylphosphonofluoridate

-
pH not specified in the publication, temperature not specified in the publication
442
O-isopropylmethylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
5
O-pinacolyl methylphosphonofluoridate

-
pH not specified in the publication, temperature not specified in the publication
151
O-pinacolyl methylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
6.11
paraoxon

-
pH not specified in the publication, temperature not specified in the publication
3170
paraoxon
-
pH not specified in the publication, temperature not specified in the publication
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217
2,2-dimethylcyclopentyl methylphosphonofluoridate
pH and temperature not specified in the publication
-
1600
Coumaphos
-
pH not specified in the publication, temperature not specified in the publication
390
diazinon
-
pH not specified in the publication, temperature not specified in the publication
0.0031 - 9700
diisopropyl fluorophosphate
150
fensulfothion
-
pH not specified in the publication, temperature not specified in the publication
2400
methyl parathion
-
pH not specified in the publication, temperature not specified in the publication
1.58
novichok A230
pH and temperature not specified in the publication
-
1.15
novichok A232
pH and temperature not specified in the publication
-
0.58
novichok A234
pH and temperature not specified in the publication
-
959
O-cyclohexyl methylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
0.045
O-ethyl S-(2-diisopropylamino)ethyl methylphosphonothioate
-
pH not specified in the publication, temperature not specified in the publication
80 - 282
O-isopropylmethylphosphonofluoridate
10 - 61
O-pinacolyl methylphosphonofluoridate
55000
paraoxon
-
pH not specified in the publication, temperature not specified in the publication
2600
parathion
-
pH not specified in the publication, temperature not specified in the publication
21.7
sarin
pH and temperature not specified in the publication
267
soman
pH and temperature not specified in the publication
0.09
VR
pH and temperature not specified in the publication
27
(R)-cyclosarin

mutant enzyme E37D/Y144A/R16A/T195M
130
(R)-cyclosarin
mutant enzyme E37A/Y144A/R146A/T195M
720
(R)-cyclosarin
wild type enzyme
24
(R)-sarin

mutant enzyme E37D/Y144A/R16A/T195M
45
(R)-sarin
mutant enzyme E37A/Y144A/R146A/T195M
47
(R)-sarin
wild type enzyme
17
(S)-cyclosarin

wild type enzyme
24
(S)-cyclosarin
mutant enzyme E37D/Y144A/R16A/T195M
490
(S)-cyclosarin
mutant enzyme E37A/Y144A/R146A/T195M
42
(S)-sarin

wild type enzyme
71
(S)-sarin
mutant enzyme E37D/Y144A/R16A/T195M
230
(S)-sarin
mutant enzyme E37A/Y144A/R146A/T195M
0.0031
diisopropyl fluorophosphate

pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 3-amino-1-propanol
0.0032
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodipropanol
0.0033
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethylamine
0.0034
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM glycerol
0.0035
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM diethylamine
0.0035
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethylamine and 300 mM ethanol
0.0039
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme
0.0039
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methanol
0.004
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethanol
0.004
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethylamine
0.004
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM diethylamine and 300 mM ethanol
0.0044
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methylamine
0.0045
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM ethylamine and 300 mM ethanol
0.0052
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM methylamine and 300 mM ethanol
0.0066
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM monoethanolamine
0.0067
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 1-amino-2-propanol
0.0072
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM 2-amino-2-methyl-1-propanol
0.0074
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM thiodiglycol
0.0086
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triisopropanolamine
0.0093
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM diethanolamine
0.0098
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant L140Y
0.01
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 300 mM triethanolamine
0.011
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant wild-type enzyme, with 400 mM triethanolamine
0.0153
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y
0.016
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y/L140Y
0.032
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant L140Y, with 300 mM triethanolamine
0.043
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y, with 300 mM triethanolamine
0.054
diisopropyl fluorophosphate
pH 8.0, 25°C, recombinant mutant F132Y/L140Y, with 300 mM triethanolamine
2.67
diisopropyl fluorophosphate
pH 10.5, 25°C, recombinant PON1 wild-type enzyme
4.33
diisopropyl fluorophosphate
pH 10.5, 25°C, recombinant PON1-hFc fusion enzyme
56
diisopropyl fluorophosphate
wild type enzyme
77
diisopropyl fluorophosphate
-
pH not specified in the publication, temperature not specified in the publication
96
diisopropyl fluorophosphate
mutant enzyme E37D/Y144A/R16A/T195M
140
diisopropyl fluorophosphate
mutant enzyme E37A/Y144A/R146A/T195M
617
diisopropyl fluorophosphate
pH and temperature not specified in the publication
9700
diisopropyl fluorophosphate
-
pH not specified in the publication, temperature not specified in the publication
80
O-isopropylmethylphosphonofluoridate

-
pH not specified in the publication, temperature not specified in the publication
282
O-isopropylmethylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
10
O-pinacolyl methylphosphonofluoridate

-
pH not specified in the publication, temperature not specified in the publication
61
O-pinacolyl methylphosphonofluoridate
-
pH not specified in the publication, temperature not specified in the publication
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H287F
the mutant shows 65-80% activity compared to the wild type enzyme
H287L
the mutant shows 65-80% activity compared to the wild type enzyme
H287N
the mutant shows 3.7% activity compared to the wild type enzyme
H254R
-
the active site mutation results in increased activity with soman and VX
H275L
-
the active site mutation results in increased activity with soman and VX
H275V
-
the active site mutation results in increased activity with soman and VX
H115W/R192K
site-directed mutagenesis, the mutant shows altered substrate specificity compared to wild-type
H115W/R192K/A137T
site-directed mutagenesis, the mutant shows altered substrate specificity compared to wild-type
H115W/R192K/A137T/D94H/S211T
site-directed mutagenesis, the mutant shows altered substrate specificity compared to wild-type
H115W/R192K/A137T/L130F
site-directed mutagenesis, the mutant shows altered substrate specificity compared to wild-type
H115W/R192K/A137T/M127I/D263H
site-directed mutagenesis, the mutant shows altered substrate specificity compared to wild-type
H115W/R192K/A137T/S81R/P165A
site-directed mutagenesis, the mutant shows altered substrate specificity compared to wild-type
L55M
natural polymorphism, the polymorphism at the 55th position of h-PON1 does not affect the catalytic properties of the enzyme
R192E
natural polymorphism, polymorphism at position 192 plays an important role in determining the substrate specificity and catalytic efficiency of the enzyme
Asp229/Asn120
site-directed mutagenesis, the mutant shows impaired catalytic activity or decreased substrate binding affinity
Asp229/Asn175
site-directed mutagenesis, the mutant shows impaired catalytic activity or decreased substrate binding affinity
D121E
the mutant displays 87% activity compared to the wild type enzyme
D229N
enzymatically inactive
D229N/N175D
catalytically inactive, no change in the calcium coordinating environment
D232S
3% higher activity than the wild-type
E21Q/N120D
catalytically inactive
E21Q/N120D/N175D/D229N
the mutations lead to a loss of calcium binding and enzymatic activity
E21Q/N175D
catalytically inactive
E37A/Y144A/R146A/T195M
the mutant shows increased turnover number and kcat/Km for diisopropyl fluorophosphate compared to the wild type enzyme
E37D/Y144A/R16A/T195M
the mutant shows increased turnover number and kcat/Km for diisopropyl fluorophosphate compared to the wild type enzyme
F173A
84% lower activity than the wild-type
F173L
28% lower activity than the wild-type
F173S
68% lower activity than the wild-type
F173V
46% lower activity than the wild-type
F173W
19% lower activity than the wild-type
F173Y
53% lower activity than the wild-type
F314A
3% higher activity than the wild-type
Glu21/Asn120
site-directed mutagenesis, the mutant shows impaired catalytic activity or decreased substrate binding affinity
Glu21/Asn175
site-directed mutagenesis, the mutant shows impaired catalytic activity or decreased substrate binding affinity
H219N
-
no effect on catalytic activity
H224N
-
115% activity in comparison to wild-type enzyme
H248N
-
no effect on catalytic activity
H287A
90% lower activity than the wild-type
H287D
99% lower activity than the wild-type
H287F
36% lower activity than the wild-type
H287L
21% lower activity than the wild-type
H287Q
54% lower activity than the wild-type
H287W
34% lower activity than the wild-type
H287Y
57% lower activity than the wild-type
M148A
26% lower activity than the wild-type
N120D
96% lower activity than the wild-type
N120D/N175D/D229N
the mutations lead to a loss of calcium binding and enzymatic activity
N175D
98% lower activity than the wild-type
N237S
4% lower activity than the wild-type
Q304F
50% lower activity than the wild-type
Q304W
3% lower activity than the wild-type
Q77W
6% higher activity than the wild-type
Q77Y
6% lower activity than the wild-type
R146S
45% lower activity than the wild-type
S271A
34% higher activity than the wild-type
S271A/D232S
19% lower activity than the wild-type
T195A
60% lower activity than the wild-type
T195L
11% lower activity than the wild-type
T195V
3% lower activity than the wild-type
Y144S
8% higher activity than the wild-type
F132Y
site-directed mutagenesis, the mutant exhibits a 3fold increased activity with diisopropyl fluorophosphate compared to wild-type
F132Y/ L140Y
site-directed mutagenesis, the mutant exhibits a several folds increased activity with diisopropyl fluorophosphate compared to wild-type
L140Y
site-directed mutagenesis, the mutant exhibits a 5fold increased activity with diisopropyl fluorophosphate compared to wild-type
D229N/N120D

no activity
D229N/N120D
catalytically inactive, no change in the calcium coordinating environment
H181N

-
20% loss of activity in comparison to wild-type enzyme
H181N
19% lower activity than the wild-type
H274N

-
slight loss of activity in comparison to wild-type enzyme using pH Stat measurements, no alteration is observed with fluoride assay
H274N
7% lower activity than the wild-type
H287N

-
96% loss of activity in comparison to wild-type enzyme
H287N
96% lower activity than the wild-type
additional information

a PTE mutant dubbed C23 is engineered, exhibiting reversed stereoselectivity and high catalytic efficiency (kcat/KM) for the hydrolysis of the toxic enantiomers of nerve agents VX, CVX, and VR. The other mutants A53, IV-A1, IV-H3, B141, and RD1-G83 are less effective, activities and mutant-substrate docking, overview. The only exception is IV-A1 with amiton. Most variants are highly efficient when hydrolyzing N,N-diisopropyl substrates and are 2fold less efficient with N,N-diethyl substrates and 5fold less efficient with N,N-dimethyl substrates
additional information
the catalytic efficiency of the recombinant human paraoxonase 1 fused to human immunoglobulin Fc domain, i.e. recombinant PON1-hFc, towards diisopropyl fluorophosphate (DFP) and paraoxon hydrolysis is 1.63 and 1.24fold higher, respectively, than the recombinant human wild-type PON1
additional information
h-PON1 is a polymorphic enzyme. A random mutagenesis approach is used to increase the organophosphate (OP)-hydrolyzing activity of recombinant enzyme h-PON1. The mutants not only show a 10-340fold increased OP-hydrolyzing activity against different OP substrates but also exhibit differential lactonase and arylesterase activities, molecular docking studies, overview. Random mutagenesis using Escherichia coli XL-1 Red mutator strain. All mutations result in a considerable decrease in the delta-valerolactone-hydrolyzing activity of the enzyme
additional information
-
chemical modification of Tyr, Cys, Arg, Lys, Glu and Asp, this residues are not critical for catalysis
additional information
-
reengineering of DFPase through rational design to bind and productively orient the more toxic SP stereoisomers of the nerve agents sarin and cyclosarin, creating a modified enzyme with enhanced overall activity and significantly increased detoxification properties
additional information
-
preparation of bicontinuous microemulsions made of sugar surfactants as host systems for the DFPase. The microemulsion remains stable in the presence of the enzyme, scattering experiments. DFPase still has high activity in this complex reaction medium, overview
additional information
intracellular production of organophosphorus pesticides (OPs)-degrading enzymes or the use of native bacteria and fungi leads to a low degradation rate of OPs due to a mass transfer issue which reduces the overall catalytic efficiency. To overcome this challenge, DFPase is expressed on the surface of Escherichia coli for the first time by employing the N-terminal domain of the ice nucleation protein (InaV-N) as an anchoring motif. The recombinant DFPase is successfully located on the outer membrane and shows a significant ability for the biodegradation of diisopropylfluorophosphate (DFP) with a specific activity of 500 U/mg of wet cell weight. The recombinant cells can also degrade chlorpyrifos. No enzyme activity is measured by the fluoride ion-selective electrode in the control sample, inner membrane fraction, or cytoplasm fraction of pET-28a-InaV-N-DFPase cells. High potential of the InaV-N anchoring domain to produce an engineered bacterium that can be used in the bioremediation of pesticide-contaminated environments
additional information
the kinetic measurements of enzyme mutants show that the double mutants Glu21/Asn120, Glu21/Asn175, Asp229/Asn120, and Asp229/Asn175 have impaired catalytic activity or decreased substrate binding affinity although their structures provide unchanged calcium coordination environment proving signification of suitable electrostatic effect of the active site for binding and catalysis
additional information
the kinetic measurements of enzyme mutants show that the double mutants Glu21/Asn120, Glu21/Asn175, Asp229/Asn120, and Asp229/Asn175 have impaired catalytic activity or decreased substrate binding affinity although their structures provide unchanged calcium coordination environment proving signification of suitable electrostatic effect of the active site for binding and catalysis
additional information
-
construction of SMP30 knockout mice showing no activity with diisopropyl phosphofluoridate in livers, the liver of the mutant mice is far more susceptible to cytotoxicity of diisopropyl phosphofluoridate
additional information
-
preparation of a direct conjugation of organophosphorus acid anhydrolase with CdS quantum dots via arrested precipitation within the enzyme matrix. The bio-conjugate not only retains enzyme conformational structure but also retains enzyme activity and is effective at detecting diisopropyl fluorophosphate at the micromolar level. Purification of the conjugates by gel filtration. Circular dichroism spectrometric and high resolution transmission electron microscope conjugate structure analysis, overview
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Cohen, J.A.; Warringa, M.G.P.J.
Purification and properties of dialkylfluorophosphatase
Biochim. Biophys. Acta
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29-39
1957
Sus scrofa
brenda
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Purification of a DFP-hydrolyzing enzyme from squid head ganglion
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Purification and properties of an organophosphorus acid anhydrase from a halophilic bacterial isolate
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1991
Alteromonas sp.
brenda
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Purification and properties of a highly active organophosphorus acid anhydrolase from Alteromonas undina
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brenda
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brenda
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-
brenda
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Sus scrofa, Tetrahymena thermophila
-
brenda
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1986
Tetrahymena thermophila
brenda
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75
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1983
Loligo sp., Rattus norvegicus
brenda
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Comparison of DFP-hydrolyzing enzyme purified from head ganglion and hepatopancreas of squid (Loligo pealei) by means of isoelectric focusing
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52
95-98
1975
Doryteuthis pealeii
brenda
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Squid nerve type DFPase. Molecular structures
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7
209-211
1974
Loligo sp.
-
brenda
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Atomic resolution crystal structure of squid ganglion DFPase
Acta Crystallogr. Sect. D
58
1757-1759
2002
Loligo sp.
brenda
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Crystallization and preliminary X-ray crystallographic analysis of DFPase from Loligo vulgaris
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57
148-149
2001
Loligo vulgaris
brenda
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Cloning and expression of a gene encoding a bacterial enzyme for decontamination of organophosphorus nerve agents and nucleotide sequence of the enzyme
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62
1636-1641
1996
Alteromonas sp.
brenda
Hill, C.M.; Li, W.S.; Cheng, T.C.; DeFrank, J.J.; Raushel, F.M.
Stereochemical specificity of organophosphorus acid anhydrolase toward p-nitrophenyl analogs of soman and sarin
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29
27-35
2001
Alteromonas sp.
brenda
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High-yield expression, purification, and characterization of the recombinant diisopropylfluorophosphatase from Loligo vulgaris
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21
210-219
2001
Loligo vulgaris
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Insights into the reaction mechanism of the diisopropyl fluorophosphatase from Loligo vulgaris by means of kinetic studies, chemical modification and site-directed mutagenesis
Biochim. Biophys. Acta
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2001
Loligo vulgaris
brenda
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Substrate and stereochemical specificity of the organophosphorus acid anhydrolase from Alteromonas sp. JD6.5 toward p-nitrophenyl phosphotriesters
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10
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2000
Alteromonas sp.
brenda
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Organophosphorus acid anhydrolase in slime mold, duckweed and mung bean: a continuing search for a physiological role and a natural substrate
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399-404
1999
Dictyostelium discoideum, Landoltia punctata, no activity in Lemna minor, Vigna radiata
brenda
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Long circulating liposomes encapsulating organophosphorus acid anhydrolase in diisopropylfluorophosphate antagonism
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57
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2000
Alteromonas sp.
brenda
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Mutational and structural studies of the diisopropylfluorophosphatase from Loligo vulgaris shed new light on the catalytic mechanism of the enzyme
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44
9022-9033
2005
Loligo vulgaris (Q7SIG4)
brenda
Letant, S.E.; Kane, S.R.; Hart, B.R.; Hadi, M.Z.; Cheng, T.C.; Rastogi, V.K.; Reynolds, J.G.
Hydrolysis of acetylcholinesterase inhibitors--organophosphorus acid anhydrolase enzyme immobilization on photoluminescent porous silicon platforms
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2005
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2005
Alteromonas sp.
brenda
Harvey, S.P.; Kolakowski, J.E.; Cheng, T.C.; Rastogi, V.K.; Reiff, L.P.; DeFrank, J.J.; Raushel, F.M.; Hill, C.
Stereospecificity in the enzymatic hydrolysis of cyclosarin (GF)
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37
547-555
2005
Alteromonas sp., Pseudoalteromonas haloplanktis
-
brenda
Kondo, Y.; Ishigami, A.; Kubo, S.; Handa, S.; Gomi, K.; Hirokawa, K.; Kajiyama, N.; Chiba, T.; Shimokado, K.; Maruyama, N.
Senescence marker protein-30 is a unique enzyme that hydrolyzes diisopropyl phosphorofluoridate in the liver
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570
57-62
2004
Mus musculus, Rattus norvegicus, Rattus norvegicus (Q03336)
brenda
Wang, S.H.; Zhi, Q.W.; Sun, M.J.
Dual activities of human prolidase
Toxicol. In Vitro
20
71-77
2006
Homo sapiens
brenda
Blum, M.M.; Koglin, A.; Rueterjans, H.; Schoenborn, B.; Langan, P.; Chen, J.C.
Preliminary time-of-flight neutron diffraction study on diisopropyl fluorophosphatase (DFPase) from Loligo vulgaris
Acta Crystallogr. Sect. F
63
42-45
2007
Loligo vulgaris
brenda
Blum, M.M.; Loehr, F.; Richardt, A.; Rueterjans, H.; Chen, J.C.
Binding of a designed substrate analogue to diisopropyl fluorophosphatase: implications for the phosphotriesterase mechanism
J. Am. Chem. Soc.
128
12750-12757
2006
Loligo vulgaris (Q7SIG4)
brenda
Gaeb, J.; Melzer, M.; Kehe, K.; Richardt, A.; Blum, M.M.
Quantification of hydrolysis of toxic organophosphates and organophosphonates by diisopropyl fluorophosphatase from Loligo vulgaris by in situ Fourier transform infrared spectroscopy
Anal. Biochem.
385
187-193
2009
Loligo vulgaris
brenda
Blum, M.M.; Mustyakimov, M.; Rueterjans, H.; Kehe, K.; Schoenborn, B.P.; Langan, P.; Chen, J.C.
Rapid determination of hydrogen positions and protonation states of diisopropyl fluorophosphatase by joint neutron and X-ray diffraction refinement
Proc. Natl. Acad. Sci. USA
106
713-718
2009
Loligo vulgaris (Q7SIG4)
brenda
Blum, M.M.; Tomanicek, S.J.; John, H.; Hanson, B.L.; Rueterjans, H.; Schoenborn, B.P.; Langan, P.; Chen, J.C.
X-ray structure of perdeuterated diisopropyl fluorophosphatase (DFPase): perdeuteration of proteins for neutron diffraction
Acta Crystallogr. Sect. F
66
379-385
2010
Loligo vulgaris (Q7SIG4)
brenda
Gaeb, J.; Melzer, M.; Kehe, K.; Wellert, S.; Hellweg, T.; Blum, M.M.
Monitoring the hydrolysis of toxic organophosphonate nerve agents in aqueous buffer and in bicontinuous microemulsions by use of diisopropyl fluorophosphatase (DFPase) with 1H-31P HSQC NMR spectroscopy
Anal. Bioanal. Chem.
396
1213-1221
2010
Loligo vulgaris
brenda
Choi, M.S.; Saxena, A.; Chilukuri, N.
A strategy for the production of soluble human senescence marker protein-30 in Escherichia coli
Biochem. Biophys. Res. Commun.
393
509-513
2010
Homo sapiens
brenda
Blum, M.M.; Chen, J.C.
Structural characterization of the catalytic calcium-binding site in diisopropyl fluorophosphatase (DFPase)-Comparison with related beta-propeller enzymes
Chem. Biol. Interact.
187
373-379
2010
Loligo vulgaris (Q7SIG4)
brenda
Melzer, M.; Chen, J.C.; Heidenreich, A.; Gaeb, J.; Koller, M.; Kehe, K.; Blum, M.M.
Reversed enantioselectivity of diisopropyl fluorophosphatase against organophosphorus nerve agents by rational design
J. Am. Chem. Soc.
131
17226-17232
2009
Loligo vulgaris (Q7SIG4)
brenda
Vyas, N.K.; Nickitenko, A.; Rastogi, V.K.; Shah, S.S.; Quiocho, F.A.
Structural insights into the dual activities of the nerve agent degrading organophosphate anhydrolase/prolidase
Biochemistry
49
547-559
2010
Alteromonas sp. (Q44238)
brenda
Chen, J.C.; Mustyakimov, M.; Schoenborn, B.P.; Langan, P.; Blum, M.M.
Neutron structure and mechanistic studies of diisopropyl fluorophosphatase (DFPase)
Acta Crystallogr. Sect. D
66
1131-1138
2010
Loligo vulgaris
brenda
Theriot, C.M.; Grunden, A.M.
Hydrolysis of organophosphorus compounds by microbial enzymes
Appl. Microbiol. Biotechnol.
89
35-43
2011
Alteromonas sp., Brevundimonas diminuta, Flavobacterium sp., Pseudoalteromonas haloplanktis, Pseudoalteromonas undina
brenda
Zhao, L.; Gattas-Asfura, K.M.; Xu, J.; Patel, R.A.; Dadlani, A.; Sillero-Mahinay, M.; Cushmore, M.; Rastogi, V.K.; Shah, S.S.; Leblanc, R.M.
Organophosphorus acid anhydrolase bio-template for the synthesis of CdS quantum dots
Chem. Commun. (Camb. )
47
7242-7244
2011
Pseudomonas aeruginosa
brenda
Wellert, S.; Tiersch, B.; Koetz, J.; Richardt, A.; Lapp, A.; Holderer, O.; Gaeb, J.; Blum, M.M.; Schulreich, C.; Stehle, R.; Hellweg, T.
The DFPase from Loligo vulgaris in sugar surfactant-based bicontinuous microemulsions: structure, dynamics, and enzyme activity
Eur. Biophys. J.
40
761-774
2011
Loligo vulgaris
brenda
Belinskaya, T.; Pattabiraman, N.; diTargiani, R.; Choi, M.; Saxena, A.
Differences in amino acid residues in the binding pockets dictate substrate specificities of mouse senescence marker protein-30, human paraoxonase1, and squid diisopropylfluorophosphatase
Biochim. Biophys. Acta
1824
701-710
2012
Loligo vulgaris (Q7SIG4)
brenda
Wymore, T.; Field, M.J.; Langan, P.; Smith, J.C.; Parks, J.M.
Hydrolysis of DFP and the nerve agent (S)-sarin by DFPase proceeds along two different reaction pathways: Implications for engineering bioscavengers
J. Phys. Chem. B
118
4479-4489
2014
Loligo vulgaris (Q7SIG4)
brenda
Latifi, A.M.; Karami, A.; Khodi, S.
Efficient surface display of diisopropylfluorophosphatase (DFPase) in E. coli for biodegradation of toxic organophosphorus compounds (DFP and Cp)
Appl. Biochem. Biotechnol.
177
624-636
2015
Loligo vulgaris (Q7SIG4)
brenda
Tripathy, R.K.; Aggarwal, G.; Bajaj, P.; Kathuria, D.; Bharatam, P.V.; Pande, A.H.
Towards understanding the catalytic mechanism of human paraoxonase 1 experimental and in silico mutagenesis studies
Appl. Biochem. Biotechnol.
182
1642-1662
2017
Homo sapiens (P27169)
brenda
Goldsmith, M.; Eckstein, S.; Ashani, Y.; Greisen, P.; Leader, H.; Sussman, J.L.; Aggarwal, N.; Ovchinnikov, S.; Tawfik, D.S.; Baker, D.; Thiermann, H.; Worek, F.
Catalytic efficiencies of directly evolved phosphotriesterase variants with structurally different organophosphorus compounds in vitro
Arch. Toxicol.
90
2711-2724
2016
Brevundimonas diminuta (P0A434)
brenda
Allahyari, H.; Latifi, A.
Diisopropyl-fluorophosphatase as a catalytic bioscavenger
J. Appl. Biotechnol. Rep.
3
477-482
2016
Loligo vulgaris (Q7SIG4)
-
brenda
Zhang, H.; Yang, L.; Ma, Y.Y.; Zhu, C.; Lin, S.; Liao, R.Z.
Theoretical studies on catalysis mechanisms of serum paraoxonase 1 and phosphotriesterase diisopropyl fluorophosphatase suggest the alteration of substrate preference from paraoxonase to DFP
Molecules
23
1660
2018
Loligo vulgaris (Q7SIG4)
brenda
Li, D.; Zhang, Y.; Song, H.; Lu, L.; Liu, D.; Yuan, Y.
Aminoalcohol-induced activation of organophosphorus hydrolase (OPH) towards diisopropylfluorophosphate (DFP)
PLoS ONE
12
e0169937
2017
Sphingobium fuliginis (P0A433)
brenda
Yun, H.; Yu, J.; Kim, S.; Lee, N.; Lee, J.; Lee, S.; Kim, N.D.; Yu, C.; Rho, J.
Expression and purification of biologically active recombinant human paraoxonase 1 from a Drosophila S2 stable cell line
Protein Expr. Purif.
131
34-41
2017
Homo sapiens (P27169)
brenda
Xu, C.; Yang, L.; Yu, J.; Liao, R.
What roles do the residue Asp229 and the coordination variation of calcium play of the reaction mechanism of the diisopropyl-fluorophosphatase? A DFT investigation
Theoret. Chem. Accounts
135
1-11
2016
Loligo vulgaris (Q7SIG4)
-
brenda
Xu, C.; Yang, L.; Yu, J.; Liao, R.
What roles do the residue Asp229 and the coordination variation of calcium play of the reaction mechanism of the diisopropyl-fluorophosphatase? A DFT investigation
Theoret. Chem. Accounts
135
138
2016
Loligo vulgaris (Q7SIG4)
-
brenda
Thakur, M.; Dean, S.N.; Moore, M.; Spangler, J.R.; Johnson, B.J.; Medintz, I.L.; Walper, S.A.
Packaging of diisopropyl fluorophosphatase (DFPase) in bacterial outer membrane vesicles protects its activity at extreme temperature
ACS Biomater. Sci. Eng.
8
493-501
2022
Loligo vulgaris (Q7SIG4)
brenda
Chen, J.C.; Tonelli, M.; Anderson, P.; Michalczyk, R.; Blum, M.M.; Williams, R.F.
Backbone and side chain chemical shift assignment of diisopropyl fluorophosphatase (DFPase) from Loligo vulgaris, an organophosphorus-degrading enzyme
Biomol. NMR Assign.
17
55-60
2023
Loligo vulgaris, Loligo vulgaris (Q7SIG4)
brenda
Matula, M.; Kucera, T.; Soukup, O.; Pejchal, J.
Enzymatic degradation of organophosphorus pesticides and nerve agents by EC 3.1.8.2
Catalysts
10
1365
2020
Alteromonas sp. JD6.5 (Q44238), Loligo vulgaris (Q7SIG4), Pseudoalteromonas haloplanktis (P77814), Pseudoalteromonas undina
-
brenda
Xu, W.; Zhao, S.; Zhang, W.; Wu, H.; Guang, C.; Mu, W.
Recent advances and future prospective of organophosphorus-degrading enzymes identification, modification, and application
Crit. Rev. Biotechnol.
41
1096-1113
2021
Loligo vulgaris (Q7SIG4)
brenda
Paidi, M.K.; Satapute, P.; Haider, M.S.; Udikeri, S.S.; Ramachandra, Y.L.; Vo, D.N.; Govarthanan, M.; Jogaiah, S.
Mitigation of organophosphorus insecticides from environment Residual detoxification by bioweapon catalytic scavengers
Environ. Res.
200
111368
2021
Loligo vulgaris
brenda
Zlobin, A.; Diankin, I.; Pushkarev, S.; Golovin, A.
Probing the suitability of different Ca2+ parameters for long simulations of diisopropyl fluorophosphatase
Molecules
26
5839
2021
Loligo vulgaris (Q7SIG4)
brenda