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Reference on EC 3.11.1.2 - phosphonoacetate hydrolase

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REF.
AUTHORS
TITLE
JOURNAL
VOL.
PAGES
YEAR
ORGANISM (UNIPROT)
PUBMED ID
SOURCE
McGrath, J.W.; Wisdom, G.B.; McMullan, G.; Larkin, M.J.; Quinn, J.P.
The purification and properties of phosphonoacetate hydrolase, a novel carbon-phosphorus bond-cleavage enzyme from Pseudomonas fluorescens 23F
Eur. J. Biochem.
234
225-230
1995
Pseudomonas fluorescens, Pseudomonas fluorescens 23F
Manually annotated by BRENDA team
McGrath, J.W.; Quinn, J.P.
A plate assay for the detection of organophosphonate mineralization by environmental bacteria, and its modification as an activity stain for identification of the phosphonocacetate hydrolase
Biotechnol. Tech.
9
497-502
1995
Pseudomonas fluorescens, Pseudomonas fluorescens 23F
-
Manually annotated by BRENDA team
McMullan, G.; Quinn, J.P.
In vitro characterization of a phosphate starvation-independent carbon-phosphorus bond cleavage activity in Pseudomonas fluorescens
J. Bacteriol.
176
320-324
1994
Pseudomonas fluorescens
Manually annotated by BRENDA team
Kulakova, A.N.; Kulakov, L.A.; Quinn, J.P.
Cloning of the phosphonoacetate hydrolase gene from Pseudomonas fluorescens 23F encoding a new type of carbon-phosphorus bond cleaving enzyme and its expression in Echerichia coli and Pseudomonas putida
Gene
195
49-53
1997
Pseudomonas fluorescens
Manually annotated by BRENDA team
McGrath, J.W.; Kulakova, A.N.; Quinn, J.P.
A comparison of three bacterial phosphonoacetate hydrolases from different environmental sources
J. Appl. Microbiol.
86
834-840
1999
Pseudomonas sp., Curtobacterium sp., Pseudomonas sp. PA2, Curtobacterium sp. PA1
-
Manually annotated by BRENDA team
Forlani, G.; Klimek-Ochab, M.; Jaworski, J.; Lejczak, B.; Picco, A.M.
Phosphonoacetic acid utilization by fungal isolates: occurrence and properties of a phosphonoacetate hydrolase in some penicillia
Mycol. Res.
110
1455-1463
2006
Penicillium oxalicum
Manually annotated by BRENDA team
O'Loughlin, S.N.; Graham, R.L.; McMullan, G.; Ternan, N.G.
A role for carbon catabolite repression in the metabolism of phosphonoacetate by Agromyces fucosus Vs2
FEMS Microbiol. Lett.
261
133-140
2006
Agromyces fucosus, Agromyces fucosus Vs2
Manually annotated by BRENDA team
Klimek-Ochab, M.; Raucci, G.; Lejczak, B.; Forlani, G.
Phosphonoacetate hydrolase from Penicillium oxalicum: Purification and properties, phosphate starvation-independent expression, and partial sequencing
Res. Microbiol.
157
125-135
2006
Penicillium oxalicum
Manually annotated by BRENDA team
Gilbert, J.A.; Thomas, S.; Cooley, N.A.; Kulakova, A.; Field, D.; Booth, T.; McGrath, J.W.; Quinn, J.P.; Joint, I.
Potential for phosphonoacetate utilization by marine bacteria in temperate coastal waters
Environ. Microbiol.
11
111-125
2009
Emiliania huxleyi, Sinorhizobium meliloti, Vibrio harveyi, Paraburkholderia xenovorans, Burkholderia multivorans, Burkholderia multivorans (A0A0H3KB87), Sorangium cellulosum, no activity in Vibrio shiloi, Photobacterium rosenbergii, Vibrio campbellii, Karenia mikimotoi, Sinorhizobium medicae, Verminephrobacter eiseniae (A1WGW5), Candidatus Solibacter usitatus (Q01YC7), Burkholderia ambifaria (Q0BAS3), Cupriavidus necator (Q0JZU4), Cupriavidus necator (Q0K2Z6), Rhodopseudomonas palustris (Q6N3F7), Rhodopseudomonas palustris CGA009 (Q6N3F7), Burkholderia ambifaria AMMD (Q0BAS3), Sinorhizobium medicae WSM419, Verminephrobacter eiseniae EF01-2 (A1WGW5), Vibrio campbellii CC028, Candidatus Solibacter usitatus Ellin6076 (Q01YC7), Photobacterium rosenbergii CC006, Cupriavidus necator H16 / ATCC 23440 / NCIB 10442 / S-10-1 (Q0JZU4), Cupriavidus necator H16 / ATCC 23440 / NCIB 10442 / S-10-1 (Q0K2Z6)
Manually annotated by BRENDA team
Kim, A.; Benning, M.M.; OkLee, S.; Quinn, J.; Martin, B.M.; Holden, H.M.; Dunaway-Mariano, D.
Divergence of chemical function in the alkaline phosphatase superfamily: structure and mechanism of the P-C bond cleaving enzyme phosphonoacetate hydrolase
Biochemistry
50
3481-3494
2011
Pseudomonas fluorescens, Pseudomonas fluorescens 23F
Manually annotated by BRENDA team
Agarwal, V.; Borisova, S.A.; Metcalf, W.W.; van der Donk, W.A.; Nair, S.K.
Structural and mechanistic insights into C-P bond hydrolysis by phosphonoacetate hydrolase
Chem. Biol.
18
1230-1240
2011
Sinorhizobium meliloti (Q92UV8)
Manually annotated by BRENDA team
Borisova, S.A.; Christman, H.D.; Metcalf, M.E.; Zulkepli, N.A.; Zhang, J.K.; van der Donk, W.A.; Metcalf, W.W.
Genetic and biochemical characterization of a pathway for the degradation of 2-aminoethylphosphonate in Sinorhizobium meliloti 1021
J. Biol. Chem.
286
22283-22290
2011
Sinorhizobium meliloti
Manually annotated by BRENDA team
Cooley, N.A.; Kulakova, A.N.; Villarreal-Chiu, J.F.; Gilbert, J.A.; McGrath, J.W.; Quinn, J.P.
Phosphonoacetate biosynthesis: in vitro detection of a novel NADP(+)-dependent phosphonoacetaldehyde-oxidizing activity in cell-extracts of the marine Roseovarius nubinhibens ISM
Microbiology
80
335-340
2011
Roseovarius nubinhibens
Manually annotated by BRENDA team
Villarreal-Chiu, J.F.; Quinn, J.P.; McGrath, J.W.
The genes and enzymes of phosphonate metabolism by bacteria, and their distribution in the marine environment
Front. Microbiol.
3
19
2012
Pseudomonas fluorescens (Q51782)
Manually annotated by BRENDA team
Perry, S.L.; Guha, S.; Pawate, A.S.; Bhaskarla, A.; Agarwal, V.; Nair, S.K.; Kenis, P.J.
A microfluidic approach for protein structure determination at room temperature via on-chip anomalous diffraction
Lab Chip
13
3183-3187
2013
Sinorhizobium meliloti
Manually annotated by BRENDA team