Importance of different tfd genes for degradation of chloroaromatics by Ralstonia eutropha JMP134
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The complete multipartite genome sequence of Cupriavidus necator JMP134, a versatile pollutant degraderEfficient degradation of 2,4,6-Trichlorophenol requires a set of catabolic genes related to tcp genes from Ralstonia eutropha JMP134(pJP4)Metabolic reconstruction of aromatic compounds degradation from the genome of the amazing pollutant-degrading bacterium Cupriavidus necator JMP134.Amino acids in positions 48, 52, and 73 differentiate the substrate specificities of the highly homologous chlorocatechol 1,2-dioxygenases CbnA and TcbC.Two structurally different dienelactone hydrolases (TfdEI and TfdEII) from Cupriavidus necator JMP134 plasmid pJP4 catalyse cis- and trans-dienelactones with similar efficiency.Effect of glucose on the fatty acid composition of Cupriavidus necator JMP134 during 2,4-dichlorophenoxyacetic acid degradation: implications for lipid-based stable isotope probing methods.Genetic analysis of phenoxyalkanoic acid degradation in Sphingomonas herbicidovorans MH.The completely sequenced plasmid pEST4011 contains a novel IncP1 backbone and a catabolic transposon harboring tfd genes for 2,4-dichlorophenoxyacetic acid degradation.Microbial degradation of 2,4-dichlorophenoxyacetic acid: Insight into the enzymes and catabolic genes involved, their regulation and biotechnological implications.Molecular and population analyses of a recombination event in the catabolic plasmid pJP4.Two chlorocatechol catabolic gene modules on plasmid pJP4.Metabolism of dichloromethylcatechols as central intermediates in the degradation of dichlorotoluenes by Ralstonia sp. strain PS12.Formation of protoanemonin from 2-chloro-cis,cis-muconate by the combined action of muconate cycloisomerase and muconolactone isomerase.Efficient turnover of chlorocatechols is essential for growth of Ralstonia eutropha JMP134(pJP4) in 3-chlorobenzoic acid.Chloromethylmuconolactones as critical metabolites in the degradation of chloromethylcatechols: recalcitrance of 2-chlorotolueneGenetic organization of the catabolic plasmid pJP4 from Ralstonia eutropha JMP134 (pJP4) reveals mechanisms of adaptation to chloroaromatic pollutants and evolution of specialized chloroaromatic degradation pathways.Chlorophenol hydroxylases encoded by plasmid pJP4 differentially contribute to chlorophenoxyacetic acid degradation.
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P2860
Importance of different tfd genes for degradation of chloroaromatics by Ralstonia eutropha JMP134
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2002 nî lūn-bûn
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2002年の論文
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2002年論文
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2002年論文
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Importance of different tfd ge ...... s by Ralstonia eutropha JMP134
@en
Importance of different tfd ge ...... by Ralstonia eutropha JMP134.
@nl
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label
Importance of different tfd ge ...... s by Ralstonia eutropha JMP134
@en
Importance of different tfd ge ...... by Ralstonia eutropha JMP134.
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Importance of different tfd ge ...... s by Ralstonia eutropha JMP134
@en
Importance of different tfd ge ...... by Ralstonia eutropha JMP134.
@nl
P2093
P2860
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Importance of different tfd ge ...... s by Ralstonia eutropha JMP134
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P2093
Bernardo González
Danilo Pérez-Pantoja
Dietmar H Pieper
Iris Plumeier
Sabina Heim
P2860
P304
P356
10.1128/JB.184.15.4054-4064.2002
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P577
2002-08-01T00:00:00Z