• Title/Summary/Keyword: Catechol 1,2-dioxygenase

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Reaction Characteristics of 4-Methylcatechol 2,3-Dioxygenase from Pseudomonas putida SU10

  • Ha, You-Mee;Jung, Young-Hee;Kwon, Dae-Young;Kim, Young-Soo;Kim, Chy-Kyung;Min, Kyung-Hee
    • Journal of Microbiology and Biotechnology
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    • v.10 no.1
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    • pp.35-42
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    • 2000
  • Reaction characteristics of 4-methylcatechol 2,3-dioxygenase (4MC230) purified from Pseudomonas putida SU10 with a higher activity toward 4-methylcatechol than catechol or 3-cethylcatechol were studied by altering their physical and chemical properties. The enzyme exhibited a maximum activity at pH 7.5 and approximately 40% at pH 6.0 for 4-methylcatechol hydrolysis. The optimum temperature for the enzyme was around $35^{\circ}C$, since the enzyme was unstable at higher temperature. Acetone(10%) stabilized the 4MC230. The effects of solvent and other chemicals (inactivator or reactivator) for the reactivation of the 4MC230 were also investigated. Silver nitrate and hydrogen peroxid severely deactivated the enzyme and the deactivation by hydrogen peroxide severely deactivated the enzyme and the deactivation by hydrogen peroxide was mainly due to the oxidation of ferrous ion to ferric ion. Some solvents acted as an activator and protector for the enzyme from deactivation by hydrogen peroxide. Ascorbate, cysteine, or ferrous ion reactivated the deactivated enzyme by hydrogen peroxide. The addition of ferrous ion together with a reducing agent fully recovered the enzyme activity and increased its activity abut 2 times.

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Characteristics of Catechol 2,3-Dioxygenase Produced by 4-Chlorobenzoate-degrading Pseudomonas sp. S-47

  • Kim, Ki-Pil;Seo, Dong-In;Min, Kyung-Hee;Ka, Jong-Ok;Park, Yong-Keun;Kim, Chi-Kyung
    • Journal of Microbiology
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    • v.35 no.4
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    • pp.295-299
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    • 1997
  • Pseudomonas sp. S-47 is capable of transforming 4-chlorobenzoate to 4-chlorocatechol which is subsequently oxidized bty meta-cleavage dioxygenase to prodyce 5-chloro-2-hydroxymuconic semialdehyde. Catechol 2,3-dioxygenase (C23O) produced by Pseudomonas sp. S-47 was purified and characterized in this study. The C23O enzyme was maximally produced in the late logarithmic growth phase, and the temperature and pH for maximunm enzyme activity were $30{\sim}35^{\circ}C$ and 7.0, respectively. The enzyme was purified and concentrated 5 fold from the crude cell extracts through Q Sepharose chromatography and Sephadex G-100 gel filtration after acetone precipitation. The enzyme was identified as consisting of 35 kDa subunits when analyzed by SDS-PAGE. The C23O produced by Pseudomonas sp. S-47 was similar to Xy1E of Pseudomonas putida with respect to substrate specificity for several catecholic compounds.

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Expression and Characterization of catA1 (catechol 1,2-dioxygenase I1) of Acinetobacter lwoffii K24 in Escherichia coli

  • Kim, Seung-Il;Kweon, Soo-Mi;Kim, Soo-Hyun;Ha, Kwon-Soo
    • BMB Reports
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    • v.30 no.5
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    • pp.342-345
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    • 1997
  • Catechol 1,2-dioxygenase $I_1$ (CD $I_1$) gene of Acinetobacter Iwoffii K24, $catA_1$ was expressed in Escherichia coli and was partially purified by using a MonoQ column. Expressed CD $I_1$ had the same molecular weight as purified CD $I_1$ from A. Iwoffii K24 on SDS-PAGE. Expressed CD $I_1$ was also identified by Western blotting and peptide sequencing of N-terminal and internal regions. When compared with purified CD $I_1$ of A. Iwoffii K24, expressed CD $I_1$ had similar substrate specificities and the effects of compounds on enzyme activity. N-terminal amino acid sequence of CD I expressed in E. coli was the same as that of purified CD $I_1$, suggesting that CD $I_1$ may be under the same posttranslational processing in E. coli and A. Iwoffii K24.

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Chloroplast-type Ferredoxin Involved in Reactivation of Catechol 2,3-Dioxygenase from Pseudomonas sp.S-47

  • Park, Dong-Woo;Chae, Jong-Chan;Kim, Young-Soo;Iida, Toshiya;Kudo, Toshiaki;Kim, Chi-Kyung
    • BMB Reports
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    • v.35 no.4
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    • pp.432-436
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    • 2002
  • Pseudomonas sp. S-47 is capable of degrading catechol and 4-chlorocatechol via the meta-cleavage pathway. XyITE products catalyze the dioxygenation of the aromatics. The sylT of the strain S-47 is located just upstream of the xylE gene. XylT of the strain S-47 is located just upstream of the xylE gene. XyIT is typical chloroplast-type ferredoxin, which is characterized by 4 cystein residues that are located at positions 41, 46, 49, and 81. The chloroplast-type ferredoxin of Pseudomonas sp. S-47 exhibited a 98% identity with that of P. putida mt-2(TOL plasmid) in the amino acid sequence, but only about a 40 to 60% identity with the corresponding enzymes from other organisms. We constructed two recombinant plasmids (pRES1 containing xylTE and pRES101 containing xylE without xylT) in order to examine the function of XyIT for the reactivation of the catechol 2,3-dioxygenase (XyIE) that is oxidized with hydrogen peroxide was recovered in the catechol 2,3-dioxygenase (C23O) activity about 4 mimutes after incubation, but the pRES101 showed no recovery. That means that the typical chloroplast-type ferredoxin (XyIT) of Pseudomonas sp. S-47 is involved in the reactivation of the oxidized C23O in the dioxygenolytic cleavage of aromatic compounds.

Degradation of Anthracene by a Pseudomonas strain, NGK1

  • Shinde Manohar;Kim, Chi-Kyung;Tim
    • Journal of Microbiology
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    • v.37 no.2
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    • pp.73-79
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    • 1999
  • Pseudomonas sp. NGK1, isolated by naphthalene enrichment culture technique, is capable of degrading anthracene as a sole source of carbon and energy. The organism degraded anthracene through the intermediate formation of 1,2-dihydroxyanthracene, 2-hydroxy-3-naphthoic acid, salicylate, and catechol. The intermediates were isolated and characterized by TLC, spectrophotometry, and HPLC analysis. The cell free extract of anthracene-grown cells showed activities of anthracene dioxygenase, 2-hydroxy-3-naphthylaldehyde dehydrogenae, 2-hydroxy-3-naphthoate hydroxylase, salicylate hydroxylase and catechol 2,3-dioxygenase. The formed catechol as a metabolite is degraded through meta-cleavage with the formation of ${\alpha}$-hydroxymuconic semi-aldehyde.

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Isolation and Characterization of 3,4-Dichloroaniline Degrading Bacteria (3,4-Dichloroaniline 분해 미생물의 분리 및 특성)

  • Kim, Young-Mog;Park, Kun-Ba-Wui;Kim, Won-Chan;Han, Won-Sub;Yu, Choon-Bal;Rhee, In-Koo
    • Microbiology and Biotechnology Letters
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    • v.35 no.3
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    • pp.245-249
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    • 2007
  • Chloroanilines are widely used in the production of dyes, drugs and herbicides. Chloroanilines, however, are considered potential pollutants due to their toxic and recalcitrant properties to humans and other species. With the increase of necessity of bioremediation, this study was conducted to isolate the chloroanilines-degrading bacteria. A bacterium capable of growth on 3,4-dichloroaniline (DCA) was isolated by the 3,4-DCA-containing enrichment culture. The strain KB35B was identified as Pseudomonas sp. and also able to degrade several chloroanilines. The isolated strain showed high level of catechol 2,3-dioxygenase activity in the presence of 3,4-DCA. The activity of catecho1 2,3-dioxygenase was supposed to be ones of the important factors for 3,4-DCA degradation. The activity toward 4-methykatechol was 60.6% of that of catechol, while the activity toward 3-methylcatechol and 4-chlorocatechol were 27.0 and 13.5%, respectively.

Effect of 2-hydroxypropyl-$\beta$-cyclodextrin on Biodegradation of High-Molecular Weight Polycyclic Aromatic Hydrocarbons by Novosphingobium pentaromtivorans US6-1 (Novosphingobium pentaromtivorans US6-1에 의한 고분자 방향족 탄화수소 생분해과정에서 2-hydroxypropyl-$\beta$-cyclodextrin의 영향)

  • Kang Ji-Hyun;Kwon Kae Kyoung;Kim Sang-Jin
    • Journal of the Korean Society for Marine Environment & Energy
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    • v.7 no.3
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    • pp.146-151
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    • 2004
  • Cyclodextrin compounds including 2-hydroxypropyl-β-cyclodextrin(β-HPCD) though to be accelerate the biodegradation of PAHs molecule by increasing solubility of PAHs through detaining PAHs in their's cavity. However, only this mechanism is not sufficient to explain the enhancement of PAHs biodegradation by β-HPCD. To find out possible additional role of β-HPCD in the enhancement of PAHs biodegradation, biodegradation rates of pyrene and benzo[a]pyrene (B[a]P) by a PAHs degrading Novosphingobium pentaromtivorans US6-1 strain were compared between with and without addition of β-HPCD. Changes of bacterial biomass were also measured simultaneously. In addition catechol 1,2-dioxygenase activity was determined depending on pre-incubation conditions. As a result, β-HPCD accelerate the degradation rate of pyrene by strain US6-1 and especially the β-HPCD amendment was obligatory for the degradation of B[a]p. Bacterial biomass was responsible for β-HPCD, however, PAHs compounds such as pyrene and B[a]P did not contribute to the bacterial biomass. Catechol 1,2-dioxygenase specific activity of US6-l cells pre-cultured in MM2 medium containing l% β-HPCD was higher than that of cells pre-cultured in ZoBell medium. The former case also showed similar activity compared to that of cells serially starved in MM2 medium after grown in ZoBell medium. These results imply that the presence of β-HPCD accelerate the degradation of PAHs by increasing the bacterial biomass as well as by increasing the water solubility of PAHs.

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Complete genome sequence of Runella sp. ABRDSP2, a new mono-aromatic compounds degrading bacterium isolated from freshwater (담수로부터 분리한 단환성 화합물 분해 미생물 Runella sp. ABRDSP2의 전장 유전체 서열)

  • Kang, Hye Kyeong;Ryu, Byung-Gon;Choi, Kyung Min;Jin, Hyun Mi
    • Korean Journal of Microbiology
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    • v.55 no.1
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    • pp.55-57
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    • 2019
  • The Runella sp. ABRDSP2, capable of degrading mono-aromatic compounds such as toluene, was isolated from freshwater. The whole genome, consisting of a circular single chromosome and three plasmids, was composed of total 7,613,819 bp length with 44.4% G+C contents and 6,006 genes. The genome of strain ABRDSP2 contains many aromatic hydrocarbon degrading genes such as monooxygenase, ring-cleaving dioxygenase, and catechol 1,2-dioxygenase. The complete genome reveals versatile biodegradation capabilities of Runella sp. ABRDSP2.

Characterization of Catechol l,2-Dioxygenase Purified from the Benzoate Degrading Bacterium, Pseudomonas sp. NFQ-l Isolated from Dead Coal Pit Areas (폐광지역에서 분리한 Benzoate 분해세균 Pseudomonas sp. NEQ-1에서 정제된 Catechol 1,2-Dioxygenase의 특성)

  • Joo Jung-Soo;Yoon Kyung-Ha
    • Korean Journal of Microbiology
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    • v.40 no.4
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    • pp.275-281
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    • 2004
  • Our previous research has demonstrated that the bacterium, Pseudomonas sp. NFQ-l capable of utilizing quin­oline (2,3-benzopyridine) as the sole source of carbon, nitrogen, and energy was isolated and characterized [Yoon et ai. (2003) Kor. J. Biotechnol. Bioeng. 18(3):174-179]. In this study, we have found that Pseudomonas sp. NFQ-l could degrade quinoline as well as benzoate, and extended this work to characterize the catechol 1,2­dioxygenase (C1,2O) purified from the bacterium cultured in benzoate media. Initially, C1,2O has been purified by ammonium sulfate precipitation, gel permeation chromatography, and Source 15Q. After Source 15Q, puri­fication fold was increased to approximately 14.21 unit/mg. Molecular weight of C1,2O was about 33 kDa. Physicochemical characteristics (e.g., substrate specificity, Km, Vmax, pH, temperature and effect of inhibitors) of purified C1,2O were examined. C1,2O demonstrated the activity for catechol, 4-methylcatechol and 3-meth­ylcatechol as a substrate, respectively. The Km and Vmax value of C1,2O for catechol was 38.54 ${\mu}M$ and $25.10\;{\mu}mol{\cdot}min^{-1}{\cdot}mg^{-1}.$ The optimal temperature of C1,2O was $30^{\circ}C$ and the optimal pH was approximately 8.5. Metal ions such as $Ag^+,\;Hg^+,\;Ca^{2+},\;and\;Cu^{2+}$ show the inhibitory effect on the activity of C1,2O. N-terminal amino sequence of C1,2O was analyzed as ^1TVKISQSASIQKFFEEA^{17}.$ In this work, we found that the amino acid sequence of NFQ-l showed the sequence homology of 82, 71, 59 and $53\%$ compared with C1,2O from Pseudomonas aeruginosa PA0l, Pseudomonas arvilla C-1., P. putida KT2440 and Pseudomonas sp. CA10, respectively.