• Title/Summary/Keyword: enantioselective hydrolysis

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UV Spectrometric Assay of Epoxide Hydrolase Activity of Microbial Cell Biocatalysts (자외선분광기를 이용한 미생물 세포 생촉매의 에폭사이드 가수분해효소 활성평가)

  • Kim, Hee Sook;Lee, Eun Yeol
    • Applied Chemistry for Engineering
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    • v.16 no.3
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    • pp.456-459
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    • 2005
  • UV spectrometric assay for measurement of epoxide hydrolase activity was tested for efficient screening of whole cell activity of epoxide hydrolase. Epoxide hydrolase activities were determined by measuring the amount of p-nitrostyrene diol (pNSD), which was the hydrolysis product of p-nitrostyrene oxide (pNSO). Enantioselective hydrolysis of racemic pNSO using epoxide hydrolase activity of Rhodosporidium toruloides was monitored by UV spectrometric assay, and the relevant $K_m$ and $V_m$ for R. toruloides were determined as $2.457nmol/min{\cdot}mg$ and 1.078 mM, respectively.

Enantioselective N-Acetylation of 3-Amino-3-phenylpropionic Acid by Cell-free Extracts of Streptomyces neyagawaensis

  • Chung, Myung-Chul;Lee, Ho-Jae;Lee, Choong-Hwan;Chun, Hyo-Kon;Kho, Yung-Hee
    • Journal of Microbiology and Biotechnology
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    • v.7 no.5
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    • pp.329-332
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    • 1997
  • Cell-free extracts of Streptomyces neyagawaensis SL-387 grown on a chemically defined medium supplemented with DL-3-amino-3-phenylpropionic acid (APP) produced N-acetyl-APP (Ac-APP) in the presence of APP and acetyl coenzyme A. The APP obtained by acid hydrolysis of the Ac-APP was D-configuration: $[\alpha]_D+6.5^{\circ}(H_2O)\;at\;20^{\circ}C$, optical purity 92% enantiomeric excesses (ee). These results suggest that an N-acetyltransferase exists in the cell-free extract as a novel enzyme with specificity for D-APP.

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Functionalization of Isoflavones with Enzymes

  • Lee, Jae-Hwan;Doo, Eun-Hee;Kwon, Dae-Yong;Park, Jin-Byung
    • Food Science and Biotechnology
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    • v.17 no.2
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    • pp.228-233
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    • 2008
  • Considerable progress has been made in functionalization of the soy isoflavones through enzymatic modification of daidzin, genistin, and glycitin. After hydrolysis of $\beta$-glucosides into their corresponding aglycones, these compounds were structurally modified via biotransformations such as regioselective hydroxylation, enantioselective reduction, regioselective methylation, and polymerization. These reactions often resulted in an increase of the biological activities (e.g., anti oxidative activity, antiproliferative activity) and/or improvement of the physico-chemcial properties (e.g., water solubility, bioavailability). This review briefly summarizes on-going research activities on the biofunctionalization of the soy isoflavones.

광학활성 Styrene Oxide 제조를 위한 고기능성 유전자 재조합 Epoxide Hydrolase 생촉매 개발

  • Lee, Su-Jeong;Lee, Ji-Won;Lee, Eun-Jeong;Kim, Hui-Suk;Lee, Eun-Yeol
    • 한국생물공학회:학술대회논문집
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    • 2003.04a
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    • pp.435-438
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    • 2003
  • Epoxide hydrolase(EH) catalyze the enantioselective hydrolysis of racemic epoxides to corresponding diols. A recombinant Pichia pastoris with EH from Rhodotorula glutinis has been constructed by reverse transcriptase-polymerase chain reaction(RT-PCR). The recombinant biocatalyst enantioselectively hydrolyze (R)-styrene oxide faster than (S)-enantiomer. The catalytic activity of recombinant biocatalyst was 7-fold higher than that of wild-type strain. The recombinant EH biocatalyst can be used for kinetic resolution for the production of enantiopure styrene oxide.

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Cloning and Characterization of Zebrafish Microsomal Epoxide Hydrolase Based on Bioinformatics (생물정보학을 이용한 Zebrafish Microsomal Epoxide Hydrolase 클로닝 및 특성연구)

  • Lee Eun-Yeol;Kim Hee-Sook
    • Microbiology and Biotechnology Letters
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    • v.34 no.2
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    • pp.129-135
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    • 2006
  • A gene encoding for a putative microsomal epoxide hydrolase (mEH) of a zebrafish, Danio rerio, was cloned and characterized. The putative mEH protein of D. rerio exhibited sequence similarity with mammalian mEH and some other bacterial EHs. A structural model for the putative mEH was constructed using homology modeling based on the crystallographic templates, 1 qo7 and 1 ehy. The catalytic triad consisting of $Asp^{233}$, $Glu^{413}$, and $His^{440}$ was identified, and the characteristic features such as two tyrosine residues and oxyanion hole were found to be highly conserved. Based on bioinformatic analysis together with EH activity assay, the putative protein was annotated as mEH of D. rerio. Enantiopure styrene oxide with enantiopurity of 99%ee and yield of 33.5% was obtained from racemic styrene oxide by the enantioselective hydrolysis activity of recombinant mEH of D. rerio for 45 min.

Solvent-tolerant Lipases and Their Potential Uses (유기용매 내성 리파아제와 그 이용가능성)

  • Joo, Woo Hong
    • Journal of Life Science
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    • v.27 no.11
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    • pp.1381-1392
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    • 2017
  • This review described solvent-tolerant lipases and their potential industrial, biotechnological and environmental impacts. Although organic solvent-tolerant lipase was first reported in organic solvent-tolerant bacterium, many organic solvent-tolerant lipases are in not only solvent-tolerant bacteria but also solvent-intolerant bacterial and fungal strains, such as the well-known Bacillus, Pseudomonas, Streptomyces and Aspergillus strains. As these lipases are not easily inactivated in organic solvents, there is no need to immobilize them in order to prevent an enzyme inactivation by solvents. Therefore, the solvent-tolerant lipases have the potential to be used in many biotechnological and biotransformation processes. With the solvent-tolerant lipases, a large number insoluble substrates become soluble, various chemical reactions that are initially impossible in water systems become practical, synthesis reactions (instead of hydrolysis) are possible, side reactions caused by water are suppressed, and the possibility of chemoselective, regioselective and enantioselective transformations in solvent and non-aqueous systems is increased. Furthermore, the recovery and reuse of enzymes is possible without immobilization, and the stabilities of the lipases improve in solvent and non-aqueous systems. Therefore, lipases with organic-solvent tolerances have attracted much attention in regards to applying them as biocatalysts to biotransformation processes using solvent and non-aqueous systems.

Biocatalytic Production of Chiral Epoxides (생촉매를 이용한 광학활성 에폭사이드 생산)

  • 이은열;최원재;윤성준;김희숙;최차용
    • KSBB Journal
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    • v.14 no.3
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    • pp.291-296
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    • 1999
  • Chiral epoxides are key intermediates for the production of chiral pharmaceuticals, agrochemicals, and functional food additives. Chiral epoxides can be produced by either chemical or biological method. In biocatalytic production routes, chiral epoxides can be produced via epoxidations of prochiral alkenes by monooxygenase or peroxidase. Kinetic resolution of racemic epoxides using whole cells of bacteria or fungi might be commercially useful, since it is possible to obtain chiral epoxides with high optical purities from relatively cheap and readily avaiable racemic epoxides. Some bioprocesses already are commercially developed: the biocatalytic production of chiral epichlorohydrin via microbial stereospecific dehalogenation, and lipase-catalyzed enantioselective hydrolysis in a hollow fiber membrane bioreactor for the production of chiral methyl trans-3-(4-methoxyphenyl)glycidate. the intermediate for calcium antagonist diltiazem. The importance of biocatalytic production of chiral epoxides with several examples from literature are presented.

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Isolation of an Acinetobacter junii SY-01 Strain Producing an Extracellular Lipase Enantioselectively Hydrolyzing Itraconazole Precursor, and Some Properties of the Lipase

  • Yoon, Moon-Young;Shin, Pyong-Kyun;Han, Ye-Sun;Lee, So-Ha;Park, Jung-Keug;Cheong, Chan-Seong
    • Journal of Microbiology and Biotechnology
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    • v.14 no.1
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    • pp.97-104
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    • 2004
  • Water-sludge bacteria were screened to find a lipase enantioselectively hydrolyzing itraconazole precursor, which is well known as the starting material of antifungal drug agents. A bacterial strain was isolated and identified as Acinetobacter junii SY-01. After the strain was cultivated, the enzyme was purified 39.4-fold using ultrafiltration and gel filtration through a Sephadex G-100 chromatographic column and the activity yield was 34.9%. The molecular weight of the enzyme was about 40 kDa, as measured by SDS-PAGE, and the optimum pH was 7.0- 9.0 and stable at pH 6.0- 9.0. The optimum temperature was 45- $5^{\circ}C$, and 73% of the enzymes activity remained after incubation at 70% for 1 h. Enzyme activity was enhanced by gall powder, sodium deoxycholate, a cationic detergent Tween 80, and a non-ionic detergent Triton X-100, but was markedly inhibited by metal ions such as $Hg^{2+},Cu^{2+},Ni^{2+}/,Ca^{2+}$, and an anionic-surfactant sodium dodecylsulfate. The $K_{m}$ values for (R)- and (S)-enantiomers of the itraconazole precursor were 0.385 and 21.83 mM, respectively, and the $V_{max} values ($\mu$Mㆍmin^{-1}.)$ were 6.73 and 6.49, respectively. The acetyl group among the different acyl moieties of itraconazole precursor showed the highest enantioselectivity for the hydrolysis by the Acinetobacter junii SY-01 lipase, and the lipase from Acinetobacter junii SY-01 displayed better enantioselectivity than that of commercially available lipases and esterases.