• Title/Summary/Keyword: enantioselective hydrolysis

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Biocatalytic Preparation of Chiral Epichlorohydrins Using Recombinant Pichia pastoris Expressing Epoxide Hydrolase of Rhodotorula glutinis

  • Kim, Hee-Sook;Lee, Jae-Hwa;Park, Sunghoon;Lee, Eun-Yeol
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.9 no.1
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    • pp.62-64
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    • 2004
  • The use of enantioselective hydrolysis for preparing chiral epichlorohydrins was investigated using recombinant Pichia pastoris with the enantioselective epoxide hydrolase of Rhodotorula glutinis. The rate of the recombinant epoxide hydrolase-catalyzed enantioselective hydrolysis of racemic epichlorohydrins was enhanced by the addition of 5%(v/v) Tween 20. Enantiopure (R)-epichlorohydrins with an enantiopurity of 100% ee and a yield of 26% were obtained within 5min from 50mM racemates.

Production of Chiral Epoxides: Epoxide Hydrolase-catalyzed Enantioselective Hydrolysis

  • Choi, Won-Jae;Choi, Cha-Yong
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.10 no.3
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    • pp.167-179
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    • 2005
  • Chiral epoxides are highly valuable intermediates, used for the synthesis of pharmaceutical drugs and agrochemicals. They have broad scope of market demand because of their applications. A major challenge in modern organic chemistry is to generate such compounds in high yields, with high stereo- and regio-selectivities. Epoxide hydrolases (EH) are promising biocatalysts for the preparation of chiral epoxides and vicinal diols. They exhibit high enantioselectivity for their substrates, and can be effectively used in the resolution of racemic epoxides through enantioselective hydrolysis. The selective hydrolysis of a racemic epoxide can produce both the corresponding diols and the unreacted epoxides with high enantiomeric excess (ee) value. The potential of microbial EH to produce chiral epoxides and vicinal diol has prompted researchers to explore their use in the synthesis of epoxides and diols with high ee values.

Enantioselective Hydrolysis of Racemic Styrene Oxide by Epoxide Hydrolase of Rhodosporidium kratochvilovae SYU-08

  • Lee, Ji-Won;Lee, Eun-Jung;Yoo, Seung-Sik;Park, Sung-Hoon;Kim, Hee-Sook;Lee, Eun-Yeol
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.8 no.5
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    • pp.306-308
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    • 2003
  • Enantioselective hydrolysis for the production of chiral styrene oxide was investigated using the epoxide hydrolase activity of a newly isolated Rhodosporidium kratochvilovae SYU-08. The effects of reaction parameters - buffer type, pH, temperature, initial substrate concentrations, phenyl-1,2-ethanediol concentrations on hydrolysis rate, and enantioselectivity - were analyzed. Optically active (S)-styrene oxide with an enantiomeric excess higher than 99 % was obtained from its racemate. with a yield of 38 % (theoretically 50% maximum yield) from an initial concentration of 80 mM.

Lipase Catalyzed Kinetic Resolution of rac-2-(3-Methoxy-4-methylphenyl) propan-1-ol and rac-2-(3-Hydroxy-4-methylphenyl)propyl propanoate for S-(+)-Xanthorrhizol

  • Shafioul, Azam Sharif Mohammed;Cheong, Chan-Seong
    • Bulletin of the Korean Chemical Society
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    • v.33 no.2
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    • pp.409-414
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    • 2012
  • Xanthorrhizol is a bisabolane type of natural sesquiterpene, the major component of essential oils of Curcuma xanthorrhiza. 2-(3-Methoxy-4-methylphenyl)propan-1-ol and 2-(3-hydroxy-4-methyl phenyl)propan-1-ol could be essential building block for enantioselective synthesis of xanthorrhizol. Enantioselective (c = 53%, E = $80{\pm}3$) for R-(+)-2-(3-hydroxy-4-methylphenyl) propan-1-ol and (c = 58%, E = $27{\pm}1$) for R-(+)-2-(3-methoxy-4-methylphenyl) propan-1-ol resolution processes were developed via lipase-catalyzed reaction. We found lipase Aspergillus oryzae (AOL) and Porcine pancreas (PPL) are selective to transesterification and hydrolysis in organic and aqueous phase. Modified demethylated substrate is appropriate for enantioselective hydrolysis reaction without any additives. Enantiopure chiral alcohol was crystallized from ethyl acetate/n-hexane co-solvent system. Gram scale resolved chiral intermediate will facilitate the synthesis of the unnatural S-(+)-xanthorrhizol, the corresponding isomer of the natural one.

Optimization of Epoxide Hydrolase-Catalyzed Enantioselective Hydrolysis of Racemic Styrene Oxide (Rhodotorula sp. CL-83 유래의 에폭사이드 가수분해효소를 이용한 라세믹 Styrene Oxide 입체특이성 가수분해 조건 최적화)

  • 이은열
    • Journal of Life Science
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    • v.12 no.6
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    • pp.765-768
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    • 2002
  • Enantioselective hydrolysis of racemic styrene oxide by Rhodotorula sp. CL-82 was investigated. Reaction conditions including pH, temperature, and volume ratio of organic cosolvent were optimized using response surface methodology, and the optimal conditions of pH, temperature, and the volume ratio of cosolvent were determined to be 7.64, $33.26^{\circ}C$, and 3.09 %(v/v), respectively. Chiral (S)-phenyl oxirane could be obtained with high enantiomeric purity (ee > 99%) and 20% yield (theoretical yield = 50%) at the optimal rendition.

Batch Production of Chiral Epichlorohydrin by Enantioselective Hydrolysis Reaction using Rhodosporidium toruloides (Phodosporidium toruloides의 광학선택적 가수분해활성을 이용한 Chiral Epichlorohydrin의 회분식 생산)

  • 이은열;이재화
    • KSBB Journal
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    • v.19 no.1
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    • pp.38-41
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    • 2004
  • Enantioselective hydrolysis for the producing chiral epichlorohydrin from its racemic substrate was investigated using epoxide hydrolase activity of Rhodosporidium toruloides SJ-4. The effects of reaction parameters including pH, temperature, initial substrate concentration on initial hydrolysis rate and enantioselectivity were analyzed and optimized. The addition of detergent, Tween 20, enhanced the hydrolysis rate and enantioselectivity. Chiral (R)-epichlorohydrin with high optical purity (>99% ee) and yield of 25% (theoretically 50% maximum yield) was obtained from its racemate of 20 mM.

Production of Chiral Styrene Oxide by Microbial Enantioselective Hydrolysis Reaction (미생물 입체선택성 가수분해 반응을 이용한 광학활성 Styrene Oxide 생산)

  • 윤성준;이은열
    • KSBB Journal
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    • v.15 no.6
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    • pp.630-634
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    • 2000
  • Chiral epoxides are useful chiral synthons in organic synthesis, and various biological methods have been investigated for their production. In this work, the enantioselective resolution of racemic styrene oxide was investigated using Aspergillus niger sp. for the production of optically pure (S)-styrene oxide. The enantioselectivity and initial hydrolysis rates of the racemic substrate were highly dependent of the pH, temperature, and the volume ratio of cosolvent. Experimental sets of pH, temperature, and the volume ratio of cosolvent were investigated using a central composite experimental design, and reaction conditions were optimized by response surface analysis. The optimal conditions of pH, temperature, and the volume ratio of cosolvent were determined to be 7.78, $28.32^{\circ}C$, and 2.4%(v/v), respectively, and optically pure (S)-styrene oxide (>99% ee) was obtained at 35% yield using this microbial enantioselective hydrolysis reaction.

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Enantioselective Hydrolysis of (R,S)-Naproxen Methyl Ester Using Two-step Acetone-treated Candida rugosa Lipase (2단계 아세톤 침전법으로부터 얻어진 Candida rugosa Lipase를 이용한 (R,S)-Naproxen Ester의 광학선택성 수화반응)

  • 이은교;최순자;정봉현
    • Microbiology and Biotechnology Letters
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    • v.28 no.4
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    • pp.223-227
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    • 2000
  • A novel two-step acetone treatment method was developed to enhance the enantioselectivity of Candida rugosa lipase (CRL) toward the hydrolysis of racemic naproxen methyl ester. The acetone-teated CRL was considerably more enantioselective than the crude CRL, yielding an enantiomeric excess of 98~100%. The crude and acetone-treated CRLs were subjected to anion exchange chromatography, and their chromatography profiles were compared. In consequence, both chromatography profiles were found to be almost identical, resulting in two separate lipase peaks (lipase A and B). The lipase B, which is known to be less enantioselective, was treated with acetone using a two-step treatment method. The enantioselectivity of acetone-treated lipase B was dramatically increased, yielding an enantiomeric excess of 99%.

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Enhanced Heterologous Expression of Aspergillus niger Epoxide Hydrolase and Its Application to Enantioselective Hydrolysis of Racemic Epoxides (Aspergillus niger의 Epoxide Hydrolase 고효율 발현 및 라세믹 에폭사이드의 입체선택적 가수분해)

  • Lee, Soo Jung;Kim, Hee Sook;Lee, Eun Yeol
    • Applied Chemistry for Engineering
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    • v.17 no.5
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    • pp.557-560
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    • 2006
  • The epoxide hydrolase (EH) of Aspergillus niger LK was expressed to high levels in Escherichia coli based on codon usage. E. coli, Rosetta (DE3)PLysS, containing a large number of tRNAs for rare-codons was employed as a host strain. The recombinant E. coli expressing A. niger EH showed an enhanced enantioselective hydrolysis activity toward racemic styrene oxide. Enantiopure (S)-styrene oxide with a high enantiopurity of 99% ee was obtained from racemic substrates.

Enantioselective Hydrolysis for the Precursor of Azole-containing Compounds using Acinetobacter sp. SY-01 Lipase and Increase of Enantioselectivity by the Removal of Reaction Products (Acinetobacter sp. SY-01 Lipase를 이용한 아졸계 화합물 전구체에 대한 광학선택적 가수분해 반응과 생성물 제거에 의한 광학선택성 증가)

  • 윤문영;신평균;정찬성;박정극
    • KSBB Journal
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    • v.18 no.1
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    • pp.1-7
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    • 2003
  • Screening of a strain was carried out to produce an enantioselective lipase toward the precursor of ltraconazole as azole-containg compounds, which are well known as antifungal drug agents. An Acinetobacter sp. SY-01 strain which can selectively hydrolyze the racemic substrates was isolated and the racemic substrate was resolved to the S-ester in 95.6% enantiomeric excess after 74.8% hydrolysis. The optimum temperature and pH for the conversion were $50^{\circ}C$, pH 7.0. However, the temperature and pH had no effect on the enantiomeric excess. Addition of solvents decreased the conversion and slightly increased the enantiomeric excess. However, the kind of solvents had no effect on enantiomeric excess. The substrate concentration decrease enantiomeric excess and this is confirmed by the products generated from hydrolysis, and also enantiomeric excess could be increased by the removal of reaction products.