Your browser doesn't support javascript.
loading
Engineering a Carbonyl Reductase for Scalable Preparation of (S)-3-Cyclopentyl-3-hydroxypropanenitrile, the Key Building Block of Ruxolitinib.
Cui, Yunfeng; Zhu, Liangyan; Chen, Xi; Feng, Jinhui; Wu, Qiaqing; Zhu, Dunming.
Affiliation
  • Cui Y; Institution National Engineering Laboratory for Industrial Enzymes and, Tianjin Engineering Research Center of Biocatalytic Technology, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, 32 West 7th Avenue, Tianjin Airport Economic Area, Tianjin, 300308, China.
  • Zhu L; Institution National Engineering Laboratory for Industrial Enzymes and, Tianjin Engineering Research Center of Biocatalytic Technology, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, 32 West 7th Avenue, Tianjin Airport Economic Area, Tianjin, 300308, China.
  • Chen X; University of Chinese Academy of Sciences, Beijing, 100049, China.
  • Feng J; Institution National Engineering Laboratory for Industrial Enzymes and, Tianjin Engineering Research Center of Biocatalytic Technology, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, 32 West 7th Avenue, Tianjin Airport Economic Area, Tianjin, 300308, China.
  • Wu Q; University of Chinese Academy of Sciences, Beijing, 100049, China.
  • Zhu D; Institution National Engineering Laboratory for Industrial Enzymes and, Tianjin Engineering Research Center of Biocatalytic Technology, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, 32 West 7th Avenue, Tianjin Airport Economic Area, Tianjin, 300308, China.
Chembiochem ; 23(5): e202100589, 2022 03 04.
Article in En | MEDLINE | ID: mdl-34951083
(S)-3-Cyclopentyl-3-hydroxypropanenitrile is the key precursor for the synthesis of ruxolitinib. The bioreduction of 3-cyclopentyl-3-ketopropanenitrile (1 a) offers an attractive method to access this important compound. A carbonyl reductase (PhADH) from Paraburkholderia hospita catalyzed the reduction of 1 a giving the (S)-alcohol (1 b) with 85 % ee. Rational engineering of PhADH resulted in a double mutant H93C/A139L, which enhanced the enantioselectivity from 85 % to >98 %, as well as a 6.3-fold improvement in the specific activity. The bioreduction of 1 a was performed at 200 g/L (1.5 M) substrate concentration, leading to isolation of (S)-1 b in 91 % yield. Similarly, using this mutant enzyme, 3-cyclohexyl-3-ketopropanenitrile (2 a) and 3-phenyl-3-ketopropanenitrile (3 a) were reduced at high concentration affording the corresponding alcohols in >99 % ee, and 90 % and 92 % yield, respectively. The results showed that the variant H93C/A139L was a powerful biocatalyst for reduction of ß-substituted-ß-ketonitriles.
Subject(s)
Key words

Full text: 1 Database: MEDLINE Main subject: Alcohol Oxidoreductases / Nitriles Language: En Journal: Chembiochem Journal subject: BIOQUIMICA Year: 2022 Type: Article Affiliation country: China

Full text: 1 Database: MEDLINE Main subject: Alcohol Oxidoreductases / Nitriles Language: En Journal: Chembiochem Journal subject: BIOQUIMICA Year: 2022 Type: Article Affiliation country: China