Synthesis of 3-tert-butylcatechol by an engineered monooxygenase

被引:26
作者
Meyer, A
Held, M
Schmid, A
Kohler, HPE
Witholt, B [1 ]
机构
[1] ETH Honggerberg, Swiss Fed Inst Technol, Inst Biotechnol, HPT, CH-8093 Zurich, Switzerland
[2] Swiss Fed Inst Environm Sci & Technol, EAWAG, CH-8600 Dubendorf, Switzerland
关键词
engineered monooxygenase; in situ product removal; 2-hydroxybiphenyl 3-monooxygenase (EC 1.14.13.44); 3-tert-butylcatechol;
D O I
10.1002/bit.10487
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Recombinant Escherichia coli JM101 was used for the in vivo biocatalytic synthesis of 3-tert-butylcatechol. The bacterial strain synthesized the laboratory-evolved variant HbpA(T2) of 2-hydroxybiphenyl 3-mono-oxygenase (HbpA, EC 1.14.13.44) from Pseudomonas azelaica HBP1. The mutant enzyme HbpA(T2) is able to hydroxylate 2-tert-butylphenol to the corresponding catechol, a reaction that is not catalyzed by the wild-type enzyme. The biotransformation was performed in a 3-L bioreactor for 24 h. To mitigate the toxicity of the 2-tert-butylphenol starting material, we applied a limited substrate feed. Continuous in situ product removal with the hydrophobic resin Amberlite(TM) XAD-4 was used to separate the product from culture broth. In addition, binding to the resin stabilized the product, which was important because 3-tert-butylcatechol is very labile in aqueous solution. The productivity of the process was 63 mg L-1 h(-1) so that after 24 h, 3.0 g of 3-tert-butylcatechol were isolated. Down-stream processing consisted of two steps. First, bound 2-tert-butylphenol and 3-tert-butylcatechol were eluted from Amberlite(TM) XAD-4 with methanol. Second, the two compounds were separated over neutral aluminum oxide, which selectively binds the produced catechol but not the phenol substrate. The final purity of 3-tert-butylcatechol was greater than 98%. (C) 2003 Wiley Periodicals, Inc.
引用
收藏
页码:518 / 524
页数:7
相关论文
共 35 条
[1]   ANTI-MICROBIAL ACTIVITY OF NON-HALOGENATED PHENOLIC-COMPOUNDS [J].
DAVIDSON, PM ;
BRANDEN, AL .
JOURNAL OF FOOD PROTECTION, 1981, 44 (08) :623-&
[2]   Using proteins in their natural environment: potential and limitations of microbial whole-cell hydroxylations in applied biocatalysis [J].
Duetz, WA ;
van Beilen, JB ;
Witholt, B .
CURRENT OPINION IN BIOTECHNOLOGY, 2001, 12 (04) :419-425
[3]   SELECTIVE ALTERATION OF SUBSTRATE-SPECIFICITY BY REPLACEMENT OF ASPARTIC ACID-189 WITH LYSINE IN THE BINDING POCKET OF TRYPSIN [J].
GRAF, L ;
CRAIK, CS ;
PATTHY, A ;
ROCZNIAK, S ;
FLETTERICK, RJ ;
RUTTER, WJ .
BIOCHEMISTRY, 1987, 26 (09) :2616-2623
[4]  
Held M, 1999, BIOTECHNOL BIOENG, V62, P641, DOI 10.1002/(SICI)1097-0290(19990320)62:6<641::AID-BIT3>3.0.CO
[5]  
2-H
[6]   Preparative scale production of 3-substituted catechols using a novel monooxygenase from Pseudomonas azelaica HBP 1 [J].
Held, M ;
Suske, W ;
Schmid, A ;
Engesser, KH ;
Kohler, HPE ;
Witholt, B ;
Wubbolts, MG .
JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, 1998, 5 (1-4) :87-93
[7]  
HELD M, 2000, THESIS ETH ZURICH ZU
[8]  
Hollmann F, 2001, ANGEW CHEM INT EDIT, V40, P169, DOI 10.1002/1521-3773(20010105)40:1<169::AID-ANIE169>3.0.CO
[9]  
2-T
[10]   PRODUCTION OF SUBSTITUTED CATECHOLS FROM SUBSTITUTED BENZENES BY A PSEUDOMONAS SP [J].
JOHNSTON, JB ;
RENGANATHAN, V .
ENZYME AND MICROBIAL TECHNOLOGY, 1987, 9 (12) :706-708