Development of recombinantPseudomonas putida containing homologous styrene monooxygenase genes for the production of (S)-styrene oxide

被引:0
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作者
Jong Wan Bae
Ju Hee Han
Mi So Park
Sun-Gu Lee
Eun Yeol Lee
Yong Joo Jeong
Sunghoon Park
机构
[1] Pusan National University,Department of Chemical and Biochemical Engineering
[2] Pusan National University,Institute for Environmental Technology and Industry
[3] Kyungsung University,Department of Food Science and Technology
[4] Kook Min University,Division of Nano Science
关键词
styrene monooxygenase; (; )-styrene oxide; whole-cell biocatalyst; SN1; -deleted mutant; self-cloning;
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摘要
Recently isolated,Pseudomonas putida SN1 grows on styrene as its sole carbon and energy source through successive oxidation of styrene by styrene monooxygenase (SMO), styrene oxide isomerase (SOI), and phenylacetaldehyde dehydrogenase. For the production of (S)-styrene oxide, two knockout mutants of SN1 were constructed, one lacking SOI and another lacking both SMO and SOI. These mutants were developed into whole-cell biocatalysts by transformation with a multicopy plasmid vector containing SMO genes (styAB) of the SN1. Neither of these self-cloned recombinants could grow on styrene, but both converted styrene into an enantiopure (S)-styrene oxide (e.e.>99%). Whole-cell SMO activity was higher in the recombinant constructed from the SOI-deleted mutant (130 U/g cdw) than in the other one (35 U/g cdw). However, the SMO activity of the former was about the same as that of the SOI-deleted SN1 possessing a single copy of thestyAB gene that was used as host. This indicates that the copy number ofstyAB genes is not rate-limiting on SMO catalysis by whole-cell SN1.
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页码:530 / 537
页数:7
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