Rational design and screening system development of decarboxylases for production of amine compounds아민 화합물 생산을 위한 디카복실레이즈 효소의 합리적 설계 및 스크리닝 시스템 개발

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dc.contributor.advisorKim, Hak-Sung-
dc.contributor.advisor김학성-
dc.contributor.authorChoi, Hyang-
dc.contributor.author최향-
dc.date.accessioned2015-04-23T02:08:52Z-
dc.date.available2015-04-23T02:08:52Z-
dc.date.issued2014-
dc.identifier.urihttp://library.kaist.ac.kr/search/detail/view.do?bibCtrlNo=591768&flag=dissertation-
dc.identifier.urihttp://hdl.handle.net/10203/196238-
dc.description학위논문(박사) - 한국과학기술원 : 생명과학과, 2014.8, [ vi, 77 p. ]-
dc.description.abstractPutrescine finds wide industrial applications in the synthesis of polymers, pharmaceuticals, agrochemicals, and surfactants. Owing to economic and environmental concerns, the microbial production of putrescine has attracted a great deal of attention, and ornithine decarboxylase (ODC) is known to be a key enzyme in the biosynthetic pathway. Herein, we present the design of ODC from Escherichia coli with high catalytic efficiency using a structure-based rational approach. Through a substrate docking into the model structure of the enzyme, we first selected residues that might lead to an increase in catalytic activity. Of the selected residues that are located in the α-helix and the loops constituting the substrate entry site, a mutational analysis of the single mutants identified two key residues, I163 and E165. A combination of two single mutations resulted in a 62.5-fold increase in the catalytic efficiency when compared with the wild-type enzyme. Molecular dynamics simulations of the best mutant revealed that the substrate entry site becomes more flexible through mutations, while stabilizing the formation of the dimeric interface of the enzyme. Our approach can be applied to the design of other decarboxylases with high catalytic efficiency for the production of various chemicals through bio-based processes. Combining directed evolution with rational design has proven to be synergistic in optimization and enhancement of enzyme activity. Accuracy and efficiency of screening system is of great demand in directed evolution. In this aspect, genetic circuit system is suitable because it provides high accuracy and efficiency by reduced false positive through tight regulation and simple detection method. For this reason, we devised the genetic circuit system for ODC library screening. Analyzing putrescine-inducible genes, we designed vectors containing putrescine-inducible promoters fused with a reporter gene (EGFP). The constructs were transformed in putrescine-de...eng
dc.languageeng-
dc.publisher한국과학기술원-
dc.subjectOrnithine decarboxylase-
dc.subject퓨트레신에 의해 유도되는 시스템-
dc.subject라이브러리 스크리닝-
dc.subject유전적 회로-
dc.subject오르니틴-
dc.subject퓨트레신-
dc.subjectRational design-
dc.subjectPutrescine-
dc.subjectL-Ornithine-
dc.subjectGenetic circuit-
dc.subjectLibrary screening-
dc.subjectPutrescine-inducible systems-
dc.subject오르니틴 디카복실레이즈-
dc.subject합리적 설계-
dc.titleRational design and screening system development of decarboxylases for production of amine compounds-
dc.title.alternative아민 화합물 생산을 위한 디카복실레이즈 효소의 합리적 설계 및 스크리닝 시스템 개발-
dc.typeThesis(Ph.D)-
dc.identifier.CNRN591768/325007 -
dc.description.department한국과학기술원 : 생명과학과, -
dc.identifier.uid020115302-
dc.contributor.localauthorKim, Hak-Sung-
dc.contributor.localauthor김학성-
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