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Metabolic Engineering of Saccharomyces cerevisiae for the Production of 2-Phenylethanol : 2-페닐에탄올 생산량 증대를 위한 대사공학 기반의 효모 균주 개발

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dc.contributor.advisor한지숙-
dc.contributor.author김보수-
dc.date.accessioned2017-07-17T08:43:04Z-
dc.date.available2017-07-17T08:43:04Z-
dc.date.issued2013-02-
dc.identifier.other000000009625-
dc.identifier.urihttps://hdl.handle.net/10371/127053-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 화학생물공학부, 2013. 2. 한지숙.-
dc.description.abstract2-Phenylethanol (2-PE), a fragrance compound with rose-like odor, has been widely used in the perfumery, cosmetics, and food industry. So far, 2-PE-producing yeast strains have been developed based on the screening of natural or mutagenized strains. In this study, we report the first metabolic engineering approach for 2-PE production in Saccharomyces cerevisiae. In yeast, 2-PE can be produced from L-phenylalanine (L-Phe) degradation via Ehrlich pathway, which consists of 3 steps involving transamination to phenylpyruvate, decarboxylation to phenylacetealdehyde, and finally reduction to 2-PE. Aro9 and Aro10 act as transaminase and decarboxylase, respectively, in the degradation of aromatic amino acids. Phenylacetealdehyde can also be oxidized to phenylacetate, competing with 2-PE production. We demonstrated that Ald3 aldehyde dehydrogenase is mainly responsible for the phenylacetealdehyde oxidation, with Ald2 playing a minor role. To enhance 2-PE production, we deleted ALD3 gene and increased expression levels of ARO9 and ARO10, both by episomal overexpression and induction of the endogenous genes by overexpression of Aro80 transcription factor involved in the activation of ARO9 and ARO10 in response to the aromatic amino acids availability. The resulting strain produced 4.7 g/L 2-PE in a medium containing 10 g/L L-Phe as a sole nitrogen source. Considering the cytotoxicity of 2-PE, this production titer is almost the upper limit that can be reached in batch cultures, suggesting the great potential of this yeast strains for 2-PE production.-
dc.description.tableofcontentsContents

Abstract ⅲ
Chapter 1. 서 론 1
1.1. 개 요 1
1.1.1. 고급 알코올로써의 2-phenylethanol 1
1.1.2. 2-phenylethanmol의 구조 및 특성 2
1.1.3. 현재까지 연구 동향 4
1.1.4. Saccharomyces cerevisiae에서 2-phenylethanol의 생산 경로 7
1.2. 연구 목적 9
Chapter 2. 재료 및 방법 10
2.1. 사용된 균주 10
2.2. 플라스미드 10
2.3. 배양 조건 13
2.4. Realtime PCR 13
2.5. 시료 채취 및 2-phenylethanol의 검출 13
Chapter 3. 결과 및 토의 15
3.1. 경쟁 경로 제거가 2-phenylethanol 생산에 미치는 영향 15
3.2. 반응효소와 전사조절 인자 과 발현이 2-phenylethanol 생산에 미치는 영향 17
3.2.1. 전자조절 인자 (Aro80) 과 발현 17
3.2.2. Aro9, Aro10의 직접 과 발현 19
3.2.3 Aro9, Aro10, Aro80를 플라스미드로 과 발현 했을 때 각 유전자의 발현 정도 21
3.3. 경쟁경로 제거와 효소 과 발현의 합동 효과 23
3.3.1 2-phenylethanol 합성 량 변화 23
3.3.2. Phenylacetate 합성 량 변화 25
3.4. 발효 배지의 최적화 27
Chapter 4. 결론 및 고찰 31
References 32
국문요약 35

List of Tables

Table 1. Overview of 2-PE production by medium composition or culture condition. 5
Table 2. Overview of methods of 2-PE production by ISPR technique. . 6
Table 3. Plasmids used in this study. 11
Table 4. Primers used in this study. 12

List of Figures
Figure 1. Structure of 2-phenylethnol. 3
Figure 2. Ehrlich pathway for 2-phenylethanol production .... 8
Figure 3. 2-Phenylethanol production in YPD media. 17
Figure 4. 2-Phenylethanol production in SC-Trp media 19
Figure 5. 2-Phenylethanol production in SC-Leu-Ura media 21
Figure 6. Expression level of ARO9, ARO10 and ARO80 23
Figure 7. 2-Phenylethanol production in SC-Trp-Leu-Ura media 25
Figure 8. 2-Phenylethanol and phenylacetate production 27
Figure 9. 2-Phenylethanol production in phenylalanine media 29
Figure 10. 2-Phenylethanol production by subculture 31
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dc.formatapplication/pdf-
dc.format.extent732515 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoko-
dc.publisher서울대학교 대학원-
dc.subjectMetabolic Engineering-
dc.subject2-Phenylethanol-
dc.subjectEhrlich pathway-
dc.subjectyeast-
dc.subject.ddc660-
dc.titleMetabolic Engineering of Saccharomyces cerevisiae for the Production of 2-Phenylethanol-
dc.title.alternative2-페닐에탄올 생산량 증대를 위한 대사공학 기반의 효모 균주 개발-
dc.typeThesis-
dc.contributor.AlternativeAuthorBosu Kim-
dc.description.degreeMaster-
dc.citation.pages35-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2013-02-
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