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https://hdl.handle.net/20.500.14094/0100490268
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2025-05-28
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0100490268 (fulltext)
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メタデータID
0100490268
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open access
出版タイプ
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タイトル
Integrated pathway mining and selection of an artificial CYP79-mediated bypass to improve benzylisoquinoline alkaloid biosynthesis
著者
Takenaka, Musashi ; Kamasaka, Kouhei ; Daryong, Kim ; Tsuchikane, Keiko ; Miyazawa, Seiha ; Fujihana, Saeko ; Hori, Yoshimi ; Vavricka, Christopher J. ; Hosoyama, Akira ; Kawasaki, Hiroko ; Shirai, Tomokazu ; Araki, Michihiro ; Nakagawa, Akira ; Minami, Hiromichi ; Kondo, Akihiko ; Hasunuma, Tomohisa
著者ID
A2136
研究者ID
1000070810365
著者名
Takenaka, Musashi
竹中, 武藏
タケナカ, ムサシ
所属機関名
科学技術イノベーション研究科
著者ID
A3471
KUID
https://kuid-rm-web.ofc.kobe-u.ac.jp/search/detail.html?systemId=b8f3efa5869a9684520e17560c007669
著者名
Kamasaka, Kouhei
釜阪, 紘平
カマサカ, コウヘイ
所属機関名
科学技術イノベーション研究科
著者名
Daryong, Kim
著者名
Tsuchikane, Keiko
著者名
Miyazawa, Seiha
著者名
Fujihana, Saeko
著者ID
A3315
研究者ID
1000010970569
KUID
https://kuid-rm-web.ofc.kobe-u.ac.jp/search/detail.html?systemId=f7a67b2d5770e677520e17560c007669
著者名
Hori, Yoshimi
堀, 良美
ホリ, ヨシミ
所属機関名
先端バイオ工学研究センター
著者名
Vavricka, Christopher J.
著者名
Hosoyama, Akira
著者名
Kawasaki, Hiroko
著者名
Shirai, Tomokazu
著者ID
A0291
研究者ID
1000040396867
著者名
Araki, Michihiro
荒木, 通啓
アラキ, ミチヒロ
所属機関名
科学技術イノベーション研究科
著者名
Nakagawa, Akira
著者名
Minami, Hiromichi
著者ID
A1715
研究者ID
1000040205547
KUID
https://kuid-rm-web.ofc.kobe-u.ac.jp/search/detail.html?systemId=a324eb4a1b052e53520e17560c007669
著者名
Kondo, Akihiko
近藤, 昭彦
コンドウ, アキヒコ
所属機関名
科学技術イノベーション研究科
著者ID
A0960
研究者ID
1000020529606
KUID
https://kuid-rm-web.ofc.kobe-u.ac.jp/search/detail.html?systemId=73b63639d47d0a4b520e17560c007669
著者名
Hasunuma, Tomohisa
蓮沼, 誠久
ハスヌマ, トモヒサ
所属機関名
先端バイオ工学研究センター
言語
English (英語)
収録物名
Microbial Cell Factories
巻(号)
23(1)
ページ
178
出版者
BMC
刊行日
2024-06-15
公開日
2024-06-26
抄録
Background: Computational mining of useful enzymes and biosynthesis pathways is a powerful strategy for metabolic engineering. Through systematic exploration of all conceivable combinations of enzyme reactions, including both known compounds and those inferred from the chemical structures of established reactions, we can uncover previously undiscovered enzymatic processes. The application of the novel alternative pathways enables us to improve microbial bioproduction by bypassing or reinforcing metabolic bottlenecks. Benzylisoquinoline alkaloids (BIAs) are a diverse group of plant-derived compounds with important pharmaceutical properties. BIA biosynthesis has developed into a prime example of metabolic engineering and microbial bioproduction. The early bottleneck of BIA production in Escherichia coli consists of 3,4-dihydroxyphenylacetaldehyde (DHPAA) production and conversion to tetrahydropapaveroline (THP). Previous studies have selected monoamine oxidase (MAO) and DHPAA synthase (DHPAAS) to produce DHPAA from dopamine and oxygen; however, both of these enzymes produce toxic hydrogen peroxide as a byproduct. Results: In the current study, in silico pathway design is applied to relieve the bottleneck of DHPAA production in the synthetic BIA pathway. Specifically, the cytochrome P450 enzyme, tyrosine N-monooxygenase (CYP79), is identified to bypass the established MAO- and DHPAAS-mediated pathways in an alternative arylacetaldoxime route to DHPAA with a peroxide-independent mechanism. The application of this pathway is proposed to result in less formation of toxic byproducts, leading to improved production of reticuline (up to 60 mg/L at the flask scale) when compared with that from the conventional MAO pathway. Conclusions: This study showed improved reticuline production using the bypass pathway predicted by the M-path computational platform. Reticuline production in E. coli exceeded that of the conventional MAO-mediated pathway. The study provides a clear example of the integration of pathway mining and enzyme design in creating artificial metabolic pathways and suggests further potential applications of this strategy in metabolic engineering.
キーワード
Computational enzyme mining
Artificial metabolic pathway
Benzylisoquinoline alkaloid production
Cytochrome P450
Tyrosine N-monooxygenase
3,4-dihydroxyphenylacetaldoxime
カテゴリ
科学技術イノベーション研究科
先端バイオ工学研究センター
学術雑誌論文
権利
© The Author(s) 2024.
This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder.
関連情報
DOI
https://doi.org/10.1186/s12934-024-02453-7
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資源タイプ
journal article
eISSN
1475-2859
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