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Biosynthesis of trialkyl-substituted aromatic polyketide NFAT-133 involves unusual P450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase

The bacterial trialkyl-substituted aromatic polyketides are structurally featured with the unusual aromatic core in the middle of polyketide chain such as TM-123 (1), veramycin A (2), NFAT-133 (3) and benwamycin I (4), which were discovered from Streptomyces species and demonstrated with antidiabeti...

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Autores principales: Yang, Ming, Li, Wanlu, Zhou, Lin, Lin, Xiao, Zhang, Wenyu, Shen, Yaoyao, Deng, Hai, Lin, Hou-wen, Zhou, Yongjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10265476/
https://www.ncbi.nlm.nih.gov/pubmed/37325182
http://dx.doi.org/10.1016/j.synbio.2023.05.003
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author Yang, Ming
Li, Wanlu
Zhou, Lin
Lin, Xiao
Zhang, Wenyu
Shen, Yaoyao
Deng, Hai
Lin, Hou-wen
Zhou, Yongjun
author_facet Yang, Ming
Li, Wanlu
Zhou, Lin
Lin, Xiao
Zhang, Wenyu
Shen, Yaoyao
Deng, Hai
Lin, Hou-wen
Zhou, Yongjun
author_sort Yang, Ming
collection PubMed
description The bacterial trialkyl-substituted aromatic polyketides are structurally featured with the unusual aromatic core in the middle of polyketide chain such as TM-123 (1), veramycin A (2), NFAT-133 (3) and benwamycin I (4), which were discovered from Streptomyces species and demonstrated with antidiabetic and immunosuppressant activities. Though the biosynthetic pathway of 1−3 was reported as a type I polyketide synthase (PKS), the PKS assembly line was interpreted inconsistently, and it remains a mystery how the compound 3 was generated. Herein, the PKS assembly logic of 1−4 was revised by site-mutagenetic analysis of the PKS dehydratase domains. Based on gene deletion and complementation, the putative P450 monooxygenase nftE(1) and metallo-beta-lactamase (MBL) fold hydrolase nftF(1) were verified as essential genes for the biosynthesis of 1−4. The absence of nftE(1) led to abolishment of 1−4 and accumulation of new products (5−8). Structural elucidation reveals 5−8 as the non-aromatic analogs of 1, suggesting the NftE(1)-catalyzed aromatic core formation. Deletion of nftF(1) resulted in disappearance of 3 and 4 with the compounds 1 and 2 unaffected. As a rare MBL-fold hydrolase from type I PKSs, NftF(1) potentially generates the compound 3 through two strategies: catalyze premature chain-offloading as a trans-acting thioesterase or hydrolyze the lactone-bond of compound 1 as an esterase.
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spelling pubmed-102654762023-06-15 Biosynthesis of trialkyl-substituted aromatic polyketide NFAT-133 involves unusual P450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase Yang, Ming Li, Wanlu Zhou, Lin Lin, Xiao Zhang, Wenyu Shen, Yaoyao Deng, Hai Lin, Hou-wen Zhou, Yongjun Synth Syst Biotechnol Article The bacterial trialkyl-substituted aromatic polyketides are structurally featured with the unusual aromatic core in the middle of polyketide chain such as TM-123 (1), veramycin A (2), NFAT-133 (3) and benwamycin I (4), which were discovered from Streptomyces species and demonstrated with antidiabetic and immunosuppressant activities. Though the biosynthetic pathway of 1−3 was reported as a type I polyketide synthase (PKS), the PKS assembly line was interpreted inconsistently, and it remains a mystery how the compound 3 was generated. Herein, the PKS assembly logic of 1−4 was revised by site-mutagenetic analysis of the PKS dehydratase domains. Based on gene deletion and complementation, the putative P450 monooxygenase nftE(1) and metallo-beta-lactamase (MBL) fold hydrolase nftF(1) were verified as essential genes for the biosynthesis of 1−4. The absence of nftE(1) led to abolishment of 1−4 and accumulation of new products (5−8). Structural elucidation reveals 5−8 as the non-aromatic analogs of 1, suggesting the NftE(1)-catalyzed aromatic core formation. Deletion of nftF(1) resulted in disappearance of 3 and 4 with the compounds 1 and 2 unaffected. As a rare MBL-fold hydrolase from type I PKSs, NftF(1) potentially generates the compound 3 through two strategies: catalyze premature chain-offloading as a trans-acting thioesterase or hydrolyze the lactone-bond of compound 1 as an esterase. KeAi Publishing 2023-06-03 /pmc/articles/PMC10265476/ /pubmed/37325182 http://dx.doi.org/10.1016/j.synbio.2023.05.003 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yang, Ming
Li, Wanlu
Zhou, Lin
Lin, Xiao
Zhang, Wenyu
Shen, Yaoyao
Deng, Hai
Lin, Hou-wen
Zhou, Yongjun
Biosynthesis of trialkyl-substituted aromatic polyketide NFAT-133 involves unusual P450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase
title Biosynthesis of trialkyl-substituted aromatic polyketide NFAT-133 involves unusual P450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase
title_full Biosynthesis of trialkyl-substituted aromatic polyketide NFAT-133 involves unusual P450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase
title_fullStr Biosynthesis of trialkyl-substituted aromatic polyketide NFAT-133 involves unusual P450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase
title_full_unstemmed Biosynthesis of trialkyl-substituted aromatic polyketide NFAT-133 involves unusual P450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase
title_short Biosynthesis of trialkyl-substituted aromatic polyketide NFAT-133 involves unusual P450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase
title_sort biosynthesis of trialkyl-substituted aromatic polyketide nfat-133 involves unusual p450 monooxygenase-mediating aromatization and a putative metallo-beta-lactamase fold hydrolase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10265476/
https://www.ncbi.nlm.nih.gov/pubmed/37325182
http://dx.doi.org/10.1016/j.synbio.2023.05.003
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