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Discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures

The identification and characterization of enediyne polyketide synthases (PKSEs) revealed that PKSE-bound polyene is a common intermediate, while its subsequent tailoring steps to enediyne cores remain obscure. Herein, we report pentaene polyols 5–7 and cinnamic acid derivatives 8 and 9 biosynthesiz...

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Autores principales: Pan, Jian, Tan, Qingwen, Zhu, Saibin, Yan, Xiaohui, Li, Yu, Zhuang, Zhoukang, Zhu, Xiangcheng, Duan, Yanwen, Huang, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9682884/
https://www.ncbi.nlm.nih.gov/pubmed/36507168
http://dx.doi.org/10.1039/d2sc04379c
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author Pan, Jian
Tan, Qingwen
Zhu, Saibin
Yan, Xiaohui
Li, Yu
Zhuang, Zhoukang
Zhu, Xiangcheng
Duan, Yanwen
Huang, Yong
author_facet Pan, Jian
Tan, Qingwen
Zhu, Saibin
Yan, Xiaohui
Li, Yu
Zhuang, Zhoukang
Zhu, Xiangcheng
Duan, Yanwen
Huang, Yong
author_sort Pan, Jian
collection PubMed
description The identification and characterization of enediyne polyketide synthases (PKSEs) revealed that PKSE-bound polyene is a common intermediate, while its subsequent tailoring steps to enediyne cores remain obscure. Herein, we report pentaene polyols 5–7 and cinnamic acid derivatives 8 and 9 biosynthesized from an activated enediyne biosynthetic gene cluster in Streptomyces sp. CB02130. The C-1027 pksE could partially complement production of these polyene polyols in a CB02130 mutant where the native pksE is inactivated. The yields of 5–7 were improved by increasing the cellular pool of l-Phe through either gene inactivation of a prephenate dehydrogenase WlsPDH or supplementation of l-Phe. A flexible ammonia lyase WlsC4 is responsible for biosynthesis of 8 and 9 from l-Phe. The co-localization of wlsPDH and PKSE gene cassette supports their close evolutionary relationships and an enediyne genome mining strategy using WlsPDH. These findings not only provide a facile approach to activate silent enediyne BGCs, but suggest that a polyene epoxide intermediate may be formed for construction of 9-membered enediyne macrocycles.
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spelling pubmed-96828842022-12-08 Discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures Pan, Jian Tan, Qingwen Zhu, Saibin Yan, Xiaohui Li, Yu Zhuang, Zhoukang Zhu, Xiangcheng Duan, Yanwen Huang, Yong Chem Sci Chemistry The identification and characterization of enediyne polyketide synthases (PKSEs) revealed that PKSE-bound polyene is a common intermediate, while its subsequent tailoring steps to enediyne cores remain obscure. Herein, we report pentaene polyols 5–7 and cinnamic acid derivatives 8 and 9 biosynthesized from an activated enediyne biosynthetic gene cluster in Streptomyces sp. CB02130. The C-1027 pksE could partially complement production of these polyene polyols in a CB02130 mutant where the native pksE is inactivated. The yields of 5–7 were improved by increasing the cellular pool of l-Phe through either gene inactivation of a prephenate dehydrogenase WlsPDH or supplementation of l-Phe. A flexible ammonia lyase WlsC4 is responsible for biosynthesis of 8 and 9 from l-Phe. The co-localization of wlsPDH and PKSE gene cassette supports their close evolutionary relationships and an enediyne genome mining strategy using WlsPDH. These findings not only provide a facile approach to activate silent enediyne BGCs, but suggest that a polyene epoxide intermediate may be formed for construction of 9-membered enediyne macrocycles. The Royal Society of Chemistry 2022-10-31 /pmc/articles/PMC9682884/ /pubmed/36507168 http://dx.doi.org/10.1039/d2sc04379c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Pan, Jian
Tan, Qingwen
Zhu, Saibin
Yan, Xiaohui
Li, Yu
Zhuang, Zhoukang
Zhu, Xiangcheng
Duan, Yanwen
Huang, Yong
Discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures
title Discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures
title_full Discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures
title_fullStr Discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures
title_full_unstemmed Discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures
title_short Discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures
title_sort discovery of pentaene polyols by the activation of an enediyne gene cluster: biosynthetic implications for 9-membered enediyne core structures
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9682884/
https://www.ncbi.nlm.nih.gov/pubmed/36507168
http://dx.doi.org/10.1039/d2sc04379c
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