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Tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with XenF-mediated sigmatropic rearrangement as a prerequisite

Tyrosine-decahydrofluorene derivatives feature a fused [6.5.6] tricarbocyclic core and a 13-membered para-cyclophane ether. Herein, we identified new xenoacremones A, B, and C (1−3) from the fungal strain Xenoacremonium sinensis ML-31 and elucidated their biosynthetic pathway using gene deletion in...

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Autores principales: Liu, Zhiguo, Li, Wei, Zhang, Peng, Fan, Jie, Zhang, Fangbo, Wang, Caixia, Li, Shuming, Sun, Yi, Chen, Shilin, Yin, Wenbing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8642415/
https://www.ncbi.nlm.nih.gov/pubmed/34900544
http://dx.doi.org/10.1016/j.apsb.2021.03.034
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author Liu, Zhiguo
Li, Wei
Zhang, Peng
Fan, Jie
Zhang, Fangbo
Wang, Caixia
Li, Shuming
Sun, Yi
Chen, Shilin
Yin, Wenbing
author_facet Liu, Zhiguo
Li, Wei
Zhang, Peng
Fan, Jie
Zhang, Fangbo
Wang, Caixia
Li, Shuming
Sun, Yi
Chen, Shilin
Yin, Wenbing
author_sort Liu, Zhiguo
collection PubMed
description Tyrosine-decahydrofluorene derivatives feature a fused [6.5.6] tricarbocyclic core and a 13-membered para-cyclophane ether. Herein, we identified new xenoacremones A, B, and C (1−3) from the fungal strain Xenoacremonium sinensis ML-31 and elucidated their biosynthetic pathway using gene deletion in the native strain and heterologous expression in Aspergillus nidulans. The hybrid polyketide synthase–nonribosomal peptide synthetase (PKS−NRPS) XenE together with enoyl reductase XenG were confirmed to be responsible for the formation of the tyrosine-nonaketide skeleton. This skeleton was subsequently dehydrated by XenA to afford a pyrrolidinone moiety. XenF catalyzed a novel sigmatropic rearrangement to yield a key cyclohexane intermediate as a prerequisite for the formation of the multi-ring system. Subsequent oxidation catalyzed by XenD supplied the substrate for XenC to link the para-cyclophane ether, which underwent subsequent spontaneous Diels−Alder reaction to give the end products. Thus, the results indicated that three novel enzymes XenF, XenD, and XenC coordinate to assemble the [6.5.6] tricarbocyclic ring and para-cyclophane ether during biosynthesis of complex tyrosine-decahydrofluorene derivatives.
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spelling pubmed-86424152021-12-09 Tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with XenF-mediated sigmatropic rearrangement as a prerequisite Liu, Zhiguo Li, Wei Zhang, Peng Fan, Jie Zhang, Fangbo Wang, Caixia Li, Shuming Sun, Yi Chen, Shilin Yin, Wenbing Acta Pharm Sin B Original Article Tyrosine-decahydrofluorene derivatives feature a fused [6.5.6] tricarbocyclic core and a 13-membered para-cyclophane ether. Herein, we identified new xenoacremones A, B, and C (1−3) from the fungal strain Xenoacremonium sinensis ML-31 and elucidated their biosynthetic pathway using gene deletion in the native strain and heterologous expression in Aspergillus nidulans. The hybrid polyketide synthase–nonribosomal peptide synthetase (PKS−NRPS) XenE together with enoyl reductase XenG were confirmed to be responsible for the formation of the tyrosine-nonaketide skeleton. This skeleton was subsequently dehydrated by XenA to afford a pyrrolidinone moiety. XenF catalyzed a novel sigmatropic rearrangement to yield a key cyclohexane intermediate as a prerequisite for the formation of the multi-ring system. Subsequent oxidation catalyzed by XenD supplied the substrate for XenC to link the para-cyclophane ether, which underwent subsequent spontaneous Diels−Alder reaction to give the end products. Thus, the results indicated that three novel enzymes XenF, XenD, and XenC coordinate to assemble the [6.5.6] tricarbocyclic ring and para-cyclophane ether during biosynthesis of complex tyrosine-decahydrofluorene derivatives. Elsevier 2021-11 2021-03-26 /pmc/articles/PMC8642415/ /pubmed/34900544 http://dx.doi.org/10.1016/j.apsb.2021.03.034 Text en © 2021 Chinese Pharmaceutical Association and Institute of Materia Medica, Chinese Academy of Medical Sciences. Production and hosting by Elsevier B.V. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Liu, Zhiguo
Li, Wei
Zhang, Peng
Fan, Jie
Zhang, Fangbo
Wang, Caixia
Li, Shuming
Sun, Yi
Chen, Shilin
Yin, Wenbing
Tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with XenF-mediated sigmatropic rearrangement as a prerequisite
title Tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with XenF-mediated sigmatropic rearrangement as a prerequisite
title_full Tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with XenF-mediated sigmatropic rearrangement as a prerequisite
title_fullStr Tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with XenF-mediated sigmatropic rearrangement as a prerequisite
title_full_unstemmed Tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with XenF-mediated sigmatropic rearrangement as a prerequisite
title_short Tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with XenF-mediated sigmatropic rearrangement as a prerequisite
title_sort tricarbocyclic core formation of tyrosine-decahydrofluorenes implies a three-enzyme cascade with xenf-mediated sigmatropic rearrangement as a prerequisite
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8642415/
https://www.ncbi.nlm.nih.gov/pubmed/34900544
http://dx.doi.org/10.1016/j.apsb.2021.03.034
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