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Solanaceous plants produce tropane alkaloids (TAs) via esterification of 3α- and 3β-tropanol. Although littorine synthase is revealed to be responsible for 3α-tropanol esterification that leads to hyoscyamine biosynthesis, the genes associated with 3β-tropanol esterification are unknown. Here, we report that a BAHD acyltransferase from Atropa belladonna, 3β-tigloyloxytropane synthase (TS), catalyzes 3β-tropanol and tigloyl-CoA to form 3β-tigloyloxytropane, the key intermediate in calystegine biosynthesis and a potential drug for treating neurodegenerative disease. Unlike other cytosolic-localized BAHD acyltransferases, TS is localized to mitochondria. The catalytic mechanism of TS is revealed through molecular docking and site-directed mutagenesis. Subsequently, 3β-tigloyloxytropane is synthesized in tobacco. A bacterial CoA ligase (PcICS) is found to synthesize tigloyl-CoA, an acyl donor for 3β-tigloyloxytropane biosynthesis. By expressing TS mutant and PcICS, engineered Escherichia coli synthesizes 3β-tigloyloxytropane from tiglic acid and 3β-tropanol. This study helps to characterize the enzymology and chemodiversity of TAs and provides an approach for producing 3β-tigloyloxytropane.
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http://dx.doi.org/10.1038/s41467-024-47968-0 | DOI Listing |
Appl Biochem Biotechnol
August 2025
Biotechnology Research Center and Department of Biotechnology, Toyama Prefectural University, 5180 Kurokawa, Imizu, Toyama, 939-0398, Japan.
Cultured cells of a bamboo species (Phyllostachys nigra; Pn) were previously demonstrated to be a suitable host for the bioproduction of exogenous phenylpropanoid-derived compounds based on the rational metabolic-flow switching strategy. In the strategy, the biosynthetic pathway of hydroxycinnamoylputrescines, the major secondary metabolites in Pn cells, was redirected to the biosynthetic pathways of the compounds of interest through genetic transformation. To improve the efficiency of metabolic-flow switching in transgenic Pn cells, functionally disrupting the endogenous gene encoding putrescine hydroxycinnamoyltransferase (PHT), catalyzing the formation of hydroxycinnamoylputrescine, may be a promising strategy.
View Article and Find Full Text PDFBMC Plant Biol
August 2025
Guangxi University of Chinese Medicine, Nanning, 530200, China.
Emilia sonchifolia (L.) DC. serves as a well-known folk medicinal and edible plant, yet its toxic component senkirkine exhibits hepatotoxicity.
View Article and Find Full Text PDFPlants (Basel)
July 2025
Integrative Science Center of Germplasm Creation in Western China (Chongqing) Science City, College of Agronomy and Biotechnology, Southwest University, Chongqing 400715, China.
The BAHD acyltransferase family plays a critical role in plant secondary metabolism by catalyzing acyl transfer reactions that are essential for synthesizing metabolites involved in environmental adaptation. However, systematic investigation of this superfamily in has not been reported. In this study, 158 genes were identified by comprehensive analyses of evolutionary relationships, motif structures, chromosomal distribution, gene collinearity, and selection pressures, and these genes were phylogenetically classified into five clades harboring conserved catalytic domains (HXXXD and DFGWG).
View Article and Find Full Text PDFPlant Sci
October 2025
State Key Laboratory of Tea Plant Germplasm Innovation and Resource Utilization, Anhui Agricultural University, Hefei, Anhui, China. Electronic address:
Acylated flavonol glycosides can regulate plant growth, improve plant stress resistance and disease resistance. We have found that some specific acetylated flavonol glycosides accumulated in the tea roots, but their metabolic characteristics and the mechanism of biosynthetic regulation were not clear. In this paper, the flavonol glycosides in tea seedlings were qualitatively and quantitatively analyzed by UPLC-TOF-MS/MS and UPLC-QqQ-MS/MS.
View Article and Find Full Text PDFPlant Commun
July 2025
State Key Laboratory of Seed Innovation, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China; College of Advanced Agricultural Sciences, University of Chinese Academy of Sciences, Beijing, China. Electronic address:
Taxanes are diterpenoid natural products found in yew trees (Taxus spp.) and include three anticancer agents: paclitaxel, docetaxel, and cabazitaxel. Despite nearly 500 reported taxane compounds, only the biosynthetic pathway of the type I taxane skeleton leading to paclitaxel is close to being fully elucidated.
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