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Plant terpenoid metabolism co-opts a component of the cell wall biosynthesis machinery

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Autor
Jozwiak A., Sonawane P.D., Panda S., Garagounis C., Papadopoulou K.K., Abebie B., Massalha H., Almekias-Siegl E., Scherf T., Aharoni A.
Datum
2020
Language
en
DOI
10.1038/s41589-020-0541-x
Schlagwort
glucuronic acid
glycosyltransferase
Glycyrrhiza glabra root
glycyrrhizic acid
saponin derivative
terpenoid
cellulose
cellulose synthase
glucosyltransferase
glucuronic acid
glycosyltransferase
plant protein
saponin
terpene
amino terminal sequence
Article
carboxy terminal sequence
cell wall
controlled study
endoplasmic reticulum
endoplasmic reticulum membrane
enzyme active site
enzyme synthesis
extracellular space
gene cluster
metabolic engineering
nonhuman
nuclear magnetic resonance
plant metabolism
priority journal
protein function
protein localization
site directed mutagenesis
spinach
beet
biosynthesis
cell membrane
cell wall
gene expression regulation
genetics
glycosylation
Glycyrrhiza
mass fragmentography
metabolism
plant cell
plant root
Beta vulgaris
Cell Membrane
Cell Wall
Cellulose
Endoplasmic Reticulum
Gas Chromatography-Mass Spectrometry
Gene Expression Regulation, Plant
Glucosyltransferases
Glucuronic Acid
Glycosylation
Glycosyltransferases
Glycyrrhiza
Plant Cells
Plant Proteins
Plant Roots
Saponins
Spinacia oleracea
Terpenes
Nature Research
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Zusammenfassung
Glycosylation is one of the most prevalent molecular modifications in nature. Single or multiple sugars can decorate a wide range of acceptors from proteins to lipids, cell wall glycans and small molecules, dramatically affecting their activity. Here, we discovered that by ‘hijacking’ an enzyme of the cellulose synthesis machinery involved in cell wall assembly, plants evolved cellulose synthase-like enzymes (Csls) and acquired the capacity to glucuronidate specialized metabolites, that is, triterpenoid saponins. Apparently, endoplasmic reticulum-membrane localization of Csls and of other pathway proteins was part of evolving a new glycosyltransferase function, as plant metabolite glycosyltransferases typically act in the cytosol. Discovery of glucuronic acid transferases across several plant orders uncovered the long-pursued enzymatic reaction in the production of a low-calorie sweetener from licorice roots. Our work opens the way for engineering potent saponins through microbial fermentation and plant-based systems. [Figure not available: see fulltext.]. © 2020, The Author(s), under exclusive licence to Springer Nature America, Inc.
URI
http://hdl.handle.net/11615/74122
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  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]

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