Glycosylation Is a Major Regulator of Phenylpropanoid Availability and Biological Activity in Plants

Гликозилирование как основной регулятор доступности и биологической активности фенилпропаноидов у растений
Julien Le Roy, Brigitte Huss, Anne Créach, Simon Hawkins, Godfrey Neutelings
2016-05-26

UDP-glycosyltransferaseslignificationmonolignol glycosylationphenylpropanoid glycosylationphenylpropanoid pathway
The phenylpropanoid pathway in plants is responsible for the biosynthesis of a huge amount of secondary metabolites derived from phenylalanine and tyrosine. Both flavonoids and lignins are synthesized at the end of this very diverse metabolic pathway, as well as many intermediate molecules whose precise biological functions remain largely unknown. The diversity of these molecules can be further increased under the action of UDP-glycosyltransferases (UGTs) leading to the production of glycosylated hydroxycinnamates and related aldehydes, alcohols and esters. Glycosylation can change phenylpropanoid solubility, stability and toxic potential, as well as influencing compartmentalization and biological activity. (De)-glycosylation therefore represents an extremely important regulation point in phenylpropanoid homeostasis. In this article we review recent knowledge on the enzymes involved in regulating phenylpropanoid glycosylation status and availability in different subcellular compartments. We also examine the potential link between monolignol glycosylation and lignification by exploring co-expression of lignin biosynthesis genes and phenolic (de)glycosylation genes. Of the different biological roles linked with their particular chemical properties, phenylpropanoids are often correlated with the plant's stress management strategies that are also regulated by glycosylation. UGTs can for instance influence the resistance of plants during infection by microorganisms and be involved in the mechanisms related to environmental changes. The impact of flavonoid glycosylation on the color of flowers, leaves, seeds and fruits will also be discussed. Altogether this paper underlies the fact that glycosylation and deglycosylation are powerful mechanisms allowing plants to regulate phenylpropanoid localisation, availability and biological activity.
1
Glycosylation regulates phenylpropanoid solubility, stability, toxicity, subcellular compartmentalization, availability, and biological activity.
2
Monolignol glycosylation may be linked to lignification, as suggested by co-expression relationships between lignin biosynthesis and phenolic glycosylation genes.
3
Phenylpropanoid glycosylation by UDP-glycosyltransferases expands chemical diversity by producing glycosylated hydroxycinnamates, aldehydes, alcohols, and esters.
4
Phenylpropanoid glycosylation contributes to stress responses, including plant resistance to microbial infection and adaptation to environmental changes, while flavonoid glycosylation affects organ coloration.
5
Reversible glycosylation is a major control point in phenylpropanoid homeostasis across different subcellular compartments.

plant phenylpropanoids and their glycosylated derivatives

regulation of phenylpropanoid localization, availability, stability, solubility, toxicity, and biological activity through glycosylation and deglycosylation

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2016-05-26
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Julien Le Roy
Brigitte Huss
Anne Créach
Simon Hawkins
Godfrey Neutelings
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