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  4. Down-regulation of tomato PHYTOL KINASE strongly impairs tocopherol biosynthesis and affects prenyllipid metabolism in an organ-specific manner

Down-regulation of tomato PHYTOL KINASE strongly impairs tocopherol biosynthesis and affects prenyllipid metabolism in an organ-specific manner

Author(s)
Almeida, Juliana
Azevedo, Mariana da Silva
Spicher, Livia
Glauser, Gaétan
vom Dorp, Katharina
Guyer, Luzia
del Valle Carranza, Andrea
Asis, Ramón
de Souza, Amanda Pereira
Buckeridge, Marcos
Demarco, Diego
Bres, Cécile
Rothan, Christophe
Peres, Lázaro Eustáquio Pereira
Hörtensteiner, Stefan
Kessler, Félix  
Laboratoire de physiologie végétale  
Dörmann, Peter
Carrari, Fernando
Técnicas, Castelar, Argentina
Rossi, Magdalena
Date issued
2016
In
Journal of Experimental Botany, Oxford University Press
Vol
67
No
3
From page
919
To page
934
Subjects
Carotenoids chlorophyll phytol phytol kinase prenyllipids <i>Solanum lycopersicum</i> tocopherol tomato vitamin E.
Abstract
Tocopherol, a compound with vitamin E (VTE) activity, is a conserved constituent of the plastidial antioxidant network in photosynthetic organisms. The synthesis of tocopherol involves the condensation of an aromatic head group with an isoprenoid prenyl side chain. The latter, phytyl diphosphate, can be derived from chlorophyll phytol tail recycling, which depends on phytol kinase (VTE5) activity. How plants co- ordinate isoprenoid precursor distribution for supplying biosynthesis of tocopherol and other prenyllipids in different organs is poorly understood. Here, <i>Solanum lycopersicum</i> plants impaired in the expression of two VTE5-like genes identified by phylogenetic analyses, named SlVTE5 and SlFOLK, were characterized. Our data show that while SlFOLK does not affect tocopherol content, the production of this metabolite is >80% dependent on SlVTE5 in tomato, in both leaves and fruits. VTE5 deficiency greatly impacted lipid metabolism, including prenylquinones, carotenoids, and fatty acid phytyl esters. However, the prenyllipid profile greatly differed between source and sink organs, revealing organ-specific metabolic adjustments in tomato. Additionally, VTE5-deficient plants displayed starch accumulation and lower CO2 assimilation in leaves associated with mild yield penalty. Taken together, our results provide valuable insights into the distinct regulation of isoprenoid metabolism in leaves and fruits and also expose the interaction between lipid and carbon metabolism, which results in carbohydrate export blockage in the VTE5-deficient plants, affecting tomato fruit quality.
Publication type
journal article
Identifiers
https://libra.unine.ch/handle/20.500.14713/65312
DOI
10.1093/jxb/erv504
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Almeida_J.-Down_regulation-20170223144340-DT.pdf

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