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1.
Plant Cell Physiol ; 57(3): 642-53, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26880818

ABSTRACT

Although chlorophyll (Chl) degradation is an essential biochemical pathway for plant physiology, our knowledge regarding this process still has unfilled gaps. Pheophytinase (PPH) was shown to be essential for Chl breakdown in dark-induced senescent leaves. However, the catalyzing enzymes involved in pigment turnover and fruit ripening-associated degreening are still controversial. Chl metabolism is closely linked to the biosynthesis of other isoprenoid-derived compounds, such as carotenoids and tocopherols, which are also components of the photosynthetic machinery. Chls, carotenoids and tocopherols share a common precursor, geranylgeranyl diphosphate, produced by the plastidial methylerythritol 4-phosphate (MEP) pathway. Additionally, the Chl degradation-derived phytol can be incorporated into tocopherol biosynthesis. In this context, tomato turns out to be an interesting model to address isoprenoid-metabolic cross-talk since fruit ripening combines degreening and an intensely active MEP leading to carotenoid accumulation. Here, we investigate the impact of PPH deficiency beyond senescence by the comprehensive phenotyping of SlPPH-knockdown tomato plants. In leaves, photosynthetic parameters indicate altered energy usage of excited Chl. As a mitigatory effect, photosynthesis-associated carotenoids increased while tocopherol content remained constant. Additionally, starch and soluble sugar profiles revealed a distinct pattern of carbon allocation in leaves that suggests enhanced sucrose exportation. The higher levels of carbohydrates in sink organs down-regulated carotenoid biosynthesis. Additionally, the reduction in Chl-derived phytol recycling resulted in decreased tocopherol content in transgenic ripe fruits. Summing up, tocopherol and carotenoid metabolism, together with the antioxidant capacity of the hydrophilic and hydrophobic fractions, were differentially affected in leaves and fruits of the transgenic plants. Thus, in tomato, PPH plays a role beyond senescence-associated Chl degradation that, when compromised, affects isoprenoid and carbon metabolism which ultimately alters the fruit's nutraceutical content.


Subject(s)
Carbon/metabolism , Dietary Supplements/analysis , Gene Knockdown Techniques , Hydrolases/metabolism , Solanum lycopersicum/growth & development , Solanum lycopersicum/genetics , Antioxidants/metabolism , Biosynthetic Pathways/genetics , Carotenoids/metabolism , Chlorophyll/metabolism , Chromans/metabolism , Genes, Plant , Solanum lycopersicum/enzymology , Photosynthesis , Phylogeny , Plants, Genetically Modified , RNA, Messenger/genetics , RNA, Messenger/metabolism , Starch/metabolism , Tocopherols/metabolism
2.
J Exp Bot ; 67(3): 919-34, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26596763

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, Solanum lycopersicum 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.


Subject(s)
Biosynthetic Pathways , Down-Regulation , Lipid Metabolism , Organ Specificity , Plant Proteins/metabolism , Solanum lycopersicum/enzymology , Tocopherols/metabolism , Biosynthetic Pathways/genetics , Carbohydrate Metabolism/genetics , Chlorophyll/metabolism , Down-Regulation/genetics , Esters/metabolism , Fruit/metabolism , Gases/metabolism , Gene Expression Regulation, Plant , Gene Knockdown Techniques , Genes, Plant , Lipid Metabolism/genetics , Solanum lycopersicum/genetics , Mutation/genetics , Photosynthesis/genetics , Photosystem II Protein Complex/metabolism , Phytol/metabolism , Plant Leaves/metabolism , Plant Proteins/genetics , Plants, Genetically Modified , Prenylation , RNA Interference , Solubility , Starch/metabolism
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