Characterization of two functional phosphoenolpyruvate/phosphate translocator (PPT) genes in Arabidopsis–AtPPT1 may be involved in the provision of signals for correct mesophyll development
- 13 October 2003
- journal article
- Published by Wiley in The Plant Journal
- Vol. 36 (3) , 411-420
- https://doi.org/10.1046/j.1365-313x.2003.01888.x
Abstract
Summary: The Arabidopsis thaliana chlorophyll a/b‐binding protein underexpressed 1 (cue1) mutant shows a reticulate leaf phenotype and is defective in a plastidic phosphoenolpyruvate (PEP)/phosphate translocator (AtPPT1). A functional AtPPT1 providing plastids with PEP for the shikimate pathway is therefore essential for correct leaf development. The Arabidopsis genome contains a second PPT gene, AtPPT2. Both transporters share similar substrate specificities and are therefore able to transport PEP into plastids. The cue1 phenotype could partially be complemented by ectopic expression of AtPPT2 but obviously not by the endogeneous AtPPT2. Both genes are differentially expressed in most tissues: AtPPT1 is mainly expressed in the vasculature of leaves and roots, especially in xylem parenchyma cells, but not in leaf mesophyll cells, whereas AtPPT2 is expressed ubiquitously in leaves, but not in roots. The expression profiles are corroborated by tissue‐specific transport data. As AtPPT1 expression is absent in mesophyll cells that are severely affected in the cue1 mutant, we propose that the vasculature‐located AtPPT1 is involved in the generation of phenylpropanoid metabolism‐derived signal molecules that trigger development in interveinal leaf regions. This signal probably originates from the root vasculature where only AtPPT1, but not AtPPT2, is present.Keywords
This publication has 44 references indexed in Scilit:
- The Phosphoenolpyruvate/Phosphate Translocator Is Required for Phenolic Metabolism, Palisade Cell Development, and Plastid-Dependent Nuclear Gene ExpressionPlant Cell, 1999
- A new class of plastidic phosphate translocators: a putative link between primary and secondary metabolism by the phosphoenolpyruvate/phosphate antiporter.Plant Cell, 1997
- CUE1: A Mesophyll Cell-Specific Positive Regulator of Light-Controlled Gene Expression in ArabidopsisPlant Cell, 1995
- Transport of inorganic phosphate and C3- and C6-sugar phosphates across the envelope membranes of potato tuber amyloplastsPlanta, 1995
- The role of the triose-phosphate shuttle and glycolytic intermediates in fatty-acid and glycerolipid biosynthesis in pea root plastidsPlanta, 1994
- A rapid method for measuring organelle-specific substrate transport in homogenates from plant tissuesPlanta, 1994
- Specific Labeling of the Phosphate Translocator in C3 and C4 Mesophyll Chloroplasts by Tritiated Dihydro-DIDS (1,2-Ditritio-1,2-[2,2′ -Disulfo-4,4′ -Diisothiocyano] Diphenylethane)Plant Physiology, 1988
- Identification of the phosphate-translocator from maize mesophyll chloroplastsBiochemical and Biophysical Research Communications, 1987
- Transport in C4 mesophyll chloroplasts. Evidence for an exchange of inorganic phosphate and phosphoenolpyruvateBiochimica et Biophysica Acta (BBA) - Bioenergetics, 1977
- Specific transport of inorganic phosphate, 3‐phosphoglycerate and dihydroxyacetonephosphate, and of dicarboxylates across the inner membrane of spinach chloroplastsFEBS Letters, 1970