Metal movement within the plant: contribution of nicotianamine and yellow stripe 1-like transporters
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Open Access
- 31 October 2008
- journal article
- review article
- Published by Oxford University Press (OUP) in Annals of Botany
- Vol. 103 (1), 1-11
- https://doi.org/10.1093/aob/mcn207
Abstract
Since the identification of the genes controlling the root acquisition of iron (Fe), the control of inter- and intracellular distribution has become an important challenge in understanding metal homeostasis. The identification of the yellow stripe-like (YSL) transporter family has paved the way to decipher the mechanisms of long-distance transport of Fe. Once in the plant, Fe will systematically react with organic ligands whose identity is poorly known so far. Among potential ligands, nicotianamine has been identified as an important molecule for the circulation and delivery of metals since it participates in the loading of copper (Cu) and nickel in xylem and prevents Fe precipitation in leaves. Nicotianamine is a precursor of phytosiderophores, which are high-affinity Fe ligands exclusively synthesized by Poaceae species and excreted by roots for the chelation and acquisition of Fe. Maize YS1 is the founding member of a family of membrane transporters called YS1-like (YSL), which functions in root Fe–phytosiderophore uptake from the soil. Next to this well-known Fe acquisition role, most of the other YSL family members are likely to function in plant-wide distribution of metals since (a) they are produced in vascular tissues throughout the plant and (b) they are found in non-Poaceae species that do not synthesize phytosiderophores. The hypothesized activity as Fe–nicotianamine transporters of several YSL members has been demonstrated experimentally by heterologous expression in yeast or by electrophysiology in Xenopus oocytes but, despite numerous attempts, proof of the arabidopsis YSL substrate specificity is still lacking. Reverse genetics, however, has revealed a role for AtYSL members in the remobilization of Cu and zinc from senescing leaves, in the formation of pollen and in the Fe, zinc and Cu loading of seeds. Preliminary data on the YSL family of transporters clearly argues in favour of its role in the long-distance transport of metals through and between vascular tissues to eventually support gametogenesis and embryo development.Keywords
This publication has 53 references indexed in Scilit:
- Deoxymugineic acid increases Zn translocation in Zn-deficient rice plantsPlant Molecular Biology, 2008
- Identification of high levels of phytochelatins, glutathione and cadmium in the phloem sap of Brassica napus. A role for thiol‐peptides in the long‐distance transport of cadmium and the effect of cadmium on iron translocationThe Plant Journal, 2008
- Dendroscope: An interactive viewer for large phylogenetic treesBMC Bioinformatics, 2007
- A Proteomics Dissection of Arabidopsis thaliana Vacuoles Isolated from Cell CultureMolecular & Cellular Proteomics, 2007
- Mutations in Arabidopsis Yellow Stripe-Like1 and Yellow Stripe-Like3 Reveal Their Roles in Metal Ion Homeostasis and Loading of Metal Ions in SeedsPlant Physiology, 2006
- OsYSL2 is a rice metal‐nicotianamine transporter that is regulated by iron and expressed in the phloemThe Plant Journal, 2004
- A Metal-binding Member of the Late Embryogenesis Abundant Protein Family Transports Iron in the Phloem ofRicinus communis L.Journal of Biological Chemistry, 2002
- Translocation of copper and other micronutrients in tomato plants (Lycopersicon esculentumMill.): nicotianamine-stimulated copper transport in the xylemJournal of Experimental Botany, 1996
- NicotJanamine and the Distribution of Iron into Apoplast and Symplast of Tomato (Lycopersicon esculentumMill.): II. UPTAKE OF IRON BY PROTOPLASTS FROM THE VARIETY BONNER BESTE AND ITS NICOTIANAMINE-LESS MUTANT CHLORONERVA AND THE COMPARTMENTATION OF IRON IN LEAVES1Journal of Experimental Botany, 1991
- Metal complex formation by nicotianamine, a possible phytosiderophoreCellular and Molecular Life Sciences, 1983