The nitrate/proton antiporter AtCLCa mediates nitrate accumulation in plant vacuoles
Top Cited Papers
- 26 July 2006
- journal article
- letter
- Published by Springer Nature in Nature
- Vol. 442 (7105), 939-942
- https://doi.org/10.1038/nature05013
Abstract
Nitrate, the major nitrogen source for most plants, is widely used as a fertilizer and as a result has become a predominant freshwater pollutant. Plants need nitrate for growth and store most of it in the central vacuole1. Some members of the chloride channel (CLC) protein family, such as the torpedo-fish ClC-0 and mammalian ClC-1, are anion channels2,3, whereas the bacterial ClC-ec1 and mammalian ClC-4 and ClC-5 have recently been characterized as Cl-/H+ exchangers with unknown cellular functions4,5,6. Plant members of the CLC family are proposed to be anion channels7,8 involved in nitrate homeostasis9; however, direct evidence for anion transport mediated by a plant CLC is still lacking. Here we show that Arabidopsis thaliana CLCa (AtCLCa) is localized to an intracellular membrane, the tonoplast of the plant vacuole, which is amenable to electrophysiological studies, and we provide direct evidence for its anion transport ability. We demonstrate that AtCLCa is able to accumulate specifically nitrate in the vacuole and behaves as a NO3-/H+ exchanger. For the first time, to our knowledge, the transport activity of a plant CLC is revealed, the antiporter mechanism of a CLC protein is investigated in a native membrane system, and this property is directly connected with its physiological role.Keywords
This publication has 27 references indexed in Scilit:
- Separate Ion Pathways in a Cl−/H+ ExchangerThe Journal of general physiology, 2005
- Localization of a putative ClC chloride channel in spinach chloroplastsFEBS Letters, 2005
- Light-Dark Changes in Cytosolic Nitrate Pools Depend on Nitrate Reductase Activity in Arabidopsis Leaf CellsPlant Physiology, 2005
- Quantitative trait loci analysis of nitrate storage in Arabidopsis leading to an investigation of the contribution of the anion channel gene, AtCLC-c, to variation in nitrate levelsJournal of Experimental Botany, 2004
- Secondary active transport mediated by a prokaryotic homologue of ClC Cl- channelsNature, 2004
- Ionic Currents Mediated by a Prokaryotic Homologue of CLC Cl− ChannelsThe Journal of general physiology, 2004
- Disruption of putative anion channel gene AtCLC‐a in Arabidopsis suggests a role in the regulation of nitrate contentThe Plant Journal, 2000
- Cloning and functional expression of a plant voltage-dependent chloride channel.Plant Cell, 1996
- Malate-Regulated Channels Permeable to Anions in Vacuoles of Arabidopsis thalianaFunctional Plant Biology, 1995
- A VOLTAGE‐DEPENDENT CHLORIDE CONDUCTANCE CHANNEL FROM TORPEDO ELECTROPLAX MEMBRANE*Annals of the New York Academy of Sciences, 1980