The Arabidopsis vacuolar malate channel is a member of the ALMT family
Open Access
- 14 November 2007
- journal article
- Published by Wiley in The Plant Journal
- Vol. 52 (6) , 1169-1180
- https://doi.org/10.1111/j.1365-313x.2007.03367.x
Abstract
In plants, malate is a central metabolite and fulfills a large number of functions. Vacuolar malate may reach very high concentrations and fluctuate rapidly, whereas cytosolic malate is kept at a constant level allowing optimal metabolism. Recently, a vacuolar malate transporter (Arabidopsis thaliana tonoplast dicarboxylate transporter, AttDT) was identified that did not correspond to the well-characterized vacuolar malate channel. We therefore hypothesized that a member of the aluminum-activated malate transporter (ALMT) gene family could code for a vacuolar malate channel. Using GFP fusion constructs, we could show that AtALMT9 (A. thaliana ALMT9) is targeted to the vacuole. Promoter-GUS fusion constructs demonstrated that this gene is expressed in all organs, but is cell-type specific as GUS activity in leaves was detected nearly exclusively in mesophyll cells. Patch-clamp analysis of an Atalmt9 T-DNA insertion mutant exhibited strongly reduced vacuolar malate channel activity. In order to functionally characterize AtALMT9 as a malate channel, we heterologously expressed this gene in tobacco and in oocytes. Overexpression of AtALMT9-GFP in Nicotiana benthamiana leaves strongly enhanced the malate current densities across the mesophyll tonoplasts. Functional expression of AtALMT9 in Xenopus oocytes induced anion currents, which were clearly distinguishable from endogenous oocyte currents. Our results demonstrate that AtALMT9 is a vacuolar malate channel. Deletion mutants for AtALMT9 exhibit only slightly reduced malate content in mesophyll protoplasts and no visible phenotype, indicating that AttDT and the residual malate channel activity are sufficient to sustain the transport activity necessary to regulate the cytosolic malate homeostasis.Keywords
This publication has 64 references indexed in Scilit:
- The Zinc Binding Site of the Shaker Channel KDC1 from Daucus carotaBiophysical Journal, 2008
- A Proteomics Dissection of Arabidopsis thaliana Vacuoles Isolated from Cell CultureMolecular & Cellular Proteomics, 2007
- The BnALMT1 and BnALMT2 Genes from Rape Encode Aluminum-Activated Malate Transporters That Enhance the Aluminum Resistance of Plant CellsPlant Physiology, 2006
- Studies on transformation of Escherichia coli with plasmidsPublished by Elsevier ,2006
- AtALMT1 , which encodes a malate transporter, is identified as one of several genes critical for aluminum tolerance in ArabidopsisProceedings of the National Academy of Sciences, 2006
- Voltage Clamp Fluorometric Measurements on a Type II Na+-coupled Pi Cotransporter: Shedding Light on Substrate Binding OrderThe Journal of general physiology, 2006
- Identification of a Vacuolar Sucrose Transporter in Barley and Arabidopsis Mesophyll Cells by a Tonoplast Proteomic ApproachPlant Physiology, 2006
- Two functionally different vacuoles for static and dynamic purposes in one plant mesophyll leaf cellThe Plant Journal, 2003
- Multiple sequence alignment with the Clustal series of programsNucleic Acids Research, 2003
- CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choiceNucleic Acids Research, 1994