AtHKT1;1 mediates nernstian sodium channel transport properties in Arabidopsis root stelar cells.

The Arabidopsis AtHKT1;1 protein was identified as a sodium (Na⁺) transporter by heterologous expression in Xenopus laevis oocytes and Saccharomyces cerevisiae. However, direct comparative in vivo electrophysiological analyses of a plant HKT transporter in wild-type and hkt loss-of-function mutants...

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Main Authors: Shaowu Xue, Xuan Yao, Wei Luo, Deepa Jha, Mark Tester, Tomoaki Horie, Julian I Schroeder
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3170383?pdf=render
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author Shaowu Xue
Xuan Yao
Wei Luo
Deepa Jha
Mark Tester
Tomoaki Horie
Julian I Schroeder
author_facet Shaowu Xue
Xuan Yao
Wei Luo
Deepa Jha
Mark Tester
Tomoaki Horie
Julian I Schroeder
author_sort Shaowu Xue
collection DOAJ
description The Arabidopsis AtHKT1;1 protein was identified as a sodium (Na⁺) transporter by heterologous expression in Xenopus laevis oocytes and Saccharomyces cerevisiae. However, direct comparative in vivo electrophysiological analyses of a plant HKT transporter in wild-type and hkt loss-of-function mutants has not yet been reported and it has been recently argued that heterologous expression systems may alter properties of plant transporters, including HKT transporters. In this report, we analyze several key functions of AtHKT1;1-mediated ion currents in their native root stelar cells, including Na⁺ and K⁺ conductances, AtHKT1;1-mediated outward currents, and shifts in reversal potentials in the presence of defined intracellular and extracellular salt concentrations. Enhancer trap Arabidopsis plants with GFP-labeled root stelar cells were used to investigate AtHKT1;1-dependent ion transport properties using patch clamp electrophysiology in wild-type and athkt1;1 mutant plants. AtHKT1;1-dependent currents were carried by sodium ions and these currents were not observed in athkt1;1 mutant stelar cells. However, K⁺ currents in wild-type and athkt1;1 root stelar cell protoplasts were indistinguishable correlating with the Na⁺ over K⁺ selectivity of AtHKT1;1-mediated transport. Moreover, AtHKT1;1-mediated currents did not show a strong voltage dependence in vivo. Unexpectedly, removal of extracellular Na⁺ caused a reduction in AtHKT1;1-mediated outward currents in Columbia root stelar cells and Xenopus oocytes, indicating a role for external Na⁺ in regulation of AtHKT1;1 activity. Shifting the NaCl gradient in root stelar cells showed a Nernstian shift in the reversal potential providing biophysical evidence for the model that AtHKT1;1 mediates passive Na⁺ channel transport properties.
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spelling doaj.art-93bee6a92bd8420f96d3de99c79237282022-12-21T19:09:07ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-0169e2472510.1371/journal.pone.0024725AtHKT1;1 mediates nernstian sodium channel transport properties in Arabidopsis root stelar cells.Shaowu XueXuan YaoWei LuoDeepa JhaMark TesterTomoaki HorieJulian I SchroederThe Arabidopsis AtHKT1;1 protein was identified as a sodium (Na⁺) transporter by heterologous expression in Xenopus laevis oocytes and Saccharomyces cerevisiae. However, direct comparative in vivo electrophysiological analyses of a plant HKT transporter in wild-type and hkt loss-of-function mutants has not yet been reported and it has been recently argued that heterologous expression systems may alter properties of plant transporters, including HKT transporters. In this report, we analyze several key functions of AtHKT1;1-mediated ion currents in their native root stelar cells, including Na⁺ and K⁺ conductances, AtHKT1;1-mediated outward currents, and shifts in reversal potentials in the presence of defined intracellular and extracellular salt concentrations. Enhancer trap Arabidopsis plants with GFP-labeled root stelar cells were used to investigate AtHKT1;1-dependent ion transport properties using patch clamp electrophysiology in wild-type and athkt1;1 mutant plants. AtHKT1;1-dependent currents were carried by sodium ions and these currents were not observed in athkt1;1 mutant stelar cells. However, K⁺ currents in wild-type and athkt1;1 root stelar cell protoplasts were indistinguishable correlating with the Na⁺ over K⁺ selectivity of AtHKT1;1-mediated transport. Moreover, AtHKT1;1-mediated currents did not show a strong voltage dependence in vivo. Unexpectedly, removal of extracellular Na⁺ caused a reduction in AtHKT1;1-mediated outward currents in Columbia root stelar cells and Xenopus oocytes, indicating a role for external Na⁺ in regulation of AtHKT1;1 activity. Shifting the NaCl gradient in root stelar cells showed a Nernstian shift in the reversal potential providing biophysical evidence for the model that AtHKT1;1 mediates passive Na⁺ channel transport properties.http://europepmc.org/articles/PMC3170383?pdf=render
spellingShingle Shaowu Xue
Xuan Yao
Wei Luo
Deepa Jha
Mark Tester
Tomoaki Horie
Julian I Schroeder
AtHKT1;1 mediates nernstian sodium channel transport properties in Arabidopsis root stelar cells.
PLoS ONE
title AtHKT1;1 mediates nernstian sodium channel transport properties in Arabidopsis root stelar cells.
title_full AtHKT1;1 mediates nernstian sodium channel transport properties in Arabidopsis root stelar cells.
title_fullStr AtHKT1;1 mediates nernstian sodium channel transport properties in Arabidopsis root stelar cells.
title_full_unstemmed AtHKT1;1 mediates nernstian sodium channel transport properties in Arabidopsis root stelar cells.
title_short AtHKT1;1 mediates nernstian sodium channel transport properties in Arabidopsis root stelar cells.
title_sort athkt1 1 mediates nernstian sodium channel transport properties in arabidopsis root stelar cells
url http://europepmc.org/articles/PMC3170383?pdf=render
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AT weiluo athkt11mediatesnernstiansodiumchanneltransportpropertiesinarabidopsisrootstelarcells
AT deepajha athkt11mediatesnernstiansodiumchanneltransportpropertiesinarabidopsisrootstelarcells
AT marktester athkt11mediatesnernstiansodiumchanneltransportpropertiesinarabidopsisrootstelarcells
AT tomoakihorie athkt11mediatesnernstiansodiumchanneltransportpropertiesinarabidopsisrootstelarcells
AT julianischroeder athkt11mediatesnernstiansodiumchanneltransportpropertiesinarabidopsisrootstelarcells