Root Plasma Membrane Transporters Controlling K+/Na+ Homeostasis in Salt-Stressed Barley
Author(s) -
ZhongHua Chen,
Igor Pottosin,
Tracey Ann Cuin,
Anja T. Fuglsang,
Mark Tester,
Deepa Jha,
Isaac ZepedaJazo,
Meixue Zhou,
Michael Palmgren,
Ian Newman,
Sergey Shabala
Publication year - 2007
Publication title -
plant physiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.554
H-Index - 312
eISSN - 1532-2548
pISSN - 0032-0889
DOI - 10.1104/pp.107.110262
Subject(s) - salinity , hordeum vulgare , cytosol , hordeum , biophysics , depolarization , biology , membrane , membrane potential , ion transporter , salt (chemistry) , chemistry , biochemistry , botany , microbiology and biotechnology , enzyme , poaceae , ecology
Plant salinity tolerance is a polygenic trait with contributions from genetic, developmental, and physiological interactions, in addition to interactions between the plant and its environment. In this study, we show that in salt-tolerant genotypes of barley (Hordeum vulgare), multiple mechanisms are well combined to withstand saline conditions. These mechanisms include: (1) better control of membrane voltage so retaining a more negative membrane potential; (2) intrinsically higher H(+) pump activity; (3) better ability of root cells to pump Na(+) from the cytosol to the external medium; and (4) higher sensitivity to supplemental Ca(2+). At the same time, no significant difference was found between contrasting cultivars in their unidirectional (22)Na(+) influx or in the density and voltage dependence of depolarization-activated outward-rectifying K(+) channels. Overall, our results are consistent with the idea of the cytosolic K(+)-to-Na(+) ratio being a key determinant of plant salinity tolerance, and suggest multiple pathways of controlling that important feature in salt-tolerant plants.
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