Root Plasma Membrane Transporters Controlling K+/Na+ Homeostasis in Salt-Stressed Barley

Author:

Chen Zhonghua1,Pottosin Igor I.1,Cuin Tracey A.1,Fuglsang Anja T.1,Tester Mark1,Jha Deepa1,Zepeda-Jazo Isaac1,Zhou Meixue1,Palmgren Michael G.1,Newman Ian A.1,Shabala Sergey1

Affiliation:

1. School of Agricultural Science (Z.C., T.A.C., S.S.) and School of Mathematics and Physics (I.A.N.), University of Tasmania, Hobart, Tasmania 7001, Australia; Centro Universitario de Investigaciones Biomédicas, Universidad de Colima, Colima 28045, Mexico (I.I.P., I.Z.-J.); Department of Plant Biology, University of Copenhagen, DK–1871 Frederiksberg C, Denmark (A.T.F., M.G.P.); Australian Centre f

Abstract

Abstract 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 Ca2+. At the same time, no significant difference was found between contrasting cultivars in their unidirectional 22Na+ 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.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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