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The Physiological Relevance of Na+-Coupled K+-Transport

FJM. Maathuis, D. Verlin, F. A. Smith, D. Sanders, J. A. Fernandez, N. A. Walker
FJM. Maathuis
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D. Verlin
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F. A. Smith
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D. Sanders
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J. A. Fernandez
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N. A. Walker
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Published December 1996. DOI: https://doi.org/10.1104/pp.112.4.1609

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  • Copyright © 1996 by American Society of Plant Biologists

Abstract

Plant roots utilize at least two distinct pathways with high and low affinities to accumulate K+. The system for high-affinity K+ uptake, which takes place against the electrochemical K+ gradient, requires direct energization. Energization of K+ uptake via Na+ coupling has been observed in algae and was recently proposed as a mechanism for K+ uptake in wheat (Triticum aestivum L.). To investigate whether Na+ coupling has general physiological relevance in energizing K+ transport, we screened a number of species, including Arabidopsis thaliana L. Heynh. ecotype Columbia, wheat, and barley (Hordeum vulgare L.), for the presence of Na+-coupled K+ uptake. Rb+-flux analysis and electrophysiological K+-transport assays were performed in the presence and absence of Na+ and provided evidence for a coupling between K+ and Na+ transport in several aquatic species. However, all investigated terrestrial species were able to sustain growth and K+ uptake in the absence of Na+. Furthermore, the addition of Na+ was either without effect or inhibited K+ absorption. The latter characteristic was independent of growth conditions with respect to Na+ status and pH. Our results suggest that in terrestrial species Na+-coupled K+ transport has no or limited physiological relevance, whereas in certain aquatic angiosperms and algae this type of secondary transport energization plays a significant role.

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The Physiological Relevance of Na+-Coupled K+-Transport
FJM. Maathuis, D. Verlin, F. A. Smith, D. Sanders, J. A. Fernandez, N. A. Walker
Plant Physiology Dec 1996, 112 (4) 1609-1616; DOI: 10.1104/pp.112.4.1609

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The Physiological Relevance of Na+-Coupled K+-Transport
FJM. Maathuis, D. Verlin, F. A. Smith, D. Sanders, J. A. Fernandez, N. A. Walker
Plant Physiology Dec 1996, 112 (4) 1609-1616; DOI: 10.1104/pp.112.4.1609
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Plant Physiology
Vol. 112, Issue 4
Dec 1996
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  • Characterization of a Red Beet Protein Homologous to the Essential 36-Kilodalton Subunit of the Yeast V-Type ATPase
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