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PMID: 16513814 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Review

The short-term growth response to salt of the developing barley leaf.

Journal of experimental botany ·Vol. 57 ·No. 5 ·2006-00-00 ·Pages 1079-95

Fricke W, Akhiyarova G, Wei W, Alexandersson E, Miller A, Kjellbom PO, Richardson A, Wojciechowski T, Schreiber L, Veselov D, Kudoyarova G, Volkov V

Abstract

Recent results concerning the short-term growth response to salinity of the developing barley leaf are reviewed. Plants were grown hydroponically and the growth response of leaf 3 was studied between 10 min and 5 d following addition of 100 mM NaCl to the root medium. The aim of the experiments was to relate changes in variables that are likely to affect cell elongation to changes in leaf growth. Changes in hormone content (ABA, cytokinins), water and solute relationships (osmolality, turgor, water potential, solute concentrations), gene expression (water channel), cuticle deposition, membrane potential, and transpiration were followed, while leaf elongation velocity was monitored. Leaf elongation decreased close to zero within seconds following addition of NaCl. Between 20 and 30 min after exposure to salt, elongation velocity recovered rather abruptly, to about 46% of the pre-stress level, and remained at the reduced rate for the following 5 d, when it reached about 70% of the level in non-stressed plants. Biophysical and physiological analyses led to three major conclusions. (i) The immediate reduction and sudden recovery in elongation velocity is due to changes in the water potential gradient between leaf xylem and peripheral elongating cells. Changes in transpiration, ABA and cytokinin content, water channel expression, and plasma membrane potential are involved in this response. (ii) Significant solute accumulation, which aids growth recovery, is detectable from 1 h onwards; growing and non-growing leaf regions and mesophyll and epidermis differ in their solute response. (iii) Cuticular wax density is not affected by short-term exposure to salt; transpirational changes are due to stomatal control.

MeSH Terms
Abscisic Acid/physiology Aquaporins/metabolism Chlorine/metabolism Cytokinins/physiology Hordeum/drug effects,growth & development,metabolism Membrane Potentials Models, Biological Osmolar Concentration Plant Leaves/anatomy & histology,growth & development,metabolism Plant Transpiration/physiology Potassium/metabolism Sodium/metabolism Sodium Chloride/pharmacology Water/metabolism
Chemicals
Aquaporins Cytokinins Water Sodium Chloride Chlorine Abscisic Acid Sodium Potassium
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Fricke Wieland
Division of Biological Sciences, University of Paisley, Paisley PA1 2BE, UK. wieland02fricke@yahoo.co.uk
Akhiyarova Gulya
Wei Wenxue
Alexandersson Erik
Miller Anthony
Kjellbom Per Ola
Richardson Andrew
Wojciechowski Tobias
Schreiber Lukas
Veselov Dima
Kudoyarova Guzel
Volkov Vadim
Article Info
Journal
Journal of experimental botany
Abbr.
J Exp Bot
ISSN
0022-0957
Published
2006-00-00
Epub
2006-00-02
Pages
1079-95
Language
English
Region
England
NLM ID
9882906
Subset
IM
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