fusicoccin has been researched along with cesium-chloride* in 1 studies
1 other study(ies) available for fusicoccin and cesium-chloride
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Limitation of Cell Elongation in Barley (Hordeum vulgare L.) Leaves Through Mechanical and Tissue-Hydraulic Properties.
The aim of the present study was to assess the mechanical and hydraulic limitation of growth in leaf epidermal cells of barley (Hordeum vulgare L.) in response to agents which affect cellular water (mercuric chloride, HgCl(2)) and potassium (cesium chloride, CsCl; tetraethylammonium, TEA) transport, pump activity of plasma membrane H(+)-ATPase and wall acidification (fusicoccin, FC). Cell turgor (P) was measured with the cell pressure probe, and cell osmotic pressure (π) was analyzed through picoliter osmometry of single-cell extracts. A wall extensibility coefficient (M) and tissue hydraulic conductance coefficient (L) were derived using the Lockhart equation. There was a significant positive linear relationship between relative elemental growth rate and P, which fit all treatments, with an overall apparent yield threshold of 0.368 MPa. Differences in growth between treatments could be explained through differences in P. A comparison of L and M showed that growth in all except the FC treatment was co-limited through hydraulic and mechanical properties, though to various extents. This was accompanied by significant (0.17-0.24 MPa) differences in water potential (ΔΨ) between xylem and epidermal cells in the leaf elongation zone. In contrast, FC-treated leaves showed ΔΨ close to zero and a 10-fold increase in L. Topics: Algorithms; Biological Transport; Biomechanical Phenomena; Cell Enlargement; Cell Membrane; Cell Wall; Cesium; Chlorides; Glycosides; Hordeum; Hydrogen-Ion Concentration; Kinetics; Mercuric Chloride; Models, Biological; Osmotic Pressure; Plant Epidermis; Plant Leaves; Plant Transpiration; Proton-Translocating ATPases; Tetraethylammonium; Water | 2015 |