310 results on '"Fricke, Wieland"'
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2. Climate change does not impact the water flow of barley at the vegetative stage, ameliorates at anthesis and worsens after subsequent drought episodes
3. Salinity and night-time transpiration under current climate scenarios
4. Plant Aquaporins and Cell Elongation
5. Aquaporins and Root Water Uptake
6. Diurnal changes in apoplast bypass flow of water and ions in salt‐stressed wheat (Triticum aestivum L.) and barley (Hordeum vulgare L.)
7. Salt Stress—Regulation of Root Water Uptake in a Whole-Plant and Diurnal Context
8. Rapid changes in root hydraulic conductivity and aquaporin expression in rice ( Oryza sativa L.) in response to shoot removal – xylem tension as a possible signal
9. Exogenous application of abscisic acid (ABA) increases root and cell hydraulic conductivity and abundance of some aquaporin isoforms in the ABA-deficient barley mutant Az34
10. Root Aquaporins
11. Changes in root hydraulic conductivity in wheat ( Triticum aestivum L.) in response to salt stress and day/night can best be explained through altered activity of aquaporins
12. Does night‐time transpiration provide any benefit to wheat ( Triticum aestivum L.) plants which are exposed to salt stress?
13. The significance of water co-transport for sustaining transpirational water flow in plants : a quantitative approach
14. Effect of Salinity on Stomatal Conductance, Leaf Hydraulic Conductance, HvPIP2 Aquaporin, and Abscisic Acid Abundance in Barley Leaf Cells
15. Do root hydraulic properties change during the early vegetative stage of plant development in barley (Hordeum vulgare)?
16. Plant Aquaporins and Cell Elongation
17. Aquaporins and Root Water Uptake
18. Solute and Water Relations of Growing Plant Cells
19. Aquaporin-facilitated water uptake in barley (Hordeum vulgare L.) roots
20. Developmental pattern of aquaporin expression in barley (Hordeum vulgare L.) leaves
21. In planta function of compatible solute transporters of the AtProT family
22. Water uptake by seminal and adventitious roots in relation to whole-plant water flow in barley (Hordeum vulgare L.)
23. Root pressure and a solute reflection coefficient close to unity exclude a purely apoplastic pathway of radial water transport in barley (Hordeum vulgare)
24. Turgor-regulation during extension growth and osmotic stress of maize roots. An example of single-cell mapping
25. Cloning and expression analysis of candidate genes involved in wax deposition along the growing barley (Hordeum vulgare) leaf
26. Cuticular permeance in relation to wax and cutin development along the growing barley (Hordeum vulgare) leaf
27. Water permeability differs between growing and non-growing barley leaf tissues
28. The short-term growth response to salt of the developing barley leaf
29. Cuticular wax deposition in growing barley (Hordeum vulgare) leaves commences in relation to the point of emergence of epidermal cells from the sheaths of older leaves
30. Solute sorting in grass leaves: the transpiration stream
31. Rapid and tissue-specific accumulation of solutes in the growth zone of barley leaves in response to salinity
32. Rapid and tissue-specific changes in ABA and in growth rate in response to salinity in barley leaves
33. Biophysical Limitation of Cell Elongation in Cereal Leaves
34. Biophysical limitation of leaf cell elongation in source-reduced barley
35. Limitation of Cell Elongation in Barley (Hordeum vulgare L.) Leaves Through Mechanical and Tissue-Hydraulic Properties
36. Apoplast Acidification in Growing Barley (Hordeum vulgare L.) Leaves
37. Control of leaf cell elongation in barley. Generation rates of osmotic pressure and turgor, and growth-associated water potential gradients
38. Why do leaves and leaf cells of N-limited barley elongate at reduced rates?
39. Cell turgor, osmotic pressure and water potential in the upper epidermis of barley leaves in relation to cell location and in response to NaCl and air humidity
40. Turgor-regulation during extension growth and osmotic stress of maize roots. An example of single-cell mapping
41. The intercellular distribution of vacuolar solutes in the epidermis and mesophyll of barley leaves changes in response to NaCl
42. Chapter Nine - Salinity and night-time transpiration under current climate scenarios.
43. A redundant hydraulic function of root hairs in barley plants grown in hydroponics
44. Plant Single Cell Sampling
45. Single-Cell Sampling and Analysis (SiCSA)
46. The biophysics of leaf growth in salt-stressed barley. A study at the cell level (1)
47. Salt stress reduces root water uptake in barley (Hordeum vulgare L.) through modification of the transcellular transport path
48. Photosynthetically active radiation impacts significantly on root and cell hydraulics in barley (Hordeum vulgareL.)
49. HvPIP1;6, a Barley (Hordeum vulgare L.) Plasma Membrane Water Channel Particularly Expressed in Growing Compared with Non-Growing Leaf Tissues
50. Vacuolar solutes in the upper epidermis of barley leaves: Intercellular differences follow patterns
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