2002Journal of Experimental BotanyOpen access

Growth‐induced water potentials and the growth of maize leaves

An‐Ching Tang, John S. Boyer

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Abstract

Profiles of water potential (Psi(w)) were measured from the soil through the plant to the tip of growing leaves of fully established maize (Zea mays L.). The profiles revealed gradients in transpiration-induced Psi(w) extending upward along the transpiration path, and growth-induced Psi(w) extending radially between the veins in the elongating region of the leaf base. Water moving upward required a small gradient while that moving radially required a much larger gradient primarily because the protoxylem vessels were encased in many small, undifferentiated cells that were likely to act as a barrier to radial flow. Upon maturation, these small cells enlarged and some began to conduct water, probably decreasing the barrier. In the mature leaf, the growth-induced Psi(w) were absent but the transpiration-induced Psi(w) remained. When leaves were growing, the growth-induced Psi(w) moved water into the elongating cells during the day and night, and it shifted with changes in transpiration-induced Psi(w). The shift involved solutes accumulating in the growing region. When water was withheld, the growth-induced Psi(w) disappeared and leaf elongation ceased even though turgor pressure was at its highest. Turgor was maintained by osmotic adjustment that doubled the osmotic potential of the elongating cells. If elongation resumed at night or with rewatering, the growth-induced Psi(w) reappeared. If pressure was applied to the soil/root system to cause guttation and re-establish the growth-induced Psi(w), elongation resumed immediately. These findings support the hypothesis that the primary control of growth is the disappearance and reappearance of the growth-induced Psi(w) because the potential changed in the xylem and nearby cells, blocking or permitting radial water movement and thus blocking or permitting growth.

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Profiles of water potential (Psi(w)) were measured from the soil through the plant to the tip of growing leaves of fully established maize (Zea mays L.). The profiles revealed gradients in transpiration-induced Psi(w) extending upward along the transpiration path, and growth-induced Psi(w) extending radially between the veins in the elongating region of the leaf base. Water moving upward required a small gradient while that moving radially required a much larger gradient primarily because the protoxylem vessels were encased in many small, undifferentiated cells that were likely to act as a barrier to radial flow. Upon maturation, these small cells enlarged and some began to conduct water, probably decreasing the barrier. In the mature leaf, the growth-induced Psi(w) were absent but the transpiration-induced Psi(w) remained. When leaves were growing, the growth-induced Psi(w) moved water into the elongating cells during the day and night, and it shifted with changes in transpiration-induced Psi(w). The shift involved solutes accumulating in the growing region. When water was withheld, the growth-induced Psi(w) disappeared and leaf elongation ceased even though turgor pressure was at its highest. Turgor was maintained by osmotic adjustment that doubled the osmotic potential of the elongating cells. If elongation resumed at night or with rewatering, the growth-induced Psi(w) reappeared. If pressure was applied to the soil/root system to cause guttation and re-establish the growth-induced Psi(w), elongation resumed immediately. These findings support the hypothesis that the primary control of growth is the disappearance and reappearance of the growth-induced Psi(w) because the potential changed in the xylem and nearby cells, blocking or permitting radial water movement and thus blocking or permitting growth.

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Available abstract

Profiles of water potential (Psi(w)) were measured from the soil through the plant to the tip of growing leaves of fully established maize (Zea mays L.). The profiles revealed gradients in transpiration-induced Psi(w) extending upward along the transpiration path, and growth-induced Psi(w) extending radially between the veins in the elongating region of the leaf base. Water moving upward required a small gradient while that moving radially required a much larger gradient primarily because the protoxylem vessels were encased in many small, undifferentiated cells that were likely to act as a barrier to radial flow. Upon maturation, these small cells enlarged and some began to conduct water, probably decreasing the barrier. In the mature leaf, the growth-induced Psi(w) were absent but the transpiration-induced Psi(w) remained. When leaves were growing, the growth-induced Psi(w) moved water into the elongating cells during the day and night, and it shifted with changes in transpiration-induced Psi(w). The shift involved solutes accumulating in the growing region. When water was withheld, the growth-induced Psi(w) disappeared and leaf elongation ceased even though turgor pressure was at its highest. Turgor was maintained by osmotic adjustment that doubled the osmotic potential of the elongating cells. If elongation resumed at night or with rewatering, the growth-induced Psi(w) reappeared. If pressure was applied to the soil/root system to cause guttation and re-establish the growth-induced Psi(w), elongation resumed immediately. These findings support the hypothesis that the primary control of growth is the disappearance and reappearance of the growth-induced Psi(w) because the potential changed in the xylem and nearby cells, blocking or permitting radial water movement and thus blocking or permitting growth.

Key concepts: Turgor pressure, Transpiration, Elongation, Osmotic pressure, Xylem, Horticulture, Water flow, Transpiration stream

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