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Low carbon dioxide concentrations can reverse stomatal closure during water stress
Author(s) -
Bunce James A.
Publication year - 2007
Publication title -
physiologia plantarum
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.351
H-Index - 146
eISSN - 1399-3054
pISSN - 0031-9317
DOI - 10.1111/j.1399-3054.2007.00937.x
Subject(s) - stomatal conductance , transpiration , carbon dioxide , xylem , herbaceous plant , chemistry , horticulture , vapour pressure deficit , botany , agronomy , photosynthesis , biology , organic chemistry
Leaf water potentials below threshold values result in reduced stomatal conductance (g s ). Stomatal closure at low leaf water potentials may serve to protect against cavitation of xylem. Possible control of g s by leaf water potential or hydraulic conductance was tested by drying the rooting medium in four herbaceous annual species until g s was reduced and then lowering the [CO 2 ] to determine whether g s and transpiration rate could be increased and leaf water potential decreased and whether hydraulic conductance was reduced at the resulting lower leaf water potential. In all species, low [CO 2 ] could reverse the stomatal closure because of drying despite further reductions in leaf water potential, and the resulting lower leaf water potentials did not result in reductions in hydraulic conductance. The relative sensitivity of g s to internal [CO 2 ] in the leaves of dry plants of each species averaged three to four times higher than in leaves of wet plants. Two species in which g s was reputed to be insensitive to [CO 2 ] were examined to determine whether high leaf to air water vapor pressure differences (D) resulted in increased stomatal sensitivity to [CO 2 ]. In both species, stomatal sensitivity to [CO 2 ] was indeed negligible at low D, but increased with D, and low [CO 2 ] partly or fully reversed closure caused by high D. In no case did low leaf water potential or low hydraulic conductance during drying of the air or the rooting medium prevent low [CO 2 ] from increasing g s and transpiration rate.

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