Evidence on the mechanism of enhanced sucrose uptake at low cell turgor in leaf discs of Phaseolus coccinius
- 1 August 1985
- journal article
- research article
- Published by Wiley in Physiologia Plantarum
- Vol. 64 (4) , 547-552
- https://doi.org/10.1111/j.1399-3054.1985.tb08537.x
Abstract
Plants often tolerate water deficits by lowering the osmotic potential of their cell sap. This may be achieved by accumulation of solutes which results in the maintenance of a positive turgor potential. In this study, the effect of water deficit on sugar uptake was investigated in leaf discs of Phaseolus coccinius L. (cv. Scarlet). Evidence is presented that cell turgor affects the kinetics of sugar transport at the membrane level. Uptake kinetics of sucrose, glucose and 3‐O‐methyl glucose by tissues equilibrated in solutions of relatively high (200–400 mOsm) osmotic concentration consisted of a sat‐urable and a linear component. Low external osmotic concentration i.e., high cellular turgor inhibited the saturating component of sucrose uptake, resulting in a linear uptake profile. However, high cell turgor had no effect on glucose or 3‐O‐methyl glucose uptake kinetics. The effect of turgor versus osmotic component of water potential was differentiated by comparing responses to non‐penetrating (manmtol) or polyethylene glycol, (3350) and penetrating (ethylene glycal) osmotica. Changes in sucrose uptake rates and kinetics were due to changes in cellular turgor and not osmotic potential. Furthermore, at low cellular turgor, a net increase in sucrose uptake occurred as a consequence of enhanced influx rates and not as a result of reduced efflux rates. The data are consistent with previous findings that sugar uptake rates are enhanced under low turgor. We present first evidence indicating that the mechanism by which higher rates of sucrose uptake are maintained underwater deficit conditions is by the activation of the saturable transport system. This mechanism supports previous suggestions that changes in cell turgor are sensed and manifested at the membrane level.Keywords
This publication has 23 references indexed in Scilit:
- Sugar transport in leaf discs of Phaseolus cocciniusPhysiologia Plantarum, 1985
- Effects of Water Stress on Photosynthesis and Carbon Partitioning in Soybean (Glycine max [L.] Merr.) Plants Grown in the Field at Different CO2 LevelsPlant Physiology, 1984
- Turgor‐ dependent membrane permeability in relation to calcium levelPhysiologia Plantarum, 1983
- Sucrose Uptake and Compartmentation in Sugar Beet Taproot TissuePlant Physiology, 1983
- Sucrose and Glucose Uptake into Beta vulgaris Leaf TissuesPlant Physiology, 1982
- Characterization of the Active Sucrose Transport System of Immature Soybean EmbryosPlant Physiology, 1982
- A Reanalysis of the Two-Component Phloem Loading System in Beta vulgarisPlant Physiology, 1982
- Relative Sensitivity of Photosynthetic Assimilation and Translocation of 14Carbon to Water StressPlant Physiology, 1979
- Sugar Selectivity and Other Characteristics of Phloem Loading in Beta vulgaris L.Plant Physiology, 1977
- Transport of Amino Acids in Barley Leaf TissueJournal of Experimental Botany, 1970