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1.
Barley (Hordeum vulgare L. cv Halcyon) seedlings which had been grown in full strength complete inorganic nutrient media (containing 6 millimolar K+) had high internal K+ concentrations and low values of K+ (86Rb+) influx when influx was measured from solutions containing 100 micromolar K+. Transfer of these plants to solutions lacking K+ resulted in significant reductions of root and shoot K+ concentrations and values of K+ (86Rb+) influx increased by greater than 10-fold within 3 days. When plants treated in this way were returned to complete solutions, containing K+, the changes induced by K+ deprivation were reversed. Parallel studies of microsomal membranes by means of SDS-PAGE demonstrated that the expression of a group of polypeptides increased or decreased in parallel with changes of K+ (86Rb+) influx. Most prominent of these were 45 and 34 kilodalton polypeptides which specifically responded to K+ status of the barley plants; their expression was not enhanced by N or P deprivation. The 45 kilodalton polypeptide was susceptible to degradation by a membrane associated protease when microsomes were washed in buffer containing 0.2 millimolar PMSF. This loss was prevented by increasing PMSF concentration to 2 millimolar.  相似文献   

2.
Summary The influence of K+ ions on the net Na+ fluxes in cells of excised barley roots (Hordeum distichon L.) and roots of whole barley plants was investigated. The fluxes were determined by flame photometry in the external solution. In both cases a transient net Na+ efflux against the external Na+ concentration was observed upon addition of K+. The results stress the effectiveness of the K+-dependent Na+ efflux mechanism residing at the plasmalemma, and its involvement in K–Na-selectivity in whole barley plants.  相似文献   

3.
Summary Barley roots grown on a nutrient solution containing 1 mM Na+ but no K+ are capable of a considerable Na+ transport via the symplasm of the root and the xylem vessels. K+ added to the medium surrounding the root cortex severely inhibits this transport after a lag period at a high rate constant (Fig. 3).It is likely that the fluxes of Na+ are changed drastically during this transition from low to high K+ status. Although originally limited to steady state fluxes, the extended method of efflux analysis for excised roots (Pitman, 1971) has been applied to the non-steady fluxes which occur upon the addition of K+ to the roots. It is shown that besides other changes the efflux of 22Na+ through the cortex of barley roots is stimulated instantaneously (Fig. 5) by the addition of K+ and presumably by an influx of K+ ions. From this a transient, K+-stimulated Na+ efflux at the plasmalemma of the cortical cells can be estimated. It amounts to 10.9 moles/g fw · h compared to the control efflux of 3.3 moles/g fw · h without K+.The stimulated efflux is attributed to a Na+ efflux pump at the plasmalemma and is thus related to the K-Na-selectivity of barley plants. The inhibition of the Na+ transport by K+ is probably a consequence of this increased efflux of Na+ from the symplasm through the root cortex.  相似文献   

4.
The effect of salt stress on the incorporation of [35S]methionine into protein was examined in roots of barley (Hordeum vulgare L. cv California Mariout 72). Plants were grown in nutrient solution with or without 200 millimolar NaCl. Roots of intact plants were labeled in vivo and proteins were extracted and analyzed by fluorography of two-dimensional gels. Although the protein patterns for control and salt-stressed plants were qualitatively similar, the net synthesis of a number of proteins was quantitatively changed. The most striking change was a significant increase of label in two protein pairs that had pIs of approximately 6.3 and 6.5. Each pair consisted of proteins of approximately 26 and 27 kilodaltons (kD). In roots of control plants, the 27-kD proteins were more heavily labeled in the microsomal fraction relative to the 26-kD proteins, whereas the 26-kD proteins were enriched in the post 178,000 g supernatant fraction; in roots of salt treated plants, the 26- and 27-kD proteins were more intensely labeled in both fractions. Labeling of the 26- and 27-kD proteins returned to control levels when salt-stressed plants were transferred to nutrient solution without NaCl. No cross-reaction was detected between the antibody to the 26-kD protein from salt-adapted tobacco cells and the 26- and 27-kD proteins of barley.  相似文献   

5.
Sylvia Lindberg 《Planta》1995,195(4):525-529
The tetra[acetoxymethyl] ester of the K+-binding fluorescent dye benzofuran isophthalate (PBFI-AM) was used to determine changes in intracellular potassium (K+) concentrations and to measure net transport of K+ in barley (Hordeum vulgare L. cv. Kara) root and leaf protoplasts. When this dye binds to free K+ inside the cytoplasm, the fluorescence intensity ratio 340/380 nm increases in direct relation to the K+ concentration. Because of a delay in the uptake of dye into the vacuoles, it is possible to determine K+ concentrations in the vacuoles and transport of K+ from the cytoplasm into the vacuole. The uptake of PBFI-AM in root and leaf protoplasts of barley differed in the absence or presence of external K+ and was faster at pH 5.5 than at pH 7.0. The fluorescence intensity of the dye was stable for at least 20 h when the protoplasts were kept at 4°C. In the presence of nigericin, the fluorescence intensity of both cells and protoplasts was linearly related to the external concentration of K+ (up to 100 mM).  相似文献   

6.
By means of a modified Michaelis-Menten equation for K+ influx, which includes terms for root and external K+ concentrations (root [K+] and [K+]0, respectively) it is possible to predict the manner in which short-term (perturbation) fluxes of K+ into roots of barley plants (Hordeum vulgare cv Fergus) vary with root [K+] and [K+]0. Influx values derived from this equation were used to predict changes of root and shoot [K+] and K+ absorption rates (as functions of time and [K+]0) from a knowledge of K+ efflux, relative growth rates of roots and shoots, and the partitioning of absorbed K+ between these organs. A microcomputer program was employed to model these changes in low-salt plants following transfer to solutions in which [K+]0 was maintained at values ranging from 5 to 1000 millimoles per cubic meter. The model was operated on the basis of 10 minute absorption periods which provided data for continuous `updating' of tissue [K+]. The simulations were undertaken for periods corresponding to 30 days. During this time the model accurately predicted the manner in which K+ influx and root and shoot [K+] gradually approach values which are essentially independent of [K+]0. The computer program was also used to predict the outcome of changing various external and internal parameters of the proposed regulatory system. The results of these simulations are discussed in the context of current models for negative feedback control of ion fluxes.  相似文献   

7.
8.
The classic compartment analysis of ion efflux from roots is often applied with the assumption that there is a system of 3 compartments in series. However, complex ion transport across the root tissues, as well as influences from the shoot, may complicate the picture. The present experiments were performed to study the immediate effects that excision of the shoot before the experiment exerts on the efflux of Rb+(86Rb+) and of K+(86Rb+) from 9-day-old roots of plants of barley (Hordeum vulgare L. cv. Salve). The efflux from high K+ and low K+ roots of intact and detopped plants were compared. After excision of the shoot of high K+ plants, a marked increase in efflux was observed after 2.5 h with a maximum at about 7 h. The increase in efflux was seen as a peak in plots of efflux versus time. Excision of the shoot from low K+ roots did not give rise to a consistent increase in efflux. Regular K+ ion efflux curves were observed from roots of intact plants of high or low K+ status. Furthermore, after a pulse treatment of 9-day-old roots of intact plants of high or low K+ status with a solution containing Rb+(86Rb+), the Rb+(86Rb+) transport to the shoots was not reduced during the following 3 h in unlabelled solution. It is suggested that both the peak appearing in the efflux plots and the maintained tracer transport to the shoots after transfer of the roots to an unlabelled solution indicate the existence of a K+/Rb+ transport system in the symplasm of the roots that has only a slow exchange with the bulk cytoplasm and vacuoles.  相似文献   

9.
Close coupling between extrusion of H+ and uptake of K+ by barley roots   总被引:1,自引:0,他引:1  
Rudolf Behl  Klaus Raschke 《Planta》1987,172(4):531-538
Extrusion of H+ by intact barley (Hordeum vulgare L.) roots was automatically titrated. Simultaneously, uptake of K+ into the roots, transport of K+ through the roots, and (as a residual term) accumulation of K+ within the root tissue were determined. When no monovalent cation was present in the medium the steady rate of H+ release was close to zero. Addition of K+ stimulated H+ extrusion within less than 1 min. The stimulation of H+ release was apparently limited only by the movement of K+ through the apoplast of the roots. The steady rate of H+ extrusion depended on the availability of external K+ and saturated at a K+ concentration of about 100 mol· dm-3. Half-maximum rates of net K+ uptake and H+ extrusion were reached at a K+ concentration of about 10 mol·dm-3. With (slowly absorbable) sulfate as the only anion present, the stoichoimetry between H+ release and net K+ uptake was one. In conclusion, the uptake of K+ across the plasmalemma of the cells of the root cortex is electrically coupled to H+ extrusion.  相似文献   

10.
The movement of Samanea saman (Jacq.) Merrill leaflets is a consequence of the re-distribution of K+ and anions between motor cells on opposite sides of the pulvinus. We used a K+-sensitive microelectrode to study dynamic changes in K+ transport through motor-cell membranes during and immediately after change in illumination. Potassium-ion-sensitive and reference microelectrodes were inserted into extensor or flexor tissue of a whole pulvinus in white light (WL). A brief pulse of red light (RL) followed by darkness (D) (a) increased K+ activity in the extensor apoplast, indicating K+ release by the protoplast; and (b) decreased K+ activity in the flexor apoplast, indicating K+ uptake by the protoplast. White light after 35–40 min D reversed K+ activity in the extensor apoplast to approximately its original value. Blue light substituted partially for WL in this regard. Potassium-ion activity in the flexor apoplast reverted to approximately its original value after 2 h, with or without white illumination. Our data support the hypothesis that K+ efflux from extensor cells and K+ uptake by flexor cells following a WLRLD transition occurs by way of K+ channels.Abbreviations L light - WL white light - RL red light - BL blue light - D darkness  相似文献   

11.
Hiatt AJ 《Plant physiology》1970,45(4):411-414
Excised barley roots accumulated 40 to 50% more K+ from 0.04 mm than from 0.06 mm KCl when incubated for 24 hours in KCl solutions containing 0.2 mm CaSO4. This phenomenon was not markedly influenced by the rate of absorption of the counteranion. The presence of Na+ in the treatment solutions decreased total K accumulation but did not alter the K+ concentration at which the accumulation peak occurred. Short interval studies indicated that this phenomenon is easily observable after 4 hours and begins to become apparent within 2 hours. In comparison with barley, accumulation of K+ by excised wheat roots decreased as KCl concentration was increased from 0.02 to 0.06 mm; but K+ accumulation curve for corn roots showed no peaks or depressions in the concentration range of 0.01 to 0.1 mm. A normal hyperbolic curve was noted for the accumulation of Na+ from 0.01 to 1 mm NaCl by barley roots.  相似文献   

12.
Calcium inhibition of potassium absorption in corn roots   总被引:10,自引:9,他引:1       下载免费PDF全文
Elzam OE  Hodges TK 《Plant physiology》1967,42(11):1483-1488
Calcium (or magnesium) sulfate or chloride was found to inhibit energy dependent potassium transport in excised corn roots. This Ca2+ inhibition of K+ transport was most pronounced during the initial phases of transport. As the absorption periods were lengthened the effect of Ca2+ gradually changed from an inhibition to a typical promotion (after about 30-45 mins) of K+ transport. Kinetic analysis indicated the inhibition to be of a non-competitive nature.

Identical experiments with excised barley roots showed that CaSO4 had no effect on K+ absorption whereas CaCl2 had a typical stimulatory effect on K+ absorption. Kinetic analysis indicated that both corn and barley have efficient K+ transporting systems but barley roots are approximately 5 times more active (on a fr wt basis) than corn roots.

These results illustrate the hazards involved in applying results obtained with 1 (or even several) plant species to all species.

  相似文献   

13.
High-temperature-induced deficiency of plastid ribosomes in barley plants (Hordeum vulgare L.) was used as a system for studying the role of the cytoplasm in the synthesis of the NADPH-protochlorophyllide oxidoreductase. The enzyme is present in 33° C-grown plants. The failure of high-temperature-grown plants to accumulate chlorophyll during illumination is not caused by the absence of the protochlorophyllide-reducing enzyme. The synthesis of the NADPH-protochlorophyllide oxidoreductase was studied by feeding [35S]methionine to the seedling and by following the incorporation of the radioactively labeled amino acid into plastid proteins. The NADPH-protochlorophyllide oxidoreductase was labeled in high-temperature-grown barley plants to the same extent as in control plants grown at 25° C. It is concluded that the 36,000-Mr polypeptide of the NADPH-protochlorophyllide oxidoreductase is synthesized outside the plastid on cytoplasmic 80S ribosomes.  相似文献   

14.
H+-ATPase activity of a plasma membrane-enriched fraction decreased after the treatment of barley (Hordeum vulgare) seedlings with Al for 5 days. A remarkably high level of Al was found in the membrane fraction of Al-treated roots. A long-term effect of Al was identified as the repression of the H+-ATPase of plasma membranes isolated from the roots of barley and wheat (Triticum aestivum) cultivars, Atlas 66 (Al-tolerant) and Scout 66 (Al-sensitive). To monitor short-term effects of Al, the electrical membrane potentials across plasma membranes of both wheat cultivars were compared indirectly by measuring the efflux of K+ for 40 min under various conditions. The rate of efflux of K+ in Scout was twice that in Atlas at low pH values such as 4.2. Vanadate, an inhibitor of the H+-ATPase of the plasma membrane, increased the efflux of K+. Al repressed this efflux at low pH, probably through an effect on K+ channels, and repression was more pronounced in Scout. Al strongly repressed the efflux of K+ irrespective of the presence of vanadate. Ca2+ also had a repressive effect on the efflux of K+ at low pH. The effect of Ca2+, greater in Scout, might be related to the regulation of the net influx of H+, since the effect was negated by vanadate. The results suggest that extracellular low pH may cause an increase in the influx of H+, which in turn is counteracted by the efflux of K+ and H+. These results suggest that the ability to maintain the integrity of the plasma membrane and the ability to recover the electrical balance at the plasma membrane through a net influx of H+ and the efflux of K+ seem to participate in the mechanism of tolerance to Al stress under acidic conditions.  相似文献   

15.
Salt stress is considered to be a major limiting factor for plant growth and crop productivity. Salt injuries in plants are mostly due to excess Na+ entry. A possible survival strategy of plants under saline environments is the effective compartmentation of excess Na+ by sequestering Na+ in roots and inhibiting transport of Na+ from roots to shoots. Our previous study showed that exogenous application of polyamines (PAs) could attenuate salt injuries in barley plants. In order to further understand such protective roles of PAs against salt stress, the effects of spermidine (Spd) on sodium and potassium distribution in barley (Hordeum vulgare L.) seedlings under saline conditions were investigated. The results showed that exogenous application of Spd induced reductions in Na+ levels in roots and shoots with comparison of NaCl-treated plants, while no significant changes in K+ levels were observed. Correspondingly, the plants treated with Spd exogenously maintained high values of [K+]/[Na+] as compared with salt-stressed plants. Moreover, it was shown by X-ray microanalysis that K+ and Na+ accumulated mainly in the exodermal intercellular space and cortical cells of roots under salinity stress, and low accumulation was observed in endodermal cells and stelar parenchyma, indicating Casparian bands possibly act as ion transport barriers. Most importantly, Spd treatment further strengthened this barrier effects, leading to inhibition of Na+ transport into shoots. These results suggest that, by reinforcing barrier effects of Casparian bands, exogenous Spd inhibits Na+ transport from roots to shoots under conditions of high salinity which are beneficial for attenuating salt injuries in barley seedlings.  相似文献   

16.
Seedlings of eleven varieties of barley (Hordeum vulgare L.) showed differences in utilization of K+ from a full nutrient solution containing 3.0 mM K+. The K+ content of both roots and shoots was proportional to the fresh weights and dry weights after a week in the nutrient solution. The K+ use-efficiency ratio, which indicates the efficiency of nutrient utilization (mg dry weight produced per mg K+ absorbed), differed significantly among the varieties. There was no correlation between influx of Rb+ and the content of K+. It is suggested that there are wide varietal differences in such genetically-determined properties as ion influx and efflux and net ion transport to the shoot. Further-more, the influx of Rb+ was closely linked to transpiration, probably due to a variety-specific non-metabolic part of Rb+ influx. Varietal differences in influx of Rb+ were more pronounced in high-K+ roots than in low-K+ roots with maximum rate of Rb+ uptake, but the rank of varieties was the same in each case. – Criteria for the selection of K+ use-efficient varieties of barley are discussed.  相似文献   

17.
Using excised low-salt roots of barley and Atriplex hortenslsthe transport of endogenous potassium through the xylem vesselswas studied It was enhanced by nitrate and additionally by sodiumions which apparently replaced vacuolar potassium which wasthen available in the symplasm of root cells for transport tothe shoot Vacuolar Na/K exchange also has been investigatedby measurements of longitudinal ion profiles in single rootsof both species. In Atriplex roots a change in the externalsolution from K+ to Na+ induced an exchange of vacuolar K+ forNa+, in particular in the subapical root tissues and led toincreased K+ transport and loss of K+ from the cortex. In inverseexperiments a change from Na+ to K+ did not induce an exchangeof vacuolar Na+; merely in meristematic tissues Na+—apparentlyfrom the cytoplasm—was extruded in exchange for K+. Inroots of barley seedlings without caryopsis, as in excised roots,a massive exchange of K+ for Na+ was observed in the continuouspresence of external 1.0 mM Na and 0.2 mM K. This exchange alsowas attributed to the vacuole and was most pronounced in theyoung subapical tissues. It did not occur, however, in the correspondingtissues in roots of fully intact barley seedlings. In these,the young tissues retained a relatively high K/Na ratio alsoin their vacuoles. Similarly, contrasting results were obtainedwith intact and excised roots of Zea mays L. Based on theseresults a scheme of the events that lead to selective cationuptake in intact barley roots is proposed. In this scheme acrucial factor of selectivity is sufficient phloem recirculationof K+ by the aid of which K+ rich cortical cells are formednear the root tip. When matured these cells are suggested tomaintain a high cytoplasmic K/Na ratio due to K+ dependent sodiumextrusion at the plasmalemma and due to recovery of vacuolarK+ by Na/K exchange across the tonoplast. Key words: Potassium/Sodium selectivity, Vacuolar exchange, Xylem transport, Hordeum, Zea, Atriplex  相似文献   

18.
The involvement of potassium (K+)-selective, Shaker-type channels, particularly AKT1, in primary K+ acquisition in roots of higher plants has long been of interest, particularly in the context of low-affinity K+ uptake, at high K+ concentrations, as well as uptake from low-K+ media under ammonium (NH4+) stress. We recently demonstrated that K+ channels cannot mediate K+ acquisition in roots of intact barley (Hordeum vulgare L.) seedlings at low (22.5 µM) external K+ concentrations ([K+]ext) and in the presence of high (10 mM) external NH4+, while the model species Arabidopsis thaliana L. utilizes channels under comparable conditions. However, when external NH4+ was suddenly withdrawn, a thermodynamic shift to passive (channel-mediated) K+ influx was observed in barley and both species demonstrated immediate and dramatic stimulations in K+ influx, illustrating a hitherto unexplored magnitude and rapidity of K+-uptake capacity and plasticity. Here, we expand on our previous work by offering further characterization of channel-mediated K+ fluxes in intact barley, with particular focus on anion effects, root respiration and pharmacological sensitivity and highlight key additions to the current model of K+ acquisition.  相似文献   

19.
Glass AD 《Plant physiology》1978,61(4):481-483
The influx of K+ from 86Rb-labeled solutions in the concentration range 0.008 to 0.2 mm into roots of intact plants and excised roots of barley plants (Hordeum vulgare [L.]) previously grown in 5 mm CaSO4 (low K+ roots) or 0.5 mm CaSO4 plus 5 mm KCl (high K+ roots) was measured. A consistent observation of these experiments was a substantial reduction of influx (usually by about 50%) following excision. The possible leakage of K+ into the medium and subsequent dilution of specific activity of labeled solutions was eliminated as an explanation for influx reduction in excised low K+ roots. Reduction of transpirational rates was also without effect upon influx into low K+ roots. Excision followed by 2 hours aging in 0.5 mm CaSO4 solution revealed that influx values recovered within the 2 hours to the values obtained in intact roots. It is concluded that much of the literature which describes the enhancement of ion uptake following excision actually describes excision damage followed by recovery.  相似文献   

20.
The endosomal LeNHX2 ion transporter exchanges H+ with K+ and, to lesser extent, Na+. Here, we investigated the response to NaCl supply and K+ deprivation in transgenic tomato (Solanum lycopersicum L.) overexpressing LeNHX2 and show that transformed tomato plants grew better in saline conditions than untransformed controls, whereas in the absence of K+ the opposite was found. Analysis of mineral composition showed a higher K+ content in roots, shoots and xylem sap of transgenic plants and no differences in Na+ content between transgenic and untransformed plants grown either in the presence or the absence of 120 mm NaCl. Transgenic plants showed higher Na+/H+ and, above all, K+/H+ transport activity in root intracellular membrane vesicles. Under K+ limiting conditions, transgenic plants enhanced root expression of the high‐affinity K+ uptake system HAK5 compared to untransformed controls. Furthermore, tomato overexpressing LeNHX2 showed twofold higher K+ depletion rates and half cytosolic K+ activity than untransformed controls. Under NaCl stress, transgenic plants showed higher uptake velocity for K+ and lower cytosolic K+ activity than untransformed plants. These results indicate the fundamental role of K+ homeostasis in the better performance of LeNHX2 overexpressing tomato under NaCl stress.  相似文献   

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