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1.
Summary It is shown that the ouabain-resistant (OR) furosemide-sensitive K+(Rb+) transport system performs a net efflux of K+ in growing mouse 3T3 cells. This conclusion is based on the finding that under the same assay conditions the furosemidesensitive K+(Rb+) efflux was found to be two- to threefold higher than the ouabain-resistant furosemide-sensitive K+(Rb+) influx. The oubain-resistant furosemide-sensitive influxes of both22Na and86Rb appear to be Cl dependent, and the data are consistent with coupled unidirectional furosemide-sensitive influxes of Na+, K+ and Cl with a ratio of 1 1 2. However, the net efflux of K+ performed by this transport system cannot be coupled to a ouabain-resistant net efflux of Na+ since the unidirectional ouabain-resistant efflux of Na+ was found to be negligible under physiological conditions. This latter conclusion was based on the fact that practically all the Na+ efflux appears to be ouabainsensitive and sufficient to balance the Na+ influx under such steady-state conditions. Therefore, it is suggested that the ouabain-resistant furosemide-sensitive transport system in growing cells performs a facilitated diffusion of K+ and Na+, driven by their respective concentration gradients: a net K+ efflux and a net Na+ influx.  相似文献   

2.
Jaleh Daie 《Planta》1987,171(4):474-482
The uptake of different sugars was studied in segments of isolated phloem from petioles of celery (Apium graveolens L.) in order to determine the kinetics and specificity of phloem loading in this highly uniform conductive tissue. The uptake kinetics of sucrose and the sugar alcohol, mannitol, which are both phloem-translocated, indicated presence of a single saturable system, while uptake of non-phloem sugars (glucose and 3-O-methylglucose) exhibited biphasic kinetics with lower uptake rates than those for sucrose and mannitol. The presence of unlabeled mannitol, 3-O-methylglucose and maltose in the incubation solution did not cause inhibition of labeled-sucrose uptake, indicating high carrier specificity and lack of sucrose hydrolysis in vivo. The pH optimum for sucrose uptake was 5–6. Furthermore, a rapid and transient alkalinization of the external media by sucrose indicated a sugar/H+-cotransport mechanism. Dual-labeling experiments showed that sucrose influx continued at a constant rate (V max=15 mol·h-1·(g FW)-1), whereas sucrose efflux was low and insensitive to external concentration. Therefore, the saturable uptake kinetics for sucrose did not appear to be the result of an equilibrium between rates of sucrose influx and efflux.Abbreviations 3-OMG 3-O-methylglucose - PCMBS p-chloromercuribenzene sulfonate - SE-CC sieve element-companion cell - VB vascular bundle  相似文献   

3.
It has recently been reported that plasmalemma electron transport may be involved in the generation of H+ gradients and the uptake of ions into root tissue. We report here on the influence of extracellular NADH and ferricyanide on K+ (86Rb+) influx, K+ (86Rb+) efflux, net apparent H+ efflux, and O2 consumption in 2-centimeter corn (Zea mays [A632 × Oh43]) root segments and intact corn roots. In freshly excised root segments, NADH had no effect on O2 consumption and K+ uptake. However, after the root segments were given a 4-hour wash in aerated salt solution, NADH elicited a moderate stimulation in O2 consumption but caused a dramatic inhibition of K+ influx. Moreover, net apparent H+ efflux was significantly inhibited following NADH exposure in 4-hour washed root segments.

Exogenous ferricyanide inhibited K+ influx in a similar fashion to that caused by NADH, but caused a moderate stimulation of net H+ efflux. Additionally, both reagents substantially altered K+ efflux at both the plasmalemma and tonoplast.

These complex results do not lend themselves to straightforward interpretation and are in contradiction with previously published results. They suggest that the interaction between cell surface redox reactions and membrane transport are more complex than previously considered. Indeed, more than one electron transport system may operate in the plasmalemma to influence, or regulate, a number of transport functions and other cellular processes. The results presented here suggest that plasmalemma redox reactions may be involved in the regulation of ion uptake and the `wound response' exhibited by corn roots.

  相似文献   

4.
Summary The ratio of valinomycin-mediated unidirectional K+ fluxes across the human red cell membrane, has been determined in the presence of the protonophore carbonylcyanidem-chlorophenylhydrazone, CCCP, using the K+ net efflux and42K influx. The driving force for the net efflux (V m E K +) has been calculated from the membrane potential, estimated by the CCCP-mediated proton distribution and the Nernst potential for potassium ions across the membrane. An apparent driving potential for the K+ net efflux has been calculated from the K+ flux ratio, determined in experiments where the valinomycin and CCCP concentrations were varied systematically. This apparent driving force, in conjunction with the actual driving force calculated on basis of the CCCP estimated membrane potential, is used to calculate a flux ratio exponent, which represents an estimate of the deviation of valinomycin-mediated K+ transport from unrestricted electrodiffusion, when protonophore is present.In the present work, the flux ratio exponent is found to be 0.90 when the CCCP concentration is 5.0 m and above, while the exponent decreases to about 0.50 when no CCCP is present. The influence of CCCP upon the rate constants in the valinomycin transport cycle is discussed. The significance of this result is that red cell membrane potentials are overestimated, when calculated from valinomycin-mediated potassium isotope fluxes, using a constant field equation.  相似文献   

5.
The effect of phlorizin has been tested on hexose transport and hexose-induced changes of electrical potential (m) and conductance (g m) across the plasmalemma of rhizoid and thallus cells of the aquatic liverwort Riccia fluitans. The decrease of m (depolarization) and g m induced by 1 mM 3-oxymethyl-D-glucose (3-OMG) is substantially inhibited by simultaneous addition of 2 mM phlorizin, whereas no significant response was observed when phlorizin was added alone or several minutes after the sugar. Current-voltage data show that the 3-OMG-generated electrical inward current of 0.016 A m-2 drops to 0.010 A m-2 when phlorizin is present. Uptake as well as efflux of [14C]-3-OMG is strongly and reversibly inhibited by phlorizin between 0.2 and 5 mM. The results are consistent with our hypothesis that the hexose carrier has one binding site with competitive inhibition of glucose uptake by phlorizin (k i=0.08 mM). The electrical data indicate that phlorizin affects an m step of the carrier transport cycle.Abbreviation 3-OMG 3-oxymethyl-D-glucose  相似文献   

6.
Influx, efflux and net uptake of NO 3 was studied in Pisum sativum L. cv. Marma in short-term experiments where 13NO 3 was used to trace influx. The influx rate in N-limited plants was similar both during net uptake at external concentrations of around 50 M, and at low external NO 3 concentrations (4–6 M) when net uptake was practically zero. Efflux could be inferred from discrepancies between influx and net uptake but was never very high in the N-limited plants during net uptake. Close to the threshold concentration for not NO 3 uptake, efflux was high and equalled influx. Thus, the threshold concentration can be regarded as a NO 3 compensation point. The inclusion of NH 4 + in the outer medium decreased influx by about 40% but did not significantly affect efflux. The roles of NO 3 fluxes and nitrate-reductase activity in regulating/limiting NO 3 utilization are discussed.Abbreviations DW dry weight - FW fresh weight - RN relative nitrogen addition rate  相似文献   

7.
Summary Bidirectional transepithelial K+ flux measurements across high-resistance epithelial monolayers of MDCK cells grown upon millipore filters show no significant net K+ flux.Measurements of influx and efflux across the basal-lateral and apical cell membranes demonstrate that the apical membranes are effectively impermeable to K+.K+ influx across the basal-lateral cell membranes consists of an ouabain-sensitive component, an ouabain-insensitive component, an ouabain-insensitive but furosemide-sensitive component, and an ouabain-and furosemide-insensitive component.The action of furosemide upon K+ influx is independent of (Na+–K+)-pump inhibition. The furosemide-sensitive component is markedly dependent upon the medium K+, Na+ and Cl content. Acetate and nitrate are ineffective substitutes for Cl, whereas Br is partially effective. Partial Cl replacement by NO3 gives a roughly linear increase in the furosemide-sensitive component. Na+ replacement by choline abolishes the furosemide-sensitive component, whereas Li+ is a partially effective replacement. Partial Na+ replacement with choline gives an apparent affinity of 7mm Na, whereas variation of the external K+ content gives an affinity of the furosemide-sensitive component of 1.0mm.Furosemide inhibition is of high affinity (K 1/2=3 m). Piretanide, ethacrynic acid, and phloretin inhibit the same component of passive K+ influx as furosemide; amiloride, 4,-aminopyridine, and 2,4,6-triaminopyrimidine partially so. SITS was ineffective.Externally applied furosemide and Cl replacement by NO 3 inhibit K+ efflux across the basal-lateral membranes indicating that the furosemide-sensitive component consists primarily of KK exchange.  相似文献   

8.
Poole RJ 《Plant physiology》1969,44(4):485-490
The flux ratio (influx/efflux) of K+ across the plasmalemma of beet cells at an external potassium concentration of 0.6 mm does not respond to changes of membrane potential in the manner expected for the free diffusion of ions. The K+ efflux is affected by the presence of adsorbed Ca2+, but is apparently unrelated to the electrical potential or to the net uptake of potassium. The K+ efflux is greater than the efflux of the sulfate and organic anions which are accumulated with potassium, and is partially dependent on the presence of external potassium. Thus the loss of 42K from the cell does not appear to be a leakage of freely diffusing K+ ions, nor a leakage of ion pairs, but a carrier-mediated transport or exchange of potassium across the cell membrane.  相似文献   

9.
The properties of the α1 Na+-K+ pump were compared in Dahl salt-sensitive (DS) and salt-resistant (DR) strains by measuring ouabain-sensitive luxes (mmol/liter cell x hr = FU, Mean ± se) in red blood cells (RBCs) and varying internal ( i ) and external ( o ) Na+ and K+ concentrations. Kinetic parameters of several modes of operation, i.e., Na+/ K+, K+/K+, Na+/Na+ exchanges, were characterized and analyzed for curve-fitting using the Enzfitter computer program. In unidirectional flux studies (n=12 rats of each strain) into fresh cells incubated in 140 mm Na+ + 5 mm K+, ouabain-sensitive K+ influx was substantially lower in the DS than in DR RBCs, while ouabain-sensitive Na+ efflux and Na i were similar in both strains. Thus, the coupling ratio between unidirectional Na+∶K+ fluxes was significantly higher in DS than in DR cells at similar RBC Na+ content. In the presence of 140 mm Na o , activation of ouabain-sensitive K+ influx by K o had a lower K m and V max in DS as estimated by the Garay equation (N=2.70 ± 0.33, K m 0.74 ± 0.09 mm; V max 2.87 ± 0.09 FU) than in DR rats (N=1.23 ± 0.36, K m 2.31 ± 0.16 mm; v max 5.70 ± 0.52 FU). However, the two kinetic parameters were similar following Na o removal. The activation of ouabain-sensitive K+ influx by Na i had significantly lower V max in DS (9.3 ± 0.4 FU) than in DR (14.5 ± 0.6 FU) RBCs but similar K m. These data suggest that the low K+ influx in DS cells is caused by a defect in modulation by Na o and Na i . Na+ efflux showed no differences in Na i activation or trans effects by Na o and K o , thus accounting for the different Na+∶K+ coupling ratio in the Dahl strains. Further evidence for the differences in the coupling of ouabain-sensitive fluxes was found in studies of net Na+ and K+ fluxes, where the net ouabain-sensitive Na+ losses showed similar magnitudes in the two Dahl strains while the net ouabainsensitive K+ gains were significantly greater in the DR than the DS RBCs. Ouabain-sensitive Na+ influx and K+ efflux were also measured in these rat RBCs. The inhibition of ouabain-sensitive Na+ influx by K o was fully competitive for the DS but not for the DR pumps. Thus, for DR pumps, K o could activate higher K+ influx in DR pumps without a complete inhibition of ouabain-sensitive Na+ influx. This behavior is consistent with K o interaction with distinct Na+ and K+ transport sites. In addition, the inhibition of K+ efflux by Na, was different between Dahl strains. Ouabain-sensitive K+ efflux at Na i level of 4.6 mmol/liter cell, was significantly higher in DS (3.86 ± 0.67 FU) than in DR (0.86 ± 0.14 FU) due to a threefold higher K50 for Na i -inhibition 9.66 ± 0.41 vs. 3.09 ± 0.11 mmol/liter cell. This finding indicates that Na+ modulation of K+ transport is altered at both sides of the membrane. The dissociation of Na+ modulatory sites of K+ transport from Na+ transport sites observed in RBCs of Dahl strains suggests that K+ transport by the Na+-K+ pump is controlled by Na+ allosteric sites different from the Na+ transport sites. The alterations in K+ transport may be related to the amino acid substitution (Leu/Gln276) reported for the cDNA of the α1 subunit of the Na+-K+ pump in the DS strain or to post-translational modifications during RBC maturation. These studies were supported by the following grants: NIH (HL-35664, HL-42120, HL-18318, HL-39267, HL-01967). J.R.R. is a Ford Foundation Predoctoral Fellow. A preliminary report of this work was presented at the International Conference on the Na+-K+ pump and 44th Annual Meeting of the Society of General Physiologists held at Woods Hole, MA, September 5–9, 1990, and published as an abstract in the J. Gen. Physiol. 96:70a, 1990.  相似文献   

10.
Summary Excised roots from axenically grown sunflower seedlings reduced or oxidized exogenously added 2,6-dichlorophenolindophenol (DCIP), DCIP-sulfonate (DCIP-S), and cytochromec, and affected simultaneous H+/K+ net fluxes. Experiments were performed with nonpretreated living and CN-pretreated poisoned roots (control and CN-roots). CN-roots showed no H+/K+ net flux activity but still affected the redox state of the compounds tested. The hydrophobic electron acceptor DCIP decreased the rate of H+ efflux in control roots with extension of the maximum rate and optimal pH ranges, then the total net H+ efflux (H+) equalled that of the roots without DCIP. The simultaneously measured K+ influx rate was first inhibited, then inverted into efflux, and finally influx recovered to low rates. This effect could not be due to uptake of the negatively charged DCIP, but due to the lower H+ efflux and the transmembrane electron efflux caused by DCIP, which would depolarize the membrane and open outward K+ channels. The different H+ efflux kinetics characteristics, together with the small but significant DCIP reduction by CN-roots were taken as evidence that an alternative CN-resistant redox chain in the plasma membrane was involved in DCIP reduction. The hydrophilic electron acceptor DCIP-S enhanced both H+ and K+ flux rates by control roots. DCIP-S was not reduced, but slightly oxidized by control roots, after a lag, while CN-roots did not significantly oxidize or reduce DCIP-S. Perhaps the hydrophobic DCIP could have access to and drain electrons from an intermediate carrier deep inside the membrane, to which the hydrophilic DCIP-S could not penetrate. Also cytochromec enhanced H+ and K+, consistent with the involvement of the CN-resistant redox chain. Control roots did not reduce but oxidize cytochromec after a 15 min lag, and CN-roots doubled the rate of cytochromec oxidation without any lag. NADH in the medium spontaneously reduced cytochromec, but control or CN-roots oxidized cytochromec, despite of the presence of NADH. In this case CN-roots were less efficient, while control roots doubled the rate of cytochromec oxidation by CN-roots, after a 10 min lag in which cytochromec was reduced at the same rate as the medium plus NADH did. CN-roots seemed to have a fully activated CN-resistant branch. The described effects on K+ flux were consistent with the current hypothesis that redox compounds changed the electric membrane potential (de- or hyperpolarization), which induces the opening of voltage-gated in- or outward K+ channels.Abbreviations Cyt c cytochromec - DCIP 2,6-dichlorophenolindophenol - DCIP-S 2,6-dichlorophenolindophenol 3-sulfonate - HCF(III) hexacyanoferrate (III) - PM plasma membrane - SHAM salicylhydroxamic acid - VH+ and VK+ H+ efflux and K+ influx rates - H+ and K+ total H+ efflux and K+ influx at the end of the experiment - H+ and K+ buffering power of the titrated medium  相似文献   

11.
Summary The relationships between intracellular sodium content, sodium transport and serum effects were investigated in human fibroblasts. In the cells with low intracellular sodium (Na iL /+ ;0.04 mol sodium/mg protein) serum stimulated the sodium-potassium pump as measured by ouabain-sensitive sodium efflux and rubidium influx and also exerted a transstimulation of ouabain-insensitive sodium transport resulting in net influx. In cells with high intracellular sodium (Na iH /+ ;0.42 mol sodium/mg protein) all aspects of sodium transport were increased compared to Na iL /+ cells. In these cells serum caused no change in sodium-potassium pump activity but significantly increased the ouabain-insensitive sodium fluxes resulting in net efflux. In Na iL /+ cells, serum promoted net sodium influx through an amiloride-sensitive pathway that was undetectable in the basal state. In Na iH /+ cells the serum-stimulated net efflux was amiloride sensitive but this pathway also contributed to a major portion of sodium transport in the basal state. This study demonstrated that sodium-potassium pump activity is directed by the supply of internal sodium and that serum can increase this supply by promoting net influx, and that serum-induced sodium transport can be modified by intracellular sodium content.  相似文献   

12.
Alkali Cation/Sucrose Co-transport in the Root Sink of Sugar Beet   总被引:12,自引:11,他引:1       下载免费PDF全文
The mechanism of sucrose transport into the vacuole of root parenchyma cells of sugar beet was investigated using discs of intact tissue. Active sucrose uptake was evident only at the tonoplast. Sucrose caused a transient 8.3 millivolts depolarization of the membrane potential, suggesting an ion co-transport mechanism. Sucrose also stimulated net proton efflux. Active (net) uptake of sucrose was strongly affected by factors that influence the alkali cation and proton gradients across biological membranes. Alkali cations (Na+ and K+) at 95 millimolar activity stimulated active uptake of sucrose 2.1- to 4-fold, whereas membrane-permeating anions inhibited active sucrose uptake. The pH optima for uptake was between 6.5 and 7.0, pH values slightly higher than those of the vacuole. The ionophores valinomycin, gramicidin D, and carbonyl cyanide m-chlorophenylhydrazone at 10 micromolar concentrations strongly inhibited active sucrose uptake. These data are consistent with the hypothesis that an alkali cation influx/proton efflux reaction is coupled to the active uptake of sucrose into the vacuole of parenchyma cells in the root sink of sugar beets.  相似文献   

13.
14.
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   

15.
Summary Wheat (Triticum vulgare L., cv. Blueboy) seedlings, grown with 0.25, 1.0 and 15 mM nitrate in complete nutrient solutions, were transferred 10 days after germination to 1.0 mM K15NO3 (99 A% 15N) plus 0.1 mM CaSO4 at pH 6.0. The solutions were replaced periodically over a 6-h period (5 mW cm-2; 23°). Changes in the [15N]- and [14N]nitrate in the solution were determined by nitrate reductase and mass-spectrometric procedures and potassium by flame photometry. Influx of [15N]nitrate was depressed in plants grown at 1.0 mM nitrate relative to those grown at 0.25 mM, but there was no appreciably difference in [14N]nitrate efflux. Prior growth at 15 mM further restricted [15N]nitrate influx which, together with a substantial increase in [14N]nitrate efflux, resulted in no net nitrate uptake during the course of the experiment. Efflux of [14N]nitrate occurred to solutions containing no nitrate but it was significantly enhanced upon exposure to [15N]nitrate in the external solution. Influx of [15N]nitrate was more restricted at 5°, relative to 23°, than was [14N]nitrate efflux. The nitrate concentrations of the root tissue immediately before exposure to the K15NO3 solutions did not give a precise indication of the subsequent [15N]nitrate influx rates nor of the [14N]nitrate efflux rates. Net K+ uptake was related to the magnitude of the net nitrate uptake, not to the initial K+ concentration in the roots. The data are interpreted as indicating that [15N]nitrate influx and [14N]nitrate efflux are largely independent processes, subject to different controls, and that net nitrate uptake provides the driving force for net potassium uptake.Paper No. 4884 of the Journal Series of the North Carolina Agricultural Experiment Station, Raleigh, NC, USA. This investigation was supported in part by the U.S. Energy Research and Development Administration, Contract No. AT-(40-1)-2410  相似文献   

16.
1. When yeast oxidizes propan-2-ol in the presence of KCl no uptake of K+ occurs. 2. When propionate is added to suspensions containing propan-2-ol, or if the suspensions are bubbled with CO2, a considerable uptake of K+ occurs. 3. Maximum K+ uptake occurs at a propionate concentration of 2mm. 4. The addition of 20mm-propionate to the suspension lowers the intracellular pH of the yeast from a resting value in the region of 6.2 to approx. 5.6. 5. When K+ uptake is measured in the presence of 20mm-propionate, progressive changes in the rate of K+ uptake and intracellular pH occur. The optimum rate of K+ uptake occurs at an intracellular pH of 5.70. 6. The effect of both intra- and extra-cellular pH on K+–K+ exchange was studied and an optimum rate was found at an extracellular pH of 5.35, the corresponding intracellular pH being 6.44. 7. When a Na+-loaded yeast oxidizes propan-2-ol in the presence of KCl, a steady efflux of Na+ and influx of K+ occurs. The addition of 10mm-propionate to the suspension markedly inhibited the Na+ efflux but only slightly decreased the K+ influx. 8. The effect of both extra- and intra-cellular pH on Na+ efflux was studied with propan-2-ol and with glucose. The results can be best interpreted in terms of intracellular pH changes, and an optimum was obtained at approx. pH6.40.  相似文献   

17.
Dalton  F.N.  Maggio  A.  Piccinni  G. 《Plant and Soil》2000,220(1-2):1-11
The effect of growth under saline condition (100 mol m-3 NaCl in the nutrient solution) on the influx and the efflux of glucose from roots of cotton plants was analysed utilising the non metabolisable glucose analogue [14C]-3-O-methylglucose ([14C]3-OMG). Apical segments (1 cm long) excised from cotton roots took up [14C]3-OMG. At each tested concentration (5–500 mmol m-3), the influx was completely inhibited by the presence of the protonophore carbonylcyanide-m-chlorophenyl hydrazone (CCCP) indicating that it is mediated by a H+-coupled co-transport mechanism. The CCCP-sensitive [14C]3-OMG influx was lower in the root segments excised from plants grown on saline solution than in the controls, and this was particularly evident at lower external concentrations. This difference was not due to a lower H+ apoplastic availability. In fact, the saline condition did not affect the pH of the rhizosphere and indeed the H+–ATPase activity, evaluated in plasma membrane vesicles purified from saline-treated plants, was higher (+23%) than in the controls. The lower uptake of [14C]3-OMG into saline treated root segments was related to an enhanced value of the apparent Km of the carrier for the glucose analogue. This effect is discussed in relation to either the more positive value of the transmembrane electric potential difference (ΔΨ) measured in these root segments, or a competitive inhibition of Na+ on the H+ binding site of the carrier. Growth in saline solution slightly affected the efflux of the [14C]3-OMG preloaded in root segments, changing the membrane permeability to the molecule. The results strongly suggest that the higher (2.5 fold) net exudation of glucose, observed in short-term (4 h) collection experiments, from roots of cotton plants grown in saline condition, is mainly due to an effect of the saline growth condition on the system involved in the reabsorption of the hexose rather than on its efflux. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

18.
In the aquatic liverwort Riccia fluitans, the uptake of 14C-labeled 3-O-methyl glucose (3-OMG) and membrane depolarization ( m ) caused by different hexoses has been studied as a function of time and concentration of hexose, K+ and H+, respectively. The rate of uptake of the non-metabolized 3-OMG shows two components: (A)A pH-dependent saturable uptake with a km value around 0.1 mM which saturates at 2.1 and 7.2 mol G DW -1 h-1 at pH 6.8 and 5.0, respectively; and (B) a pH-insensitive uptake component which increases linearly with the external 3-OMG concentration and does not saturate 4 mM. Hexoses rapidly depolarize the plasmalemma of the thallus cell and increase its electrical conductance. The maximal m was 60±2 mV, the concentrations (mM) for half-maximal m were 0.24 glucose, 0.32 galactose, 0.37 2-deoxy glucose, 0.38 3-OMG, 0.57 mannose, and 34 fructose. In terms of a hexose carrier model and an equivalent circuit for the hexose-induced depolarized state of the membrane, it is proposed that a hexose carrier operates either electrogenically in its protonated, pH-and voltage-sensitive state, or by transmembrane diffusion of its uncharged state.Symbols and Abbreviations m membrane potential (mV) - g m membrane (slope) conductance (Sm-2) - 3-OMG 3-O-methyl glucose  相似文献   

19.
Summary The influx and efflux of sodium from 4-hr washed, low salt corn roots (Zea mays L.) has been studied for characterization of passive and active components. Initial Na+ content of the roots is very low, 2.25±0.4 mol/g fresh weight. Na+ influx in the presence of 0.2mm Ca2+ and 0.002 to 20mm K+ is passive (a leak) based upon Goldman-type models, being determined by Na+ and cell potential (). Na+ was not transported by the K+ carrier and influx was unaffected by 50 m dicyclohexylcarbodiimide (DCCD). Permeability of the cells to Na+ was of the same order asP k.Efflux of Na+ was by an efficient and rapid active transport system (a pump), thus accounting for the failure of these roots to accumulate high levels of Na+. In short-term loading and efflux experiments, internal Na+ turnover had a half-time of about 5 min. Sodium efflux was unaffected by DCCD. Net H+ flux was zero in the presence of DCCD regardless of sodium efflux, indicating absence of Na+/H+ antiport. Efflux of Na+ was equally rapid into medium containing no Na+ and only 0.002mm K+. K+ influx accounted for less than 4% of Na+ efflux, prompting the hypothesis that the Na+ (or cation?) efflux pump is the second electrogenic system previously defined based upon electrophysiological measurements.  相似文献   

20.
Histamine transport has been characterized in cultured astroglial cells of rat brain. The kinetics of [3H]-histamine uptake yielded a Km of 0.19±0.03 M and a Vmax of 3.12±0.75 pmol×mg protein–1×min–1. Transport system revealed high affinity for histamine and an approximately ten times higher capacity than that shown in cultured glial cells of chick embryonic brain. Ouabain which interferes with utilization of ATP to generate ion gradients, and the replacement of Na+ with choline inhibited the initial rate of uptake showing a strong Na+-dependency and suggesting the presence of a tightly coupled sodium/histamine symporter. Dissipation of K+-gradient (in>out) by high K+ or by K+-channel blockers, BaCl2, (100 M), quinine (100 M) or Sparteine (20 M) produced also remarkable inhibitions in the uptake of [3H]-histamine. Impromidine, a structural histamine-analogue could inhibit the uptake non-competitively in a range of concentrations of 1 to 10 M with a Ki value of 2.8 M, indicating the specificity of the uptake. [3H]histamine uptake measurements carried out by using a suspension of dissociated hypothalamic cells, of rat brain showed a strong gliotoxin-sensitivity and yielded a Km of 0.33±0.08 M; and a Vmax of 2.65±0.35 pmoles×mg protein–1×min–1. The uptake could be reversed by incubating the cells in histamine-free Krebs medium. The [3H]histamine efflux was sensitive to Na+ omission, ouabain treatment and high K+ or K+ channel blockers, resulting in marked elevations in the efflux. Data indicate that glial uptake of histamine is a high affinity, Na+-dependent and electrogenic, driven by an inward-oriented sodium ion gradient and an outward-oriented potassium ion gradient and functions as part of histamine inactivation, at least in a shunt mechanism.Abbreviations used HA histamine - [3H]HA [2.5-3H]-histamine - dl--aAA dl-alpha-aminoadipic acid - (Na++K+) ATP-ase sodium and potassium activated adenosine triphosphatase - SAH S-Adenosyl-d-Homocysteine - HNMT histamine-N-methyltransferase  相似文献   

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