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1.
When microsomal membranes from maize (Zea mays L. cv. Clipper)coleoptiles were separated by isopyc-nic centrifugation on acontinuous 10–45% sucrose gradient, bafilomycin A1-inhibitedATPase activity co-localized with the activities of the tonoplastmarker-enzymes, nitrate-Inhibited ATPase and K+-dependent pyrophosphatase.Thus, bafilomycin A1 is a specific inhibitor of the vacuolarH+-ATPase of maize coleoptiles. Inhibition of the vacuolar H+-ATPaseby bafilomycin A1 was strictly dependent upon the concentrationof the enzyme present in the assay medium, suggesting a stoichiometricassociation between bafilomycin A1 and the vacuolar H+-ATPase.In tonoplast-enriched preparations, half-maximal inhibitionwas obtained at 43 pmol bafilomycin A1 mg–1 protein. BafilomycinA1 inhibited the vacuolar H+-ATPase in a simple non-competitivemanner: increasing bafilomycin A1 concentrations reduced theVmax, of the H+ -ATPase, but had no effect on its Km towardsATP. Key words: Bafilomycin A1, coleoptile, H+-ATPase (vacuolar), maize, Zea mays L  相似文献   

2.
The effect of the external pH on the intracellular pH in mungbean (Vigna mungo (L.) Hepper) root-tip cells was investigatedwith the 31P nuclear magnetic resonance (NMR) method. The 31PNMR spectra showed three peaks caused by cytoplasmic G-6-P,cytoplasmic Pi and vacuolar Pi. The cytoplasmic and vacuolarpHs could be determined by comparing the Pi chemical shiftswith the titration curve. When the external pH was changed overa range from pH 3 to 10, the cytoplasmic pH showed smaller changesthan the vacuolar pH, suggesting that the former is regulatedmore strictly than the latter. The H+-ATPase inhibitor, DCCD,caused the breakdown of the mechanism that regulates the intracellularpH. H+-ATPase appears to have an important part in the regulationof the intracellular pH. (Received January 4, 1984; Accepted August 27, 1984)  相似文献   

3.
The vacuolar H+-ATPase (V-ATPase) acidifies compartments of the vacuolar system of eukaryotic cells. In renal epithelial cells, it resides on the plasma membrane and is essential for bicarbonate transport and acid-base homeostasis. The factors that regulate the H+-ATPase remain largely unknown. The present study examines the effect of glucose on H+-ATPase activity in the pig kidney epithelial cell line LLC-PK1. Cellular pH was measured by performing ratiometric fluorescence microscopy using the pH-sensitive indicator BCECF-AM. Intracellular acidification was induced with NH3/NH4+ prepulse, and rates of intracellular pH (pHi) recovery (after in situ calibration) were determined by the slopes of linear regression lines during the first 3 min of recovery. The solutions contained 1 µM ethylisopropylamiloride and were K+ free to eliminate Na+/H+ exchange and H+-K+-ATPase activity. After NH3/NH4+-induced acidification, LLC-PK1 cells had a significant pHi recovery rate that was inhibited entirely by 100 nM of the V-ATPase inhibitor concanamycin A. Acute removal of glucose from medium markedly reduced V-ATPase-dependent pHi recovery activity. Readdition of glucose induced concentration-dependent reactivation of V-ATPase pHi recovery activity within 2 min. Glucose replacement produced no significant change in cell ATP or ADP content. H+-ATPase activity was completely inhibited by the glycolytic inhibitor 2-deoxy-D-glucose (20 mM) but only partially inhibited by the mitochondrial electron transport inhibitor antimycin A (20 µM). The phosphatidylinositol 3-kinase (PI3K) inhibitor wortmannin (500 nM) abolished glucose activation of V-ATPase, and activity was restored after wortmannin removal. Glucose activates V-ATPase activity in kidney epithelial cells through the glycolytic pathway by a signaling pathway that requires PI3K activity. These findings represent an entirely new physiological effect of glucose, linking it to cellular proton secretion and vacuolar acidification. proton secretion; glycolysis; intracellular pH; concanamycin A  相似文献   

4.
The effects of light on the pH in the vacuole and the electricpotential difference across the plasmalemma and the tonoplastof Nitellopsis obtusa were investigated by means of conventionaland H+-specific glass or antimony microelectrodes. Illuminationis found to bring about a decrease in the pH of the vacuolarsap by 0.1–0.5 units concomitant with a depolarizationof the cell. The light-induced changes of the potential differenceand the vacuolar pH depend in different ways on the pH of theexternal medium (pHo). At pHo 9.0 cells exhibit great light-inducedpotential changes (up to 100 mV), but only small pH changesof the vacuolar sap. At neutral or slightly acidic pHo valuesthe amplitude of the light-induced pH changes in the vacuoleincreases up to 0.3–0.5 pH units, but the amplitudes ofthe potential changes at the plasmalemma are relatively small.At pHo 9.0 a transient acidification of the medium is observedupon illumination whereas at lower pH values light-induced alkalinizationwas only seen. Transfer of the cells from pHo 9.0 to pHo 7.5results in a cell hyperpolarization by 60–80 mV and adecrease of the vacuolar pH by 0.4–0.5 units under lightconditions but has no significant effect on the potential andthe vacuolar pH in the darkness. It is proposed that mechanismsof active H+ extrusion from the cytoplasm are located both inthe plasmalemma and the tonoplast. The observed acidificationin the vacuole appears to be determined by a light-induced increaseof the concentration of H+ in the cytoplasm. The H+ conductionof the plasmalemma seems to increase on illumination. The patternof the light-induced H+ fluxes across the tonoplast and theplasmalemma depends crucially on the extent of the light-inducedchanges in the H+ conductance and on the electrochemical gradientfor H+ at the plasmalemma.  相似文献   

5.
Na+/H+ Antiporter in Tonoplast Vesicles from Rice Roots   总被引:4,自引:0,他引:4  
The Na+/H + antiporter in vacuolar membranes transports Na+from the cytoplasm to vacuoles using a pH gradient generatedby proton pumps; it is considered to be related to salinitytolerance. Rice (Oryza sativa L.) is a salt-sensitive crop whosevacuolar antiporter is unknown. The vacuolar pH of rice roots,determined by 31P-nuclear magnetic resonance (NMR), increasedfrom 5.34 to 5.58 in response to 0.1 M NaCl treatment. Transportof protons into the tonoplast vesicles from rice roots was fluorometricallymeasured. Efflux of protons was accelerated by the additionof Na+. Furthermore, the influx of 22Na+ into the tonoplastvesicles was accelerated by a pH gradient generated by proton-translocatingadenosine 5'-triphosphatase (H+-ATPase) and proton-translocatinginorganic pyro-phosphatase (H+-PPase). We concluded that thisNa+/H+antiporter functioned as a Na+ transporter in the vacuolarmembranes. The antiporter had a Km of 10 mM for Na+ and wascompetitively inhibited by amiloride and its analogues. TheKi values for 5-(N-methyl-N-isobutyl)-amiloride (MIA), 5-(N-ethyl-N-isopropyI)-amiloride(EIPA), and 5-(N, N-hexamethylene)-amiloride (HMA) were 2.2,5.9, and 2.9 µ M, respectively. Unlike barley, a salt-tolerantcrop, NaCl treatment did not activate the antiporter in riceroots. The amount of antiporter in the vacuolar membranes maybe one of the most important factors determining salt tolerance. 1This work was supported by a grant from Bio-Media Project ofthe Japanese Ministry of Agriculture, Forestry and Fisheries(BMP96-III-1).  相似文献   

6.
The response ofH+-ATPase to lethal acid stress isunknown. A mutant strain (called NHE2d) was derived from cultured inner medullary collecting duct cells (mIMCD-3 cells) following three cyclesof lethal acid stress. Cells were grown to confluence on coverslips,loaded with2',7'-bis(carboxyethyl)-5(6)-carboxyfluorescein, andmonitored for intracellular pH(pHi) recovery from an acid load. The rate of Na+-independentpHi recovery from an acid load inmutant cells was approximately fourfold higher than in parent cells(P < 0.001). TheNa+-independentH+ extrusion was ATP dependent and K+ independent and wascompletely inhibited in the presence of diethylstilbestrol, N, N'-dicyclohexylcarbodiimide,or N-ethylmaleimide. Theseresults indicate that theNa+-independentH+ extrusion in cultured medullarycells is mediated via H+-ATPaseand is upregulated in lethal acidosis. Northern hybridization experiments demonstrated that mRNA levels for the 16- and 31-kDa subunits of H+-ATPase remainedunchanged in mutant cells compared with parent cells. We propose thatlethal acid stress results in increased H+-ATPase activity in innermedullary collecting duct cells. Upregulation ofH+-ATPase could play a protectiverole against cell death in severe intracellular acidosis.

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7.
Continuous measurements of cytoplasmic pH (pHc) in Sinapis roothairs have been carried out with double-barrelled pH-micro-electrodesin order to gain information on translocation of protons acrossthe plasmalemma and cytoplasmic pH control. (i) The cytoplasmicpH of Sinapis (7–33 ? 0–12, standard conditions)changes no more than 0.1 pHc, per pHo-unit, regardless of whethercyanide is present or not. (ii) Weak acids rapidly acidify pHcand hyperpolarize, while weak bases alkalize pHc and depolarizethe cells, (iii) 1.0 mol M,3 NaCN acidifies the cytoplasm by0.4 to 0.7 pH-units, but alkalizes the vacuole. (iv) 20 mmolm–3 CCCP has no significant effect on pHc, if added atpH 9.6 or 7.2, but acidifies pHc by 1.3 units at pH 4.3. Inthe presence of CCCP, cyanide acidifies the cytoplasm, (v) Chloridetransiently acidifies pHc, while K+, Na+, and have no significant effects, (vi) Cytoplasmic buffer capacityforms a bell-shaped curve versus pHc with an optimum of about50 mol m–3 H+pHc-unit. The modes of proton re-entry and the effects of active and passiveproton transport on cellular pH control are critically discussed.It is suggested that the proton leak, consisting of H+-cotransport(e.g. H+/Cl) rather than H+-uniport, is no threat topHc. The proton export pump, although itself reacting to changesin pHc, influences pHc only to a minor extent. It is concludedthat buffer capacity and membrane transport play moderate rolesin pHc control in Sinapis, while the interlocked H+-producingand -consuming reactions of cellular metabolism are the mainregulating factors. This makes pH control in Sinapis quite differentfrom bacterial and animal cells. Key words: Cytoplasmic pH, double-barrelled pH micro-electrode, pH control, proton transport, Sinapis  相似文献   

8.
Aqueous humorsecretion is in part linked to transport by nonpigmented ciliary epithelium (NPE) cells. During thisprocess, the cells must maintain stable cytoplasmic pH(pHi). Because a recent reportsuggests that NPE cells have a plasma membrane-localized vacuolarH+-ATPase, the present study wasconducted to examine whether vacuolar H+-ATPase contributes topHi regulation in a rabbit NPEcell line. Western blot confirmed vacuolarH+-ATPase expression as judged byH+-ATPase 31-kDa immunoreactivepolypeptide in both cultured NPE and native ciliary epithelium.pHi was measured using2',7'-bis(carboxyethyl)-5(6)-carboxyfluorescein (BCECF).Exposing cultured NPE to K+-richsolution caused a pHi increase weinterpret as depolarization-induced alkalinization. Alkalinization wasalso caused by ouabain or BaCl2. Bafilomycin A1 (0.1 µM; aninhibitor of vacuolar H+-ATPase)inhibited the pHi increase causedby high K+. ThepHi increase was also inhibited byangiotensin II and the metabolic uncoupler carbonyl cyanidem-chlorophenylhydazone but not by ZnCl2,4-acetamido-4'-isothiocyanostilbene-2,2'-disulfonic acid(SITS), 4,4'-diisothiocyanostilbene-2,2'-disulfonic acid (DIDS), omeprazole, low-Clmedium, -free medium, orNa+-free medium. BafilomycinA1 slowed thepHi increase after an NH4Cl (10 mM) prepulse. However,no detectable pHi change was observed in cells exposed to bafilomycinA1 under control conditions. Thesestudies suggest that vacuolarH+-ATPase is activated bycytoplasmic acidification and by reduction of the protonelectrochemical gradient across the plasma membrane. We speculate thatthe mechanism might contribute to maintenance of acid-base balance inNPE.

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9.
Nicotine was used to induce an intracellular alkalinizationin Elodea densa leaves in order to study the regulation of theplasmalemma H+ pump activity by alkaline intracellular pH values.Nicotine was found to enter the cells rapidly in the unchargedform and to induce a significant intracellular pH increase,measured either directly as cell sap pH or as vacuolar and cytoplasmicpH by calculation from the distribution at equilibrium of labelledpH probes. The nicotine-induced alkalinization was associatedwith a progressive decrease in K+ uptake. A strong inhibitionof net H+ efflux was also evident in the presence of K+ in theexternal medium, whereas no nicotine effect on net H+ effluxwas detected in the absence of K+ (in spite of the larger accumulationof nicotine in the tissue) in agreement with a down-regulationof the activity of the K+-dependent plasmalemma H+-ATPase byalkaline intracellular pH values. The increase in vacuolar pHresulting from nicotine accumulation was small compared to thebase load calculated from the vacuolar buffer capacity and theintracellular dissociation of nicotine. Conversely, the nicotine-inducedincrease in cytoplasmic pH was considerably larger than expectedon the basis of the cytoplasmic buffer capacity and of the theoreticalaccumulation of nicotine in the experimental conditions adopted.A balance sheet between nicotine accumulation, intracellularalkalinization and malate system response was drawn up, andthe seeming discrepancies observed were discussed. (Received August 11, 1997; Accepted November 21, 1997)  相似文献   

10.
Comparison of the Arabidopsis thaliana vacuolar proton-pumpinginorganic pyrophosphatase with three F0F1-ATPase c-subunitsrevealed a strong similarity between a stretch containing aminoacids 227–245 of the H+-PPase and a transmembrane a-helixof the c-subunits which contains the glutamate which binds N,N'-dicyclohexylcarbodiimide. (Received November 16, 1992; Accepted December 22, 1992)  相似文献   

11.
We investigated for the presence of avacuolar-type H+-ATPase (V-ATPase) in the human eccrinesweat duct (SD). With the use of immunocytochemistry, ananti-V- ATPase antibody showed a strong staining at the apicalmembrane and a weaker one in the cytoplasm. Cold preservation followedby rewarming did not alter this staining pattern. With the use of thepH-sensitive dye2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein onisolated and perfused straight SD under HCO-free conditions and in the absence of Na+, proton extrusion wasdetermined from the recovery rate of intracellular pH(dpHi/dt) following an acid load. Oligomycin (25 µM), an inhibitor of F-type ATPases, decreaseddpHi/dt by 88 ± 6%, suggesting a role foran ATP-dependent process involved in pHi recovery.Moreover, dpHi/dt was inhibited at 95 ± 3% by 100 nM luminal concanamycin A, a specific inhibitor ofV-ATPases, whereas 10 µM bafilomycin A1, another specificinhibitor of V-ATPases, was required to decrease dpHi/dt by 73%. These results strongly suggestthat a V-ATPase is involved in proton secretion in the human eccrine SD.

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12.
The influences of the gastric H+/K+ pump on organelle pH during trafficking to and from the plasma membrane were investigated using HEK-293 cells stably expressing the - and -subunits of human H+/K+-ATPase (H+/K+-, cells). The pH values of trans-Golgi network (pHTGN) and recycling endosomes (pHRE) were measured by transfecting H+/K+-, cells with the pH-sensitive GFP pHluorin fused to targeting sequences of either TGN38 or synaptobrevin, respectively. Immunofluorescence showed that H+/K+-ATPase was present in the plasma membrane, TGN, and RE. The pHTGN was similar in both H+/K+-, cells (pHTGN 6.36) and vector-transfected ("mock") cells (pHTGN 6.34); pHRE was also similar in H+/K+-, (pHRE 6.40) and mock cells (pHRE 6.37). SCH28080 (inhibits H+/K+-ATPase) caused TGN to alkalinize by 0.12 pH units; subsequent addition of bafilomycin (inhibits H+ v-ATPase) caused TGN to alkalinize from pH 6.4 up to a new steady-state pHTGN of 7.0–7.5, close to pHcytosol. Similar results were observed in RE. Thus H+/K+-ATPases that trafficked to the plasma membrane were active but had small effects to acidify the TGN and RE compared with H+ v-ATPase. Mathematical modeling predicted a large number of H+ v-ATPases (8,000) active in the TGN to balance a large, passive H+ leak (with PH 103 cm/s) via unidentified pathways out of the TGN. We propose that in the presence of this effective, though inefficient, buffer system in the Golgi and TGN, H+/K+-ATPases (estimated to be 4,000 active in the TGN) and other transporters have little effect on luminal pH as they traffic to the plasma membrane. pHluorin; H+ v-ATPase; trans-Golgi network; organelle pH; H+ permeability  相似文献   

13.
Memon, A. R., Saccomani, M. and Glass, A. D. M. 1985. Efficiencyof potassium utilization by barley varieties: The role of subcellularcompartmentation.?J. exp. Bot. 36: 1860–1876. The subcellulardistributions of K+ in roots of three barley (Hordeum vulgareL.) varieties, grown at 10 and 100 mmol m–3 external K+([K+]o) were estimated by compartmental analyses. In general,increased [K+]o caused a 2–3 fold increase in vacuolar[K+], but cytoplasmic [K+] increased only slightly. Nevertheless,the three varieties, which had been selected for study on thebasis of their different rates of K+ utilization, showed distinctdifferences in the allocation of K+ between cytoplasm and vacuole.At 10 mmol m–3 [K+]o var. Betzes exhibited typical K+deficiency symptoms while var. Fergus and var. Compana did not,even though Betzes had higher [K+] in shoots and roots. Theinefficient utilization of K+ in this variety appears to beassociated with a failure to mobilize vacuolar K+ into the cytoplasmiccompartment (the ratio of vacuolar: cytoplasmic K+ contentsfor Betzes was 4.1 compared to 2.7 and 2.5, respectively, forFergus and Compana). Fergus and Betzes, which demonstrate pronouncedgrowth responses to increased [K+]0 between 10 and 100 mmolm–3, showed significant increases of cytoplasmic [K+]in this range of [K+]o. By contrast, cytoplasmic [K+] in Compana,a variety whose growth is not stimulated by increased [K+]0(from 10 to 100 mmol m–3) showed virtually no increase.It is suggested that the efficiency of K+ utilization and thegrowth response to [K+]0 in these varieties are functions ofthe subcellular distribution of this ion between cytoplasm andvacuole. Key words: Barley varieties, K+ subcellular compartmentation, utilization efficiency  相似文献   

14.
Work addressing whether cystic fibrosistransmembrane conductance regulator (CFTR) plays a role in regulatingorganelle pH has remained inconclusive. We engineered a pH-sensitiveexcitation ratiometric green fluorescent protein (pHERP) and targetedit to the Golgi with sialyltransferase (ST). As determined byratiometric imaging of cells expressing ST-pHERP, Golgi pH(pHG) of HeLa cells was 6.4, while pHG ofmutant (F508) and wild-type CFTR-expressing (WT-CFTR) respiratoryepithelia were 6.7-7.0. Comparison of genetically matched F508and WT-CFTR cells showed that the absence of CFTR statisticallyincreased Golgi acidity by 0.2 pH units, though this small differencewas unlikely to be physiologically important. Golgi pH was maintainedby a H+ vacuolar (V)-ATPase countered by a H+leak, which was unaffected by CFTR. To estimate Golgi proton permeability (PH+), we modeledtransient changes in pHG induced by inhibiting the V-ATPaseand by acidifying the cytosol. This analysis required knowing Golgibuffer capacity, which was pH dependent. Our in vivo estimate is thatGolgi PH+ = 7.5 × 104 cm/s when pHG = 6.5, andsurprisingly, PH+ decreased aspHG decreased.

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15.
The acidophilic alga Dunaliella acidophila exhibits optimalgrowth at pH 1. We have investigated the regulation of phosphateuptake by this alga using tracer techniques and by performingintracellular phosphate measurements under different growthconditions including phosphate limitation. In batch culturewith 2·2 mol m–3 phosphate in the medium the uptakeof phosphate at micromolar phosphate concentrations followeda linear time dependence in the range of minutes and rates werein the range of 1 µmol phosphate mg–1 chl h–1,only. However, under discontinuous phosphate-limited growthconditions, tracer influx revealed a biphasic pattern at micromolarphosphate concentrations: An initial burst phase resulted ina 104-fold internal phosphate accumulation and levelled offafter about 10 s. A double reciprocal plot of the initial influxrates obtained for phosphate-limited and unlimited algae exhibitedMichaelis-Menten kinetics. Phosphate limitation caused a significantactivation of the maximum velocity of uptake, yielding Vmaxup to 1 mmol mg–1 chl h–1 as compared to valuesin the order of 50 µmol phosphate mg–1 chl h–1for the second phase (this magnitude is also representativefor non-limited batch cultures). Concomitantly the Michaelisconstant was altered from 4 mmol m–3 to 0·7 mmolm–3. The rapid uptake of phosphate was inhibited by arsenateand FCCP and was not stimulated by Na+. The pH dependence oftracer accumulation and measurements of the intracellular phosphatepool under different growth conditions indicate that at lowpH and low external phosphate concentrations the high protongradient present under these conditions is utilized for a H3PO4uptake or a H+/H2PO4 cotransport. However, when the externalphosphate concentration was increased to levels sufficientlyhigh for transport to be driven by the positive membrane potential(10 mol m–3 phosphate), the pH dependence of phosphateuptake was more complex, but could be explained by the uptakeof H3PO4 or a H+/H2PO4-cotransport at low pH and a differenttype H2PO4-transport (with unknown type of ion coupling)at high pH-values. It is suggested that this flexible couplingof phosphate transport is of essential importance for the acidresistance of Dunaliella acidophila. Key words: Acid resistance, Dunaliella acidophila, phosphate cotransport, phosphate limitation, plasma membrane, sodium  相似文献   

16.
Bafilomycin A1, known as an inhibitor of vacuolar type H+-ATPase, was used to study involvement of the vacuolar ATP-dependent H+-pump in the vacuolar pH regulation in a fresh water charophyte, Chara corallina. When bafilomycin A1 (100 nM) was externally given to intact cells, the vacuolar pH (about 5) was not affected. Internodal cells were then pretreated with 100 nM bafilomycin for 1 ? 2 h and the vacuolar sap was replaced with a weakly buffered solution of pH 7.4. The readjustment of the modified vacuolar pH in bafilomycin-treated cells was significantly retarded compared with that in untreated cells. Next, bafilomycin A1 was directly introduced into the vacuole by vacuolar perfusion with the artificial cell sap of pH 7.4. At 100 nM bafilomycin A1, the decrease in the vacuolar pH was significantly inhibited. When cell sap was replaced with the artificial cell sap containing no buffer (pH 5.2 ? 5.5), the vacuolar pH increased in the presence of vacuolar bafilomycin, suggesting that the PP1- dependent H+ pumping alone was not sufficient for the pH regulation of Chara vacuoles. Intracellular bafilomycin A1 had no effect on the plasma membrane potential of tonoplast-free cells, which is evidence that it does not affect the electrogenic H+-pump in the plasma membrane. Bafilomycin A1 inhibited the ATP-dependent H+ transport of tonoplast vesicles but not the PP1-dependent H+ transport. The ATPase activity of tonoplast vesicles was also inhibited by bafilomycin A1.  相似文献   

17.
The effects of Na-orthovanadate, at concentrations only partiallyinhibiting net H+ extrusion, were determined on vacuolar andcytosolic pH by the weak base and weak acid distribution atequilibrium. Treatment with vanadate induces in Elodea densaleaves and in Arabidopsis thaliana seedlings a moderate acidificationof both cell sap and vacuole. Conversely, it induces an alkalinizationof cytosol, this effect being in apparent contrast with a conditionof reduced activity of the H+-transporting plasmalemma ATPase,which should be associated with a cytosolic acidification. InArabidopsis seedlings treated with vanadate, the increase inpH of both cytosol and external medium is associated with adecrease in cell sap buffer capacity, more evident for highervanadate concentrations, and particularly marked in the pH rangebetween 3·5 and 5·5. In these conditions, themalate content is strongly reduced, its decrease almost completelyaccounting for the decrease in cell sap buffer capacity. Anin vitro analysis of the vanadate effect on phosphoenolpyruvatecarboxylase indicates that the decrease in malate content seemssubstantially due to an inhibiting effect of vanadate on thisenzyme. These results stress that the in vivo use of vanadateas an inhibitor of the plasmalemma H+-ATPase must be taken withcaution; in particular, for studying the correlations betweenchanges in net H+ extrusion and changes in cytosolic pH andrelated processes. Key words: Vanadate, malate, cytosolic pH, Elodea densa, Arabidopsis thaliana  相似文献   

18.
Salinity-induced Malate Accumulation in Chara   总被引:3,自引:0,他引:3  
Ion absorption by Chara corallina from solutions containingpredominantly KC1 or RbCl at up to 100 mol m–3 resultedin accumulation of salts and turgor regulation. Turgor regulationdid not occur in solutions containing Na+ or Li+salts. Duringion absorption from various salts of K+ and Rb+ vacuolar cationconcentration exceeded Cl concentration. This differencewas shown to be balanced by the synthesis and accumulation ofmalate. Vacuolar malate concentration reached 48 mol m3,with accumulation occurring at rates of up to 0.45 mol m–3h–1. Malate accumulation was inhibited by low externalpH and was dependent upon external HCO3 concentration.The synthesis of malic acid and its subsequent dissociationimposed a severe acid load on the cell. Biophysical regulationof cellular pH was achieved by a H+efflux at a rate of about40 nmol m–2 s–1from the cell. The results presentedargue against cytoplasmic Cl, HCO3 or pH regulatingmalate accumulation in Chara and it is suggested that malatetransport across the tonoplast may regulate malate accumulation. Key words: Malate, Chara corallina, pH regulation, salinity  相似文献   

19.
The PPi-dependent H+ transport activity of tonoplast-enrichedmembrane vesicles prepared from barley roots was greatly reducedwhen the plants were grown for 4 or 5 days with an additional3 raM KC1 in growth medium that contained only 0.1 mM CaCl2in water. To characterize the mechanism of this reduction inactivity, we attempted to treat barley roots with K+ ions, Cl-ions(or acetate), and A23187 [GenBank] (with or without Ca2+ ions), whichmight be expected to cause alkalization, acidification and mobilizationof Ca2+ ions in the cytoplasm, respectively. One-day treatmentof barley roots with K+ ions significantly decreased PPi--dependentH+ transport activity of prepared tonoplast-enriched membranevesicles, while treatment with Cl- ions or acetate significantlyincreased the activity. A similar increase in the activity alsooccurred by treatment with Ca2+ ions alone or in combinationwith A23187 [GenBank] . Determination of the PPi-hydrolyzing activity ofmembrane vesicles showed that changes in this activity by thevarious treatments were similar to those in the PPi-dependentH+ transport activity. The changes in ATP-dependent H+ transportactivity of membrane vesicles caused by these treatments weresmall. These results indicate that the in vivo treatments hadsignificant effects on the H+ transport activity of H+-PPi-ase,one of the two active vacuolar H+-pumps (H+-PPiase and H+-ATPase).In addition, these results suggest the possibility that changesin levels of cytoplasmic H+ or Ca2+ ions may be involved inmodulation of the H+ transport activity of the vacuolar H+-PPiaseduring plant growth. (Received September 14, 1992; Accepted March 1, 1993)  相似文献   

20.
Ammonia (pKa 9.25) and methylamine (pKa, 10.65) increase cytoplasmicpH and stimulate Cl influx in Chara corallina, theseeffects being associated with influx of the amine cations ona specific porter. The weak base imidazole (pKa 6.96) has similareffects but diffuses passively into the cell both as an unionizedbase and as a cation. When the external pH is greater than 6.0influx of the unionized species predominates. Imidazole accumulates to high concentrations in the vacuole,where it is protonated. Cytoplasmic pH and vacuolar pH riseby only 0.2–0.3 units, suggesting a large balancing protoninflux across the plasma membrane. Balance of electric chargeis partially maintained by net efflux of K+ and net influx ofCl. Calculation of vacuolar concentrations of imidazole(from (14C] imidazole uptake, assuming that there is no metabolism)plus K+ and Na+ indicates an excess of cations over inorganicanions (Cl). However, although the osmotic potentialof the cells increases, also indicating increased solute concentrations,the increase is less than that predicted by the calculated ionicconcentrations. This discrepancy remains to be resolved. Becausethe osmotic potential also increases when imidazole is absorbedfrom Cl-free solutions it is likely that maintenanceof charge-balance can also involve synthesis and vacuolar storageof organic or amino acids. Key words: Imidazole, potassium, intracellular pH, membrane transport, Chara  相似文献   

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