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1.
Taste receptor cells (TRCs)respond to acid stimulation, initiating perception of sour taste.Paradoxically, the pH of weak acidic stimuli correlates poorly with theperception of their sourness. A fundamental issue surrounding sourtaste reception is the identity of the sour stimulus. We tested thehypothesis that acids induce sour taste perception by penetratingplasma membranes as H+ ions or as undissociated moleculesand decreasing the intracellular pH (pHi) of TRCs. Our datasuggest that taste nerve responses to weak acids (acetic acid andCO2) are independent of stimulus pH but strongly correlatewith the intracellular acidification of polarized TRCs. Taste nerveresponses to CO2 were voltage sensitive and were blockedwith MK-417, a specific blocker of carbonic anhydrase. Strong acids(HCl) decrease pHi in a subset of TRCs that contain apathway for H+ entry. Both the apical membrane and theparacellular shunt pathway restrict H+ entry such that alarge decrease in apical pH is translated into a relatively smallchange in TRC pHi within the physiological range. Weconclude that a decrease in TRC pHi is the proximate stimulus in rat sour taste transduction.

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2.
We report, for the epithelialNa+ channel (ENaC) in A6 cells,the modulation by cell pH (pHc)of the transepithelial Na+ current(INa), thecurrent through the individual Na+channel (i), the openNa+ channel density(No), and thekinetic parameters of the relationship betweenINa and theapical Na+ concentration. Thei andNo were evaluatedfrom the Lorentzian INa noise inducedby the apical Na+ channel blocker6-chloro-3,5-diaminopyrazine-2-carboxamide.pHc shifts were induced, understrict and volume-controlled experimental conditions, byapical/basolateral NH4Cl pulses orbasolateral arrest of theNa+/H+exchanger (Na+ removal; block byethylisopropylamiloride) and were measured with the pH-sensitive probe2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein. Thechanges in pHc were positivelycorrelated to changes inINa and theapically dominated transepithelial conductance. The sole pHc-sensitive parameter underlyingINa wasNo. Only thesaturation value of theINa kinetics wassubject to changes in pHc.pHc-dependent changes inNo may be causedby influencingPo, the ENaC openprobability, or/and the total channel number,NT = No/Po.

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3.
Activity of the AE2/SLC4A2 anion exchanger is modulated acutely by pH, influencing the transporter's role in regulation of intracellular pH (pHi) and epithelial solute transport. In Xenopus oocytes, heterologous AE2-mediated Cl/Cl and Cl/HCO3 exchange are inhibited by acid pHi or extracellular pH (pHo). We have investigated the importance to pH sensitivity of the eight histidine (His) residues within the AE2 COOH-terminal transmembrane domain (TMD). Wild-type mouse AE2-mediated Cl/Cl exchange, measured as DIDS-sensitive 36Cl efflux from Xenopus oocytes, was experimentally altered by varying pHi at constant pHo or varying pHo. Pretreatment of oocytes with the His modifier diethylpyrocarbonate (DEPC) reduced basal 36Cl efflux at pHo 7.4 and acid shifted the pHo vs. activity profile of wild-type AE2, suggesting that His residues might be involved in pH sensing. Single His mutants of AE2 were generated and expressed in oocytes. Although mutation of H1029 to Ala severely reduced transport and surface expression, other individual His mutants exhibited wild-type or near-wild-type levels of Cl transport activity with retention of pHo sensitivity. In contrast to the effects of DEPC on wild-type AE2, pHo sensitivity was significantly alkaline shifted for mutants H1144Y and H1145A and the triple mutants H846/H849/H1145A and H846/H849/H1160A. Although all functional mutants retained sensitivity to pHi, pHi sensitivity was enhanced for AE2 H1145A. The simultaneous mutation of five or more His residues, however, greatly decreased basal AE2 activity, consistent with the inhibitory effects of DEPC modification. The results show that multiple TMD His residues contribute to basal AE2 activity and its sensitivity to pHi and pHo. pH regulation; histidine residues; Cl/HCO3 exchange  相似文献   

4.
Resting or basal intracellular pH (pHi) measured in cultured human syncytiotrophoblast cells was 7.26 ± 0.04 (without HCO3) or 7.24 ± 0.03 (with HCO3). Ion substitution and inhibitor experiments were performed to determine whether common H+-transporting species were operating to maintain basal pHi. Removal of extracellular Na+ or Cl or addition of amiloride or dihydro-4,4'-diisothiocyanatostilbene-2,2'-disulfonate (H2DIDS) had no effect. Acidification with the K+/H+ exchanger nigericin reduced pHi to 6.25 ± 0.15 (without HCO3) or 6.53 ± 0.10 (with HCO3). In the presence of extracellular Na+, recovery to basal pHi was prompt and occurred at similar rates in the absence and presence of HCO3. Ion substitution and inhibition experiments were also used to identify the species mediating the return to basal pHi after acidification. Recovery was inhibited by removal of Na+ or addition of amiloride, whereas removal of Cl and addition of H2DIDS were ineffective. Addition of the Na+/H+ exchanger monensin to cells that had returned to basal pHi elicited a further increase in pHi to 7.48 ± 0.07. Analysis of recovery data showed that there was a progressive decrease in pH per minute as pHi approached the basal level, despite the continued presence of a driving force for H+ extrusion. These data show that in cultured syncytial cells, in the absence of perturbation, basal pHi is preserved despite the absence of active, mediated pH maintenance. They also demonstrate that an Na+/H+ antiporter acts to defend the cells against acidification and that it is the sole transporter necessary for recovery from an intracellular acid load. sodium/hydrogen antiporter; pH regulation; fluorescence; 2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein  相似文献   

5.
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   

6.
Putative chemoreceptors in the solitary complex (SC) are sensitive to hypercapnia and oxidative stress. We tested the hypothesis that oxidative stress stimulates SC neurons by a mechanism independent of intracellular pH (pHi). pHi was measured by using ratiometric fluorescence imaging microscopy, utilizing either the pH-sensitive fluorescent dye BCECF or, during whole cell recordings, pyranine in SC neurons in brain stem slices from rat pups. Oxidative stress decreased pHi in 270 of 436 (62%) SC neurons tested. Chloramine-T (CT), N-chlorosuccinimide (NCS), dihydroxyfumaric acid, and H2O2 decreased pHi by 0.19 ± 0.007, 0.20 ± 0.015, 0.15 ± 0.013, and 0.08 ± 0.002 pH unit, respectively. Hypercapnia decreased pHi by 0.26 ± 0.006 pH unit (n = 95). The combination of hypercapnia and CT or NCS had an additive effect on pHi, causing a 0.42 ± 0.03 (n = 21) pH unit acidification. CT slowed pHi recovery mediated by Na+/H+ exchange (NHE) from NH4Cl-induced acidification by 53% (n = 20) in -buffered medium and by 58% (n = 10) in HEPES-buffered medium. CT increased firing rate in 14 of 16 SC neurons, and there was no difference in the firing rate response to CT with or without a corresponding change in pHi. These results indicate that oxidative stress 1) decreases pHi in some SC neurons, 2) together with hypercapnia has an additive effect on pHi, 3) partially inhibits NHE, and 4) directly affects excitability of CO2/H+-chemosensitive SC neurons independently of pHi changes. These findings suggest that oxidative stress acidifies SC neurons in part by inhibiting NHE, and this acidification may contribute ultimately to respiratory control dysfunction. hyperoxic hyperventilation; O2 toxicity; pH regulation; brain stem; reactive oxygen species  相似文献   

7.
Using thepH-sensitive dye2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein (BCECF),we examined the effect of hyperosmolar solutions, which presumablycaused cell shrinkage, on intracellular pH(pHi) regulation in mesangialcells (single cells or populations) cultured from the rat kidney. Thecalibration of BCECF is identical in shrunken and unshrunken mesangialcells if the extracellular K+concentration ([K+])is adjusted to match the predicted intracellular[K+]. ForpHi values between ~6.7 and~7.4, the intrinsic buffering power in shrunken cells (600 mosmol/kgH2O) is threefold larger than in unshrunken cells (~300mosmol/kgH2O). In the nominalabsence ofCO2/HCO3,exposing cell populations to a HEPES-buffered solution supplementedwith ~300 mM mannitol (600 mosmol/kgH2O) causes steady-statepHi to increase by ~0.4. The pHi increase is due to activationofNa+/H+exchange because, in single cells, it is blocked in the absence ofexternal Na+ or in the presence of50 µM ethylisopropylamiloride (EIPA). Preincubating cells in aCl-free solution for atleast 14 min inhibits the shrinkage-induced pHi increase by 80%. Wecalculated the pHi dependence oftheNa+/H+exchange rate in cell populations under normosmolar and hyperosmolar conditions by summing 1) thepHi dependence of the totalacid-extrusion rate and 2) thepHi dependence of theEIPA-insensitive acid-loading rate. Shrinkage alkali shifts thepHi dependence ofNa+/H+exchange by ~0.7 pH units.  相似文献   

8.
In this study, we test the hypothesisthat in newborn hearts (as in adults) hypoxia and acidificationstimulate increased Na+ uptake, in part via pH-regulatoryNa+/H+ exchange. Resulting increases inintracellular Na+ (Nai) alter the force drivingthe Na+/Ca2+ exchanger and lead to increasedintracellular Ca2+. NMR spectroscopy measuredNai and cytosolic Ca2+ concentration([Ca2+]i) and pH (pHi) inisolated, Langendorff-perfused 4- to 7-day-old rabbit hearts. AfterNa+/K+ ATPase inhibition, hypoxic hearts gainedNa+, whereas normoxic controls did not [19 ± 3.4 to139 ± 14.6 vs. 22 ± 1.9 to 22 ± 2.5 (SE) meq/kg drywt, respectively]. In normoxic hearts acidified using theNH4Cl prepulse, pHi fell rapidly and recovered,whereas Nai rose from 31 ± 18.2 to 117.7 ± 20.5 meq/kg dry wt. Both protocols caused increases in [Ca]i;however, [Ca]i increased less in newborn hearts than inadults (P < 0.05). Increases in Nai and[Ca]i were inhibited by theNa+/H+ exchange inhibitormethylisobutylamiloride (MIA, 40 µM; P < 0.05), aswell as by increasing perfusate osmolarity (+30 mosM) immediately before and during hypoxia (P < 0.05). The data supportthe hypothesis that in newborn hearts, like adults, increases inNai and [Ca]i during hypoxia and afternormoxic acidification are in large part the result of increased uptakevia Na+/H+ and Na+/Ca2+exchange, respectively. However, for similar hypoxia and acidification protocols, this increase in [Ca]i is less in newborn thanadult hearts.

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9.
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   

10.
Control of Passive Permeability in the Chara Plasmalemma   总被引:2,自引:0,他引:2  
Conductance to K+ alters as a function of membrane potential(m). Conductance to H+ (or OH) changes with externalpH (pHo) This conductance change can be modulated by alteringcytoplasmic pH or external K+ concentration, both of which alsoalter m. We suggest a role for H+ conductance in regulatingcytoplasmic pH above pHo 7.0.  相似文献   

11.
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   

12.
The role ofintracellular pH (pHi) in regulation of AE2 function inXenopus oocytes remains unclear. We therefore compared AE2-mediated 36Cl efflux fromXenopus oocytes during imposed variation of extracellular pH(pHo) or variation of pHi at constantpHo. Wild-type AE2-mediated 36Clefflux displayed a steep pHo vs. activity curve, withpHo(50) = 6.91 ± 0.04. SequentialNH2-terminal deletion of amino acid residues in tworegions, between amino acids 328 and 347 or between amino acids 391 and510, shifted pHo(50) to more acidic values by nearly 0.6 units. Permeant weak acids were then used to alter oocytepHi at constant pHo and were shown to beneither substrates nor inhibitors of AE2-mediated Cltransport. At constant pHo, AE2 was inhibited byintracellular acidification and activated by intracellularalkalinization. Our data define structure-function relationships withinthe AE2 NH2-terminal cytoplasmic domain, which demonstratesdistinct structural requirements for AE2 regulation by intracellularand extracellular protons.

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13.
Role of Na(+)/H(+) exchanger during O(2) deprivation in mouse CA1 neurons   总被引:1,自引:0,他引:1  
To determine the role ofmembrane transporters in intracellular pH (pHi) regulationunder conditions of low microenvironmental O2, we monitoredpHi in isolated single CA1 neurons using the fluorescentindicator carboxyseminaphthorhodafluor-1 and confocal microscopy. Aftertotal O2 deprivation or anoxia (PO2 0 Torr), a large increase in pHi was seen in CA1neurons in HEPES buffer, but a drop in pHi, albeit small,was observed in the presence of HCO. Ionicsubstitution and pharmacological experiments showed that the largeanoxia-induced pHi increase in HEPES buffer was totallyNa+ dependent and was blocked by HOE-694, stronglysuggesting the activation of the Na+/H+exchanger (NHE). Also, this pHi increase in HEPES bufferwas significantly smaller in Na+/H+ exchangerisoform 1 (NHE1) null mutant CA1 neurons than in wild-type neurons,demonstrating that NHE1 is responsible for part of the pHiincrease following anoxia. Both chelerythrine and H-89 partly blocked,and H-7 totally eliminated, this anoxia-induced pHiincrease in the absence of HCO. We conclude that1) O2 deprivation activatesNa+/H+ exchange by enhancing protein kinaseactivity and 2) membrane proteins, such as NHE, activelyparticipate in regulating pHi during low-O2states in neurons.

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14.
36C1O3/NO3 influx into Chara cells was found to be sensitiveto pHo and a maximum was found at pHo = 4.5. By contrast 14Cmethylamine influx into Chara showed a maximum at pHo = 8.5,and at this pHo influx rates were about 150 times higher thanrates of 36C1O3/NO3 influx. However, at pHo = 4.5, 36C1O3/NO3influx rates were, in some cases, comparable with rates of 14Cmethylamine influx. 36C1O3/NO3 influx into Chara cells was stimulatedby Rb +, K+, Na +, and NH4+, but not by Cs+ or Li +. NO3 andCl reduced 14C methylamine influx into Chara by 30%. NH4+ causedvery considerable inhibition of 14C methylamine influx intoChara, but had no effect on 36C1O3/NO3 influx in the presenceof K +. Net NO3 uptake into Chara was completely prevented byNH4+ even at relatively low NH4+ concentrations (25 mmol m –3).This latter effect was reversed by diethylstilbestrol (DES).Evidence is presented for the stimulation of NO3 efflux by NH4+as the mechanism responsible for the immediate effects of NH4+on net NO3 uptake into Chara cells. Key words: Chara, 14C methylamine, 36ClO3, pH  相似文献   

15.
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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16.
Cytoplasmic pH (pHi) was evaluated duringNa+-glucose cotransport in Caco-2 intestinal epithelialcell monolayers. The pHi increased by 0.069 ± 0.002 within 150 s after initiation of Na+-glucosecotransport. This increase occurred in parallel with glucose uptake andrequired expression of the intestinal Na+-glucosecotransporter SGLT1. S-3226, a preferential inhibitor ofNa+/H+ exchanger (NHE) isoform 3 (NHE3),prevented cytoplasmic alkalinization after initiation ofNa+-glucose cotransport with an ED50 of 0.35 µM, consistent with inhibition of NHE3, but not NHE1 or NHE2. Incontrast, HOE-694, a poor NHE3 inhibitor, failed to significantlyinhibit pHi increases at <500 µM.Na+-glucose cotransport was also associated with activationof p38 mitogen-activated protein (MAP) kinase, and the p38 MAP kinase inhibitors PD-169316 and SB-202190 prevented pHi increasesby 100 ± 0.1 and 86 ± 0.1%, respectively. Conversely,activation of p38 MAP kinase with anisomycin induced NHE3-dependentcytoplasmic alkalinization in the absence of Na+-glucosecotransport. These data show that NHE3-dependent cytoplasmic alkalinization occurs after initiation of SGLT1-mediatedNa+-glucose cotransport and that the mechanism of this NHE3activation requires p38 MAP kinase activity. This coordinatedregulation of glucose (SGLT1) and Na+ (NHE3) absorptiveprocesses may represent a functional activation of absorptiveenterocytes by luminal nutrients.

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17.
pH-dependent modulation of Kv1.3 inactivation: role of His399   总被引:2,自引:0,他引:2  
The Kv1.3 K+ channel lacks N-type inactivation, but during prolonged depolarized periods it inactivates via the slow (P/C type) mechanism. It bears a titratable histidine residue in position 399 (equivalent of Shaker 449), a site known to influence the rate of slow inactivation. As opposed to several other voltage-gated K+ channels, slow inactivation of Kv1.3 is slowed when extracellular pH (pHo) is lowered under physiological conditions. Our findings are as follows. First, when His399 was mutated to a lysine, arginine, leucine, valine or tyrosine, extracellular acidification (pH 5.5) accelerated inactivation reminiscent of other Kv channels. Second, inactivation of the wild-type channel was accelerated by low pHo when the ionic strength of the external solution was raised. Inactivation of the H399K mutant was also accelerated by high ionic strength at pH 7.35 but not the inactivation of H399L. Third, after the external application of blocking barium ions, recovery of the wild-type current during washout was slower in low pHo. Fourth, the dissociation rate of Ba2+ was pH insensitive for both H399K and H399L. Furthermore, Ba2+ dissociation rates were equal for H399K and the wild type at pH 5.5 and were equal for H399L and the wild type at pH 7.35. These observations support a model in which the electric field of the protonated histidines creates a potential barrier for potassium ions just outside the external mouth of the pore that hinders their exit from the binding site controlling inactivation. In Kv1.3, this effect overrides the generally observed speeding of slow inactivation when pHo is reduced. extracellular pH; potassium channel; histidine; barium; high ionic strength  相似文献   

18.
Members of the SLC20 family or type III Na+-coupled Pi cotransporters (PiT-1, PiT-2) are ubiquitously expressed in mammalian tissue and are thought to perform a housekeeping function for intracellular Pi homeostasis. Previous studies have shown that PiT-1 and PiT-2 mediate electrogenic Pi cotransport when expressed in Xenopus oocytes, but only limited kinetic characterizations were made. To address this shortcoming, we performed a detailed analysis of SLC20 transport function. Three SLC20 clones (Xenopus PiT-1, human PiT-1, and human PiT-2) were expressed in Xenopus oocytes. Each clone gave robust Na+-dependent 32Pi uptake, but only Xenopus PiT-1 showed sufficient activity for complete kinetic characterization by using two-electrode voltage clamp and radionuclide uptake. Transport activity was also documented with Li+ substituted for Na+. The dependence of the Pi-induced current on Pi concentration was Michaelian, and the dependence on Na+ concentration indicated weak cooperativity. The dependence on external pH was unique: the apparent Pi affinity constant showed a minimum in the pH range 6.2–6.8 of 0.05 mM and increased to 0.2 mM at pH 5.0 and pH 8.0. Xenopus PiT-1 stoichiometry was determined by dual 22Na-32Pi uptake and suggested a 2:1 Na+:Pi stoichiometry. A correlation of 32Pi uptake and net charge movement indicated one charge translocation per Pi. Changes in oocyte surface pH were consistent with transport of monovalent Pi. On the basis of the kinetics of substrate interdependence, we propose an ordered binding scheme of Na+:H2PO4:Na+. Significantly, in contrast to type II Na+-Pi cotransporters, the transport inhibitor phosphonoformic acid did not inhibit PiT-1 or PiT-2 activity. Na+-Pi cotransport; two-electrode voltage clamp; surface pH electrode; SLC20; retroviral receptor  相似文献   

19.
Using glass capillary microelectrodes for the measurement ofpotential differences (PD) and antimony microelectrodes forthe measurement of pH, we investigated the light-induced changesof PD between the central vacuole and the external medium, ofpH in the vacuole (pHv), as well as of pH in the external medium(pHo) of the green marine alga Valonia ventricosa. PD in thedark was about +30 to +40 mV (vacuole positive), pHv 6.3, andthe resistance of the protoplast (cell wall-plasmalemma-tonoplast)17.8 kOhm cm2. Illumination caused an increase of the positivePD (after a few oscillations) up to +80 to +100 mV, acidificationof the vacuolar sap, alkalinization of the external medium,and a decrease in the resistance of the protoplast to 7.6 kOhmcm2. The kinetics of the changes of PD, pHv, and pHo were similarto each other. It is concluded that a light-stimulated activeH+ flow occurs from the external medium into the central vacuoleof Valonia ventricosa as a result of the onset of photosyntheticactivity.  相似文献   

20.
The ability toresynthesize ATP during recovery from ischemia is limited tothe size of endogenous pool of adenine nucleotides. CytosolicAMP-specific 5'-nucleotidase (5'-NT) plays a key role inATP degradation and hence the capacity for ATP resynthesis. We havesuggested (J. Clin. Invest. 93:40-49, 1994) that intracellular acidosis [intracellular pH(pHi)] is a potentinhibitor of 5'-NT under in vivo conditions. To test thishypothesis further, we used the hyperthyroid rat heart because we couldalter pHi during ischemiaand determine the consequences of lowerpHi on AMPaccumulation (by chemical assay) and ATP resynthesis (by31P nuclear magnetic resonancespectroscopy) during reperfusion. Global no-flow ischemiacaused pHi to decrease from 7.1 under well-oxygenated control perfusion to 6.7. We found thatdecreasing pHi further from pH 6.7 to 6.4 leads to increased accumulation (30%) of AMP duringischemia and to a 2.5-fold increase in ATP resynthesis duringreperfusion. Analysis of all known substrates, products, activators,and inhibitors of the 5'-NT suggests that 5'-NT isactivated primarily by Mg2+ andADP and is inhibited by H+. Thusthese observations provide evidence for a salutary effect ofintracellular acidosis on preserving the AMP pool due to inhibition of5'-NT and suggest a novel role ofH+ in protecting ischemic tissue.

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