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1.
Summary The effect of extracellular and intracellular Na+ (Na o + , Na i + ) on ouabain-resistant, furosemide-sensitive (FS) Rb+ transport was studied in human erythrocytes under varying experimental conditions. The results obtained are consistent with the view that a (1 Na++1 K++2 Cl) cotransport system operates in two different modes: modei) promoting bidirectional 11 (Na+–K+) cotransport, and modeii) a Na o + -independent 11 K o + /K i + exchange requiring Na i + which, however, is not extruded. The activities of the two modes of operation vary strictly in parallel to each other among erythrocytes of different donors and in cell fractions of individual donors separated according to density. Rb+ uptake through Rb o + /K i + exchange contributes about 25% to total Rb+ uptake in 145mm NaCl media containing 5mm RbCl at normal Na i + (pH 7.4). Na+–K+ cotransport into the cells occurs largely additive to K+/K+ exchange. Inward Na+–Rb+ cotransport exhibits a substrate inhibition at high Rb o + . With increasing pH, the maximum rate of cotransport is accelerated at the expense of K+/K+ exchange (apparent pK close to pH 7.4). The apparentK m Rb o + of Na+–K+ cotransport is low (2mm) and almost independent of pH, and high for K+/K+ exchange (10 to 15mm), the affinity increasing with pH. The two modes are discussed in terms of a partial reaction scheme of (1 Na++1 K++2 Cl) cotransport with ordered binding and debinding, exhibiting a glide symmetry (first on outside = first off inside) as proposed by McManus for duck erythrocytes (McManus, T.J., 1987,Fed. Proc., in press). N-ethylmaleimide (NEM) chemically induces a Cl-dependent K+ transport pathway that is independent of both Na o + and Na i + . This pathway differs in many properties from the basal, Na o + -independent K+/K+ exchange active in untreated human erythrocytes at normal cell volume. Cell swelling accelerates a Na o + -independent FS K+ transport pathway which most probably is not identical to basal K+/K+ exchange. K o + o +
  • o + o 2+ reduce furosemide-resistant Rb+ inward leakage relative to choline o + .  相似文献   

  • 2.
    pH i recovery in acid-loaded Ehrlich ascites tumor cells and pH i maintenance at steady-state were studied using the fluorescent probe BCECF.Both in nominally HCO 3 -free media and at 25 mm HCO 3 , the measured pH i (7.26 and 7.82, respectively) was significantly more alkaline than the pH i . value calculated assuming the transmembrane HCO 3 gradient to be equal to the Cl gradient. Thus, pH i in these cells is not determined by the Cl gradient and by Cl/HCO 3 exchange.pH i recovery following acid loading by propionate exposure, NH 4 + withdrawal, or CO2 exposure is mediated by amiloride-sensitive Na+/H+ exchange in HCO3 free media, and in the presence of HCO 3 (25 mm) by DIDS-sensitive, Na+-dependent Cl/HCO 3 exchange. A significant residual pH i recovery in the presence of both amiloride and DIDS suggests an additional role for a primary active H+ pump in pH i regulation. pH i maintenance at steady-state involves both Na+/H+ exchange and Na+-dependent Cl/HCO 3 exchange.Acute removal of external Cl induces a DIDS-sensitive, Na+-dependent alkalinization, taken to represent HCO 3 influx in exchange for cellular Cl. Measurements of 36Cl efflux into Cl-free gluconate media with and without Na+ and/or HCO 3 (10 mm) directly demonstrate a DIDS-sensitive, Na+ dependent Cl/HCO 3 exchange operating at slightly acidic pH i (pHo 6.8), and a DIDS-sensitive, Na+-independent Cl/HCO 3 exchange operating at alkaline pH i (pH o 8.2).The excellent technical assistance of Marianne Schiødt and Birgit B. Jørgensen is gratefully acknowledged. The work was supported by the Carlsberg Foundation (B.K.) and by a grant from the Danish Natural Science Foundation (E.K.H. and L.O.S.).  相似文献   

    3.
    Summary In the isolated, superfused mouse lacrimal gland, intracellular Na+ activities (aNa i ) of the acinar cells were directly measured with double-barreled Na+-selective microelectrodes. In the nonstimulated conditionaNa i was 6.5±0.5 mM and membrane potential (V m ) was –38.9±0.4 mV. Addition of 1 mM ouabain or superfusion with a K+-free solution slightly depolarized the membrane and caused a gradual increase inaNa i . Stimulation with acetylcholine (ACh, 1 M) caused a membrane hyperpolarization by about 20 mV and an increase inaNa i by about 9 mM in 5 min. The presence of amiloride (0.1 mM) reduced the ACh-induced increase inaNa i by approximately 50%, without affectingV m and input resistance in both nonstimulated and ACh-stimulated conditions. Acid loading the acinar cells by an addition/withdrawal of 20 mM NH4Cl or by replacement of Tris+-buffer saline solution with HCO 3 /CO2-buffered solution increasedaNa i by a few mM. Superfusion with a Cl-free NO 3 solution or 1 mM furosemide or 0.5 mM bumetanide-containing solution had little effect on the restingaNa i levels, however, it reduced the ACh-induced increase inaNa i by about 30%. Elimination of metabolite anions (glutamate, fumarate and pyruvate) from the superfusate reduced both the restingaNa i and the ACh-induced increase inaNa i .The present results suggest the presence of multiple Na+ entry mechanisms activated by ACh, namely, Na+/H+ exchange, Na-K-Cl cotransport and organic substrate-coupled Na+ transport mechanisms.  相似文献   

    4.
    Summary Rabbit erythrocytes are well known for possessing highly active Na+/Na+ and Na+/H+ countertransport systems. Since these two transport systems share many similar properties, the possibility exists that they represent different transport modes of a single transport molecule. Therefore, we evaluated this hypothesis by measuring Na+ transport through these exchangers in acid-loaded cells. In addition, selective inhibitors of these transport systems such as ethylisopropyl-amiloride (EIPA) and N-ethylmaleimide (NEM) were used. Na+/Na+ exchange activity, determined as the Na o + -dependent22Na efflux or Na i + -induced22Na entry was completely abolished by NEM. This inhibitor, however, did not affect the H i + -induced Na+ entry sensitive to amiloride (Na+/H+ exchange activity). Similarly, EIPA, a strong inhibitor of the Na+/H+ exchanger, did not inhibit Na+/Na countertransport, suggesting the independent nature of both transport systems. The possibility that the NEM-sensitive Na+/Na+ exchanger could be involved in Na+/H+ countertransport was suggested by studies in which the net Na+ transport sensitive to NEM was determined. As expected, net Na+ transport through this transport system was zero at different [Na+] i /[Na+] o ratios when intracellular pH was 7.2. However, at pH i =6.1, net Na+ influx occurred when [Na+] i was lower than 39mm. Valinomycin, which at low [K+] o was lower than 39mm. Valinomycin, which at low [K+] o clamps the membrane potential close to the K+ equilibrium potential, did not affect the net NEM-sensitive Na+ entry but markedly stimulated, the EIPA-and NEM-resistant Na+ uptake. This suggest that the net Na+ entry through the NEM-sensitive pathway at low pH i , is mediated by an electroneutral process possibly involving Na+/H+ exchange. In contrast, the EIPA-sensitive Na+/H+ exchanger is not involved in Na+/Na+ countertransport, because Na+ transport through this mechanism is not affected by an increase in cell Na from 0.4 to 39mm. Altogether, these findings indicate that both transport systems: the Na+/Na+ and Na+/H+ exchangers, are mediated by distinct transport proteins.  相似文献   

    5.
    Summary Electrophysiological experiments were performed to analyze the Na+/K+-ATPase in full-grown prophase-arrested oocytes ofXenopus laevis. If the Na+/K+-ATPase is inhibited by dihydroouabain (DHO), the resting potential of the membrane of Na+-loaded oocytes may depolarize by nearly 50 mV. This hyperpolarizing contribution to the resting potential depends on the degree of activation of the Na+/K+-ATPase and varies with intra-cellular Na+ activity (a Na i ), and extracellular K+ (K 0 + ) It is concluded that variations ofa Na i among different oocytes are primarily responsible for the variations of resting potentials measured in oocytes ofX. laevis. Under voltage-clamp conditions, the DHO-sensitive current also exhibits dependence ona Na i that may be described by a Hill equation with a coefficient of 2. This current will be shown to be identical with the electrogenic current generated by the 3Na+/2K+ pump. The voltage dependence of the pump current was investigated at saturating values ofa Na i (33 mmol/liter) and of K 0 + (3 mmol/liter) in the range from –200 to +100 mV. The current was found to exhibit a characteristic maximum at about +20 mV. This is taken as evidence that in the physiological range at least two steps within the cycle of the pump are voltage dependent and are oppositely affected by the membrane potential.  相似文献   

    6.
    Summary To study the possible role of intracellular Ca (Ca i ) in controlling the activities of the Na+–K+ pump, the Na+–K+ cotransport and the Na+/Li+ exchange system of human erythrocytes, a method was developed to measure the amount of Ca embodied within the red cell. For complete removal of Ca associated with the outer aspect of the membrane, it proved to be essential to wash the cells in buffers containing less than 20nm Ca. Ca was extracted by HClO4 in Teflon® vessels boiled in acid to avoid Ca contaminations and quantitated by flameless atomic absorption. Ca i of fresh human erythrocytes of apparently healthy donors ranged between 0.9 and 2.8 mol/liter cells. The mean value found in females was significantly higher than in males. The interindividual different Ca contents remained constant over periods of more than one year. Sixty to 90% of Ca i could be removed by incubation of the cells with A23187 and EGTA. The activities of the Na+–K+ pump, of Na+–K+ cotransport and Na+/Li+ exchange and the mean cellular hemoglobin content fell with rising Ca i ; the red cell Na+ and K+ contents rose with Ca i . Ca depletion by A23187 plus EGTA as well as chelation of intracellular Ca2+ by quin-2 did not significantly enhance the transport rates. It is concluded that the large scatter of the values of Ca i of normal human erythrocytes reported in the literature mainly results from a widely differing removal of Ca associated with the outer aspect of the membrane.  相似文献   

    7.
    Summary Recent studies in hepatocytes indicate that Na+-coupled HCO 3 transport contributes importantly, to regulation of intracellular pH and membrane HCO 3 transport. However, the direction of net coupled Na+ and HCO 3 movement and the effect of HCO 3 on Na+ turnover and Na+/K+ pump activity are not known. In these studies, the effect of HCO 3 on Na+ influx and turnover were measured in primary rat hepatocyte cultures with22Na+, and [Na+] i was measured in single hepatocytes using the Na+-sensitive fluorochrome SBFI. Na+/K+ pump activity was measured in intact perfused rat liver and hepatocyte monolayers as Na+-dependent or ouabain-suppressible86Rb uptake, and was measured in single hepatocytes as the effect of transient pump inhibition by removal of extracellular K+ on membrane potential difference (PD) and [Na+] i . In hepatocyte monolayers, HCO 3 increased22Na+ entry and turnover rates by 50–65%, without measurably altering22Na+ pool size or cell volume, and HCO 3 also increased Na+/K+ pump activity by 70%. In single cells, exposure to HCO 3 produced an abrupt and sustained rise in [Na+] i , from 8 to 12mm. Na+/K+ pump activity assessed in single cells by PD excursions during transient K+ removal increased 2.5-fold in the presence of HCO 3 , and the rise in [Na+] i produced by inhibition of the Na+/K+ pump was similarly increased 2.5-fold in the presence of HCO 3 . In intact perfused rat liver, HCO 3 increased both Na+/K+ pump activity and O2 consumption. These findings indicate that, in hepatocytes, net coupled Na+ and HCO 3 movement is inward and represents a major determinant of Na+ influx and Na+/K+ pump activity. About half of hepatic Na+/K+ pump activity appears dedicated to recycling Na+ entering in conjunction with HCO 3 to maintain [Na+] i within the physiologic range.  相似文献   

    8.
    Summary A membrane fraction, rich in brush border membranes, was prepared from renal proximal tubules of the spiny dogfish,Squalus acanthias, and the sodium-proton exchange mechanism in these membrane vesicles was investigated by both a rapid filtration technique and the fluorescence quenching of acridine organe.22Na+ uptake was stimulated by an outwardly directed H+ gradient, and was inhibited by amiloride at a single inhibitory site with an apparentK i of approximately 1.7×10–5 M. In the presence of an H i + >H o + gradient, the of the Na+/H+ exchanger were 9.7±0.8 mM and 48.0±12.0 nmol·mg protein–1·min–1, respectively. The uptake of Na+ was electroneutral in the presence of a H+ gradient, indicating a stoichiometry of 1. In the fluorescence studies, quenching of acridine orange occurred in the presence of an outwardly directed Na+ gradient which was inhibited by amiloride. Thus, an electroneutral Na+/H+ exchanger with properties similar to those found in the mammalian kidney is also present in the spiny dogfish and may contribute to the urinary acidification of this marine animal.  相似文献   

    9.
    Summary Gluconate substitution for serosal Cl reduces the transepithelial short-circuit current (I sc) and depolarizes shortcircuited frog skins. These effects could result either from inhibition of basolateral K+ conductance, or from two actions to inhibit both apical Na+ permeability (P Na ap ) and basolateral pump activity. We have addressed this question by studying whole-and split-thickness frog skins. Intracellular Na+ concentration (C Na c ) andP Na ap have been monitored by measuring the currentvoltage relationship for apical Na+ entry. This analysis was conducted by applying trains of voltage pulses, with pulse durations of 16 to 32 msec. Estimates ofP Na ap ) and CNa/c were not detectably dependent on pulse duration over the range 16 to 80 msec. Serosal Cl replacement uniformly depolarized short-circuited tissues. The depolarization was associated with inhibition ofI sc across each split skin, but only occasionally across the whole-thickness preparations. This difference may reflect the better ionic exchange between the bulk medium and the extracellular fluid in contact with the basolateral membranes, following removal of the underlying dermis in the split-skin preparations.P Na ap was either unchanged or increased, and CNa/c either unchanged or reduced after the anionic replacement. These data are incompatible with the concept that serosal Cl replacement inhibitsP Na ap and Na, K-pump activity. Gluconate substutition likely reduces cell volume, triggering inhibition of the basolateral K+ channels, consistent with the data and conclusions of S.A. Lewis, A.G. Butt, M.J. Bowler, J.P. Leader and A.D.C Macknight (J. Membrane Biol. 83:119–137, 1985) for toad bladder. The resulting depolarization reduces the electrical force favoring apical Na+ entry. The volume-conductance coupling serves to conserve volume by reducing K+ solute loss. Its molecular basis remains to be identified.  相似文献   

    10.
    Summary We have measured the intracellular potassium activity, [K+]i and the mechanisms of transcellular K+ transport in reabsorptive sweat duct (RSD) using intracellular ion-sensitive microelectrodes (ISMEs). The mean value of [K+]i in RSD is 79.8±4.1mm (n=39). Under conditions of microperfusion, the [K+]i is above equilibrium across both the basolateral membrane, BLM (5.5 times) and the apical membrane, APM (7.8 times). The Na+/K+ pump inhibitor ouabain reduced [K+]i towards passive distribution across the BLM. However, the [K+]i is insensitive to the Na+/K+/2 Cl cotransport inhibitor bumetanide in the bath. Cl substitution in the lumen had no effect on [K+]i. In contrast, Cl substitution in the bath (basolateral side) depolarized BLM from –26.0±2.6 mV to –4.7*±2.4 mV (n=3;* indicates significant difference) and decreased [K+]i from 76.0±15.2mm to 57.7* ±12.7mm (n=3). Removal of K+ in the bath decreased [K+]i from 76.3±15.0mm to 32.3*±7.6mm (n=4) while depolarizing the BLM from –32.5±4.1 mV to –28.3*±3.0 mV (n=4). Raising the [K+] in the bath by 10-fold increased [K+]i from 81.7±9.0mm to 95.0*±13.5mm and depolarized the BLM from –25.7±2.4 mV to –21.3*±2.9 mV (n=4). The K+ conductance inhibitor, Ba2+, in the bath also increased [K+]i from 85.8±6.7mm to 107.0*±11.5mm (n=4) and depolarized BLM from –25.8±2.2 mV to –17.0*±3.1 mV (n=4). Amiloride at 10–6 m increased [K+]i from 77.5±18.8mm to 98.8*±21.6mm (n=4) and hyperpolarized both the BLM (from –35.5±2.6 mV to –47.8*±4.3 mV) and the APM (from –27.5±1.4 mV to –46.0* ±3.5 mV,n=4). However, amiloride at 10–4 m decreased [K+]i from 64.5±0.9mm to 36.0*±9.9mm and hyperpolarized both the BLM (from –24.7±1.4 mV to –43.5*±4.2 mV) and APM (from –18.3±0.9 mV to –43.5*±4.2 mV,n=6). In contrast to the observations at the BLM, substitution of K+ or application of Ba2+ in the lumen had no effect on the [K+]i or the electrical properties of RSD, indicating the absence of a K+ conductance in the APM. Our results indicate that (i) [K+]i is above equilibrium due to the Na+/K+ pump; (ii) only the BLM has a K+ conductance; (iii) [K+]i is subject to modulation by transport status; (iv) K+ is probably not involved in carrier-mediated ion transport across the cell membranes; and (v) the RSD does not secrete K+ into the lumen.  相似文献   

    11.
    Summary The Na+ requirement for active, electrogenic Cl absorption byAmphiuma small intestine was studied by tracer techniques and double-barreled Cl-sensitive microelectrodes. Addition of Cl to a Cl-free medium bathingin vitro intestinal segments produced a saturable (K m =5.4mm) increase in shortcircuit current (I sc) which was inhibitable by 1mm SITS. The selectivity sequence for the anion-evoked current was Cl=Br>SCN>NO 3 >F=I. Current evoked by Cl reached a maximum with increasing medium Na concentration (K m =12.4mm). Addition of Na+, as Na gluconate (10mm), to mucosal and serosal Na+-free media stimulated the Cl current and simultaneously increased the absorptive Cl flux (J ms Cl ) and net flux (J net Cl ) without changing the secretory Cl flux (J sm Cl ). Addition of Na+ only to the serosal fluid stimulatedJ ms Cl much more than Na+ addition only to the mucosal fluid in paired tissues. Serosal DIDS (1mm) blocked the stimulation. Serosal 10mm Tris gluconate or choline gluconate failed to stimulateJ ms Cl . Intracellular Cl activity (a Cl i ) in villus epithelial cells was above electrochemical equilibrium indicating active Cl uptake. Ouabain (1mm) eliminated Cl accumulation and reduced the mucosal membrane potential m over 2 to 3 hr. In contrast, SITS had no effect on Cl accumulation and hyperpolarized the mucosal membrane. Replacement of serosal Na+ with choline eliminated Cl accumulation while replacement of mucosal Na+ had no effect. In conclusion by two independent methods active electrogenic Cl absorption depends on serosal rather than mucosal Na+. It is concluded that Cl enters the cell via a primary (rheogenic) transport mechanism. At the serosal membrane the Na+ gradient most likely energizes H+ export and regulates mucosal Cl accumulation perhaps by influencing cell pH or HCO 3 concentration.  相似文献   

    12.
    Summary The results of the accompanying electrophysiological study of the cloned Na+/glucose cotransporter from small intestine (Parent, L., Supplisson, S., Loo, D.D.F., Wright, E.M. (1992) J. Membrane Biol. 125:49–62) were evaluated in terms of a kinetic model. The steady-state and presteady-state cotransporter properties are described by a 6-state ordered kinetic model (mirror symmetry) with a Na+:MDG stoichiometry of 2. Carrier translocation in the membrane as well as Na+ and sugar binding and dissociation are treated as a function of their individual rate constants. Empty carrier translocation and Na+ binding/ dissociation are the only steps considered to be voltage dependent. Currents were associated with the translocation of the negatively charged carrier in the membrane. Negative membrane potential facilitates sugar transport. One numerical solution was found for the 14 rate constants that account quantitatively for our experiment observations: i.e., (i) sigmoidal shape of the sugar-specific current-voltage curves (absence of outward currents and inward current saturation at high negative potentials), (ii) Na+ and voltage dependence of K 0.5 sugar and i max sugar , (iii) sugar and voltage dependence of K 0.5 Na and i max Na , (iv) presteady-state currents and their dependence on external Na+, MDG and membrane potential, and (v) and carrier Na+ leak current. We conclude that the main voltage effect is on carrier translocation. Na+ ions that migrate from the extracellular medium to their binding sites sense 25 to 35% of the transmembrane voltage, whereas charges associated with the carrier translocation experiences 60 to 75% of the membrane electrical field. Internal Na+ ion binding is not voltage dependent. In our nonrapid equilibrium model, the rate-limiting step for sugar transport is a function of the membrane potential, [Na]0 and [MDG]0. At 0 mV and at saturating [Na]0 and [MDG]0, the rate-limiting step for sugar transport is the empty carrier translocation (5 sec–1). As the membrane potential is made more negative, the empty carrier translocation gets faster and the internal Na+ dissociation becomes increasingly rate limiting. However, as [Na]0 is decreased to less than 10 mm, the rate-limiting step is the external Na+ ions binding in the 0 to –150 mV potential range. At 0 mV, the external Na+ dissociation constant KNa is 80 mm and decreases to 24 mm at –150 mV. The external sugar dissociation constant KNaS is estimated to be 200 m and voltage independent. Finally, the internal leak pathway (CNa2 translocation) is insignificant. While we cannot rule out a more complex kinetic model, the electrical properties of the cloned Na+/glucose cotransporter are found to be adequately described by this 6-state kinetic model.We are grateful to Drs. A. Berteloot, S. Ciani, and J.-Y. Lapointe for stimulating discussions and thank our colleagues for comments. L.P. was recipient of a post-doctoral fellowship from the Medical Research Council of Canada. This work was supported by a grant from the U.S. Public Health Service DK 19567.  相似文献   

    13.
    Summary The volume regulatory response of the Ehrlich ascites tumor was studied in KCl-depleted, Na+-enriched cells. Subsequent incubation in K+-containing NaCl medium results in the reaccumulation of K+, Cl, water and the extrusion of Na+. The establishment of the physiological steady state is due primarily to the activity of 2 transport systems. One is the Na/K pump (K M for K 0 + =3.5mm;J max=30.1 mEq/kg dry min), which in these experiments was coupled 1K+/1 Na+. The second is the Cl-dependent (Na++K+) cotransport system (K M for K 0 + =6.8mm;J max=20.8 mEq/kg dry min) which mediates, in addition to net ion uptake in the ratio of 1K+1Na+2Cl, the exchange of K i + for K 0 + . The net passive driving force on the cotransport system is initially inwardly directed but does not decrease to zero at the steady state. This raises the possibility of the involvement of an additional source of energy. Although cell volume increases concomitant with net ion uptake, this change does not appear to be a major factor regulating the activity of the cotransport system.  相似文献   

    14.
    Summary Sulphate uptake by rabbit ileal brush border membrane vesicles was stimulated by a transmembrane sodium gradient ([Na+] o >[Na+] i ), but not by a similar potassium gradient.35SO 4 2– influx (J oi SO4 ) from outside (o) to inside (i) these vesicles was a hyperbolic function of [SO 4 2– ] o and the affinity constant for anion transport was strongly influenced by [Na+] o (100mm Na+,K t SO4 =0.52mm SO 4 2– ; 10mm Na+,K t SO4 =4.32mm SO 4 2– ).J t SO4 was a sigmoidal function of [Na+] o at pH 7.4 for both low (0.2m) and high (4.0mm) [SO 4 2– ] o . The Na+-dependency ofJ t SO4 was examined at pH 6.0, 7.4, and 8.0 (same pH inside and outside). At pH 6.0 and 7.4 sigmoidal Na+-dependentJ t SO4 exhibited nonlinear Eadie-Hofstee plots indicative of a transport mechanism capable of binding a variable number of sodium ions over the [Na+] o range used. Hill plots of anion transport under these conditions displayed slopes near unity at low [Na+] o and slopes approximating 2.0 at higher cation concentrations. At pH 8.0, Na+-dependentJ t SO4 was hyperbolic and showed linear Eadie-Hofstee and Hill plots, the latter with a single slope near 1.0. When a H+ gradient was imposed across the vesicle wall (pH i =8.0, pH o =6.0), Na+-dependentJ t SO4 was hyperbolic and significantly increased at each [Na+] o over values observed using bilateral pH 8.0. In contrast, a H+ gradient oriented in the opposite direction (pH i =6.0, pH o =8.0) led to Na+-dependentJ t SO4 that was sigmoidal and significantly lower at each [Na+] o than values found using bilateral pH 6.0. Electrogenicity ofJ t SO4 at pH 8.0 for both high and low [Na+] o was demonstrated by using a valinomycin-induced transmembrane electrical potential difference. At pH 6.0, electrogenicJ t SO4 occurred only at low [Na+] o (5mm); anion transfer was electroneutral at 50mm Na+. A model is proposed for proton regulation of sodium sulphate cotransport where flux stoichiometry is controlled by [H+] i and sodium binding affinity is modified by [H+] o . Preliminary experiments with rabbit proximal tubular brush border membrane vesicles disclosed similarJ t SO4 kinetic properties and a common transport mechanism may occur in both tissues.  相似文献   

    15.
    Summary In goldfish intestine chloride was substituted by large inorganic anions (gluconate or glucuronate) either mucosally, serosally or bilaterally. Changes in intracellular activities of chloride (a i Cl), sodium (a i Na+) and potassium (a i K+), pHi, relative volume, membrane and transepithelial potentials, transepithelial resistance and voltage divider ratio were measured. Control values were:a i Cl=35 meq/liter, a i Na+=11 meq/liter and a i K+=95 meq/liter. During bilateral substitution the latter two did not change while a i Cl dropped to virtually zero.Mucosal membrane potentials (ms) were: control,-53 mV; serosal substitution,-51 mV; bilateral substitution,-66 mV; while during mucosal substitution a transient depolarization occurred and the final steady state ms was-66 mV.During control and bilateral substitution the transepithelial potentials (ms) did not differ from zero. During unilateral substitutions ms was small, in the order of magnitude of the errors in the liquid junction potentials near the measuring salt bridges.During bilateral substitution pH i increased 0.4 pH units. Cellular volume decreased during mucosal substitution to 88% in 40 min; after serosal substitution it transiently increased, but the new steady-state value was not significantly above its control value.Three minutes after mucosal substitution ana i Cl of approx. 10 meq/liter was measured.Chemical concentrations of Na, K and Cl were determined under control conditions and bilateral substitution. Cl concentrations were also measured as a function of time after unilateral substitutions.The data indicate an electrically silent chloride influx mechanism in the brush border membrane and an electrodiffusional chloride efflux in the basolateral membrane. A substantial bicarbonate permeability is present in the basolateral membrane. The results are in agreement with the observed changes in membrane resistances, volume changes and pH changes.  相似文献   

    16.
    The sodium ion gradient and the membrane potential were found to be the driving forces of sulfate accumulation in the marine sulfate reducer Desulfovibrio salexigens. The protonmotive force of –158 mV, determined by means of radiolabelled membrane-permeant probes, consisted of a membrane potential of –140 mV and a pH gradient (inside alkaline) of 0.3 at neutral pHout. The sodium ion gradient, as measured with silicone oil centrifugation and atomic absorption spectroscopy, was eightfold ([Na+]out/[Na+]in) at an external Na+ concentration of 320 mM. The resulting sodium ionmotive force was –194 mV and enabled D. salexigens to accumulate sulfate 20000-fold at low external sulfate concentrations (<0.1 M). Under these conditions high sulfate accumulation occurred electrogenically in symport with three sodium ions (assuming equilibrium with the sodium ion-motive force). With increasing external sulfate concentrations sulfate accumulation decreased sharply, and a second, low-accumulating system symported sulfate electroneutrally with two sodium ions. The sodium-ion gradient was built up by electrogenic Na+/H+ antiport. This was demonstrated by (i) measuring proton translocation upon sodium ion pulses, (ii) studying uptake of sodium salts in the presence or absence of the electrical membrane potential, and (iii) the inhibitory effect of the Na+/H+ antiport inhibitor propylbenzilylcholin-mustard HCl (PrBCM). With resting cells ATP synthesis was found after proton pulses (changing the pH by three units), but neither after pulses of 500 mM sodium ions, nor in the presence of the uncoupler tetrachorosalicylanilide (TCS). It is concluded that the energy metabolism of the marine strain D. salexigens is based primarily on the protonmotive force and a protontranslocating ATPase.Abbreviations MOPS morpholinopropanesulfonic acid - TCS tetrachlorosalicylanilide - PrBCM propylbenzilylcholin-mustard HCl - Tris tris(hydroxymethyl)aminomethane - TPP+ bromide tetraphenylphosphonium bromide  相似文献   

    17.
    Summary Intracellular pH (pH i ) of the acinar cells of the isolated, superfused mouse lacrimal gland has been measured using pH-sensitive microelectrodes. Under nonstimulated condition pH i was 7.25, which was about 0.5 unit higher than the equilibrium pH. Alterations of the external pH by ±0.4 unit shifted pH i only by ±0.08 unit. The intracellular buffering value determined by applications of 25mm NH 4 + and bicarbonate buffer solution gassed with 5% CO2/95% O2 was 26 and 46mm/pH, respectively Stimulation with 1 m acetylcholine (ACh) caused a transient, small decrease and then a sustained increase in pH i . In the presence of amiloride (0.1mm) or the absence of Na+, application of ACh caused a significant decrease in pH i and removal of amiloride or replacement with Na+-containing saline, respectively, rapidly increased the pH i . Pretreatment with DIDS (0.2mm) did not change the pH i of the nonstimulated conditions; however, it significantly enhanced the increase in pH i induced by ACh. The present results showed that (i) there is an active acid extrusion mechanism that is stimulated by ACh; (ii) stimulation with ACh enhances the rate of acid production in the acinar cells; and (iii) the acid extrusion mechanism is inhibited by amiloride addition to and Na+ removal from the bath solution. We suggest that both Na+/H+ and HCO 3 /Cl exchange transport mechanisms are taking roles in the intracellular pH regulation in the lacrimal gland acinar cells.  相似文献   

    18.
    Summary Passive proton permeability of gastrointestinal apical membrane vesicles was determined. The nature of the pathways for proton permeation was investigated using amiloride. The rate of proton permeation (k H + was determined by addition of vesicles (pH i = 6.5) to a pH 8.0 solution containing acridine orange. The rate of recovery of acridine orange fluorescence after quenching by the acidic vesicles ranged from 4 × 10–3 (gastric parietal cell stimulation-associated vesicles; SAV) and 5 × 10–3 (duodenal brush-border membrane vesicles; dBBMV) to 11 × 10+–3 sec–1 (ileal BBMV; iBBMV). Amiloride, 0.03 and 0.1 mm, significantly reduced the rate of proton permeation in dBBMV and iBBMV, but not gastric SAV. The decreases in k H + were proportionately greater in iBBMV as compared with dBBMV. The presence of Na+/H+ exchange was demonstrated in both dBBMV and iBBMV by proton-driven (pH i < pH o ) 22Na+ uptake. Evidence was also sought for the conductive nature of pathways for proton permeation. Intravesicular acidification, again determined by quenching of acridine orange fluorescence, was observed during imposition of K+-diffusion potential ([K+] i [K+ o ). In dBBMV and iBBMV, intravesicular acidification was enhanced in the presence of the K+-ionophore valinomycin, indicating that the native K+ permeability is rate limiting. In the presence of valinomycin, the K+-diffusion potential drove BBMV intravesicular acidification to levels close to the electrochemical potential. In gastric SAV, acidification was not limited by the K+ permeability. Valinomycin was without effect, but the K+/H+ ionophore nigericin enhanced acidification in gastric SAV, illustrating the low proton permeability of these membranes. Amiloride, 0.03–1 mm, resulted in concentration-dependent reductions of K+-diffusion potential-driven acidification in dBBMV and iBBMV but not in gastric SAV. These data demonstrate that proton permeation in the three membrane types is rheogenic. The sensitivity of the proton-conductive pathways in intestinal BBMV to high concentrations of amiloride correlated with the presence of the Na+/H+ antiport and indicates that this transmembrane protein may represent a pathway for proton permeation.We thank Ruth Briggs for assistance with the Na/H exchange experiments. This work was supported by a grant from the Medical Research Council (G8418056CA).  相似文献   

    19.
    A number of data are consistent with the hypothesis that increases in intracellular Na+ concentration (Na+ i) during ischemia and early reperfusion lead to calcium overload and exacerbation of myocardial injury. However, the mechanisms underlying the increased Na+ i remain unclear. 23Na nuclear magnetic resonance spectroscopy was used to monitor Na+ i in isolated rat hearts perfused with a high concentration of fatty acid as can occur under some pathological conditions. Whole-cell patch-clamp experiments were also performed on isolated cardiomyocytes in order to investigate the role of voltage-gated sodium channels. Na+ i increased to substantially above control levels during no-flow ischemia. The results show that a pharmacological reduction of Na+ i increase by cariporide (1 mol/L, a Na+/H+ exchange blocker) is not the only protection against ischemia-reperfusion damage, but that such protection may also be brought about by metabolic action aimed at reducing fatty acid utilization by myocardial cells. This action was obtained in the presence of etomoxir (0.1 mol/L), an inhibitor of carnitine palmitoyltransferase-1 (the key enzyme involved in fatty acid uptake by the mitochondria) which also decreases long-chain acyl carnitine accumulation. The possibility of Na+ channels participating in Na+ i increase as a consequence of alterations in cardiac metabolism was studied in isolated cells. Sustained INa was stimulated by the presence of lysophosphatidylcholine (LPC, 10 mol/L) whose accumulation during ischemia is, at least partly, dependent on increased long-chain acyl carnitine. Current activation was particularly significant in the range of potentials between –60 and –20 mV. This may have particular relevance in ischemia. The quantity of charge carried by sustained INa was reduced by 24% in the presence of 1 mol/L cariporide. Therefore, limitation of long-chain fatty acid metabolism, and consequent limitation of ischemia-induced long-chain acyl carnitine accumulation, may contribute to reducing intracellular Na+ increase during ischemia-reperfusion.  相似文献   

    20.
    The ionic fluxes associated with the ATP-dependent acidification of endocytic vesicles were studied in a preparation isolated from rabbit reticulocytes enriched for transferrin-transferrin receptor complexes. No vesicle acidification was observed in the absence of intra- and extravesicular ions (sucrosein/sucroseout), while maximal acidification was observed with NaClin/KClout·K in + was a poor substitute for Na in + , and Cl out could be replaced by other anions with the following efficacy of acidification: Cl>Br>I>PO 4 3– >gluconate>SO 4 2– . Flux studies using36Cl and22Na+ showed that the vesicles had a permeability for Cl and Na+, and that ATP-dependent H+ pumping was accompanied by a net influx of Cl and a net efflux of Na+ provided that there was a Na+ concentration gradient. After 3 mins, the time necessary to maximal acidification, the electrical charge generated by the entrance of H+ was countered to about 45% by the Cl influx and to about 42% by the Na+ efflux. These studies demonstrated that both Cl and Na+ fluxes are necessary for optimal endocytic vesicle acidification.  相似文献   

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