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1.
Primary cultures of both mouse astrocytes and neurons accumulate more125I than36Cl from the medium. The average cell/medium ratio of125I of astrocytes (1.01) is greater than that of neurons (0.74), whereas the ratio of36Cl of neurons (0.47) is greater than that of astrocytes (0.25). The equilibrium potentials of both125I and36Cl calculated from the cell/medium ratios in astrocytes and neurons are significantly lower than their corresponding resting transmembrane potentials which suggest that both iodide and chloride are actively transported into both cell types. With respect to different transport inhibitors, thiocyanate is more effective in inhibiting125I uptake whereas furosemide is more effective in inhibiting36Cl uptake. Radioiodide uptake by mouse astrocytes was directly proportional to the [Na+]o but was not significantly affected by changes of [Cl]o or [HCO 3 ]o, except that it is low in bicarbonate-free medium. Radiochloride uptake by astrocytes was inversely related to [Cl]o and [HCO 3 ]o and was not affected [Na+]o, except that it was low in sodium-free medium. Radioiodide uptake by neurons was directly related to [Na+]o between 60 and 140 mM and inversely related to [HCO 3 ]o between 10 and 40 mM, but it was not affected by [Cl]o. Radiochloride uptake by neurons was directly related to [Cl]o and to [Na+]o between 60 and 140 mM and was not affected by [HCO 3 ]o. However, in sodium-free medium both125I and36Cl uptakes into neurons were higher than those in [Na+]o between 5 and 60 mM. These results indicate that uptake of125I and36Cl into astrocytes and neurons are different in their ion dependence and that they are under separate regulation.Special issue dedicated to Dr. Paola S. Timiras  相似文献   

2.
Summary Intracellular pH (pHi) regulation was studied in crayfish neurons with pH-, and Na+-sensitive microelectrodes. It was confirmed to involve both a HCO 3 -dependent and a HCO 3 -independent mechanism. The latter was identified as the amiloride-sensitive Na+/H+ exchange described in vertebrate cells. Its dependence on extracellular pH (pHe) and Na+ concentration ([Na+]e) was studied in CO2-free external solutions at 20°C. The steady state pHi and the rate constant (k) of the exponential pHi recovery following an acid load were determined. At pHe=7.5 and [Na+]e=200 mM, the average steady state pHi was 7.09±0.12 (as compared to 7.30±0.10 in the presence of 5 mM bicarbonate). The dependence of the rate constant of recovery on [Na+]e could be described by Michaelis-Menten kinetics; at pHe=7.5 the apparentK m andK max were 39 mM and 1.4 mmol·l–1·min–1, respectively. Decreasing pHe reduced the rate of recovery, the variations ofk with pHe conforming to a simple titration curve with an apparent pK of 7.05±0.21. These kinetic properties of the Na+/H+ exchange in crayfish neurons are similar to those described in vertebrate cells.Preliminary results were presented at the First International Congress of Comparative Physiology and Biochemistry (Liège, Belgium, 1984)  相似文献   

3.
The kinetics of the light-driven Cl? uptake pump of Synechococcus R-2 (PCC 7942) were investigated. The kinetics of Cl? uptake were measured in BG-11 medium (pHo, 7·5; [K+]o, 0·35 mol m?3; [Na+]o, 18 mol m?3; [Cl?]o, 0·508 mol m?3) or modified media based on the above. Net36Cl? fluxes (?Cl?o,i) followed Michaelis-Menten kinetics and were stimulated by Na+ [18 mol m?3 Na+ BG-11 ?Cl?max= 3·29±0·60 (49) nmol m?2 s?1 versus Na+-free BG-11 ?Cl?max= 1·02±0·13 (54) nmol m?2 s?1] but the Km was not significantly different in the presence or absence of Na+ at pHo 10; the Km was lower, but not affected by the presence or absence of Na+ [Km = 22·3±3·54 (20) mmol m?3]. Na+ is a non-competitive activator of net ?Cl?o,i. High [K+]o (18 mol m?3) did not stimulate net ?Cl?o,i or change the Km in Na+-free medium. High [K+]o (18 mol m?3) added to Na+ BG-11 medium decreased net ?Cl?o,i [18 mol m?3K+ BG-11; ?Cl?max= 2·50±0·32 (20) nmol m?2 s?1 versus BG-11 medium; ?Cl?max= 3·35±0·56 (20) nmol m?2 s?1] but did not affect the Km 55·8±8·100 (40) mmol m?3]. Na+-stimulation of net ?Cl?o,i followed Michaelis-Menten kinetics up to 2–5 mol m?3 [Na+]o but higher concentrations were inhibitory. The Km for Na+-stimulation of net ?Cl?o,i [K1/2(Na+)] was different at 47 mmol m?3 [Cl?]o (K1/2[Na+] = 123±27 (37) mmol m?3]. Li+ was only about one-third as effective as Na+ in stimulating Cl? uptake but the activation constant was similar [K1/2(Li+) = 88±46 (16) mmol m?3]. Br? was a competitive inhibitor of Cl? uptake. The inhibition constant (Ki) was not significantly different in the presence and absence of Na+. The overall Ki was 297±23 (45) mmol m?3. The discrimination ratio of Cl? over Br? (δCl?/δBr?) was 6·38±0·92 (df = 147). Synechococcus has a single Na+-stimulated Cl? pump because the Km of the Cl? transporter and its discrimination between Cl? and Br? are not significantly different in the presence and absence of Na+. The Cl? pump is probably driven by ATP.  相似文献   

4.
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   

5.
Summary After swelling in hyposmotic solution, Ehrlich ascites tumor cells shrink towards their original volume. Upon restoration of isosmolality (300 mOsm) the cells initially shrink but subsequently recover volume. This regulatory volume increase (RVI) is completely blocked when [Na+] o or [Cl] o is reduced by 50% in the presence of normal [K+] o . With normal [NaCl] o but less than 2 mm [K+] o , not only is volume recovery blocked but the cells lose KCl and shrink. When [K+] o is increased to 5 mm there is a rapid net uptake of K+ and Cl which results in volume recovery. This suggests that the reswelling phase requires the simultaneous presence of Na+, K+, and Cl. Although ouabain has no effect on volume recovery, bumetanide completely blocks RVI by inhibiting a cotransport pathway that mediates the net uptake of Na+, K+ and Cl in the ratio of 1Na1K2Cl. Na+ that accumulates is then replaced by K+ via the Na/K pump.I wish to thank my colleague, Dr. Thomas C. Smith for advice and helpful comments during the course of these studies. The excellent technical assistance provided by Rebecca Corcoran-Merrill is gratefully acknowledged.This investigation was supported by Grant CA 32927 from the National Cancer Institute, U.S. Public Health Service.  相似文献   

6.
Astrocytes fulfill a central role in regulating K+ and glutamate, both released by neurons into the extracellular space during activity. Glial glutamate uptake is a secondary active process that involves the influx of three Na+ ions and one proton and the efflux of one K+ ion. Thus, intracellular K+ concentration ([K+]i) is potentially influenced both by extracellular K+ concentration ([K+]o) fluctuations and glutamate transport in astrocytes. We evaluated the impact of these K+ ion movements on [K+]i in primary mouse astrocytes by microspectrofluorimetry. We established a new noninvasive and reliable approach to monitor and quantify [K+]i using the recently developed K+ sensitive fluorescent indicator Asante Potassium Green-1 (APG-1). An in situ calibration procedure enabled us to estimate the resting [K+]i at 133±1 mM. We first investigated the dependency of [K+]i levels on [K+]o. We found that [K+]i followed [K+]o changes nearly proportionally in the range 3–10 mM, which is consistent with previously reported microelectrode measurements of intracellular K+ concentration changes in astrocytes. We then found that glutamate superfusion caused a reversible drop of [K+]i that depended on the glutamate concentration with an apparent EC50 of 11.1±1.4 µM, corresponding to the affinity of astrocyte glutamate transporters. The amplitude of the [K+]i drop was found to be 2.3±0.1 mM for 200 µM glutamate applications. Overall, this study shows that the fluorescent K+ indicator APG-1 is a powerful new tool for addressing important questions regarding fine [K+]i regulation with excellent spatial resolution.  相似文献   

7.
The influence of cytosolic pH (pHi) in controlling K+-channel activity and its interaction with cytosolic-free Ca2+ concentration ([Ca2+]i) was examined in stomatal guard cells ofVicia faba L. Intact guard cells were impaled with multibarrelled microelectrodes and K+-channel currents were recorded under voltage clamp while pHi or [Ca2+]i was monitored concurrently by fluorescence ratio photometry using the fluorescent dyes 2,7-bis (2-carboxyethyl)-5(6)-carboxyfluorescein (BCECF) and Fura-2. In 10 mM external K+ concentration, current through inward-rectifying K+ channels (IK,in) was evoked on stepping the membrane from a holding potential of –100 mV to voltages from –120 to –250 mV. Challenge with 0.3-30 mM Na+-butyrate and Na+-acetate outside imposed acid loads, lowering pHi from a mean resting value of 7.64 ± 0.03 (n = 25) to values from 7.5 to 6.7. The effect on pHi was independent of the weak acid used, and indicated a H+-buffering capacity which rose from 90 mM H+/pH unit near 7.5 to 160 mM H+/pH unit near pHi 7.0. With acid-going pHi, (IK,in) was promoted in scalar fashion, the current increasing in magnitude with the acid load, but without significant effect on the current relaxation kinetics at voltages negative of –150 mV or the voltage-dependence for channel gating. Washout of the weak acid was followed by transient rise in pHi lasting 3–5 min and was accompanied by a reduction in (IK,in) before recovery of the initial resting pHi and current amplitude. The pHi-sensitivity of the current was consistent with a single, titratable site for H+ binding with a pKa near 6.3. Acid pHi loads also affected current through the outward-rectifying K+ channels (IK,out) in a manner antiparallel to (IK,in) The effect on IK, out was also scalar, but showed an apparent pKa of 7.4 and was best accommodated by a cooperative binding of two H+. Parallel measurements showed that Na+-butyrate loads were generally without significant effect on [Ca2+]i, except when pHi was reduced to 7.0 and below. Extreme acid loads evoked reversible increases in [Ca2+]i in roughly half the cells measured, although the effect was generally delayed with respect to the time course of pHi changes and K+-channel responses. The action on [Ca2+]i coincided with a greater variability in (IK,in) stimulation evident at pHi values around 7.0 and below, and with negative displacements in the voltage-dependence of (IK,in) gating. These results distinguish the actions of pHi and [Ca2+]i in modulating (IK,in) they delimit the effect of pHi to changes in current amplitude without influence on the voltage-dependence of channel gating; and they support a role for pHi as a second messenger capable of acting in parallel with, but independent of [Ca2+]i in controlling the K+ channels.Abbreviations BCECF 2,7-bis (2-carboxyethyl)-5(6)-carboxy fluorescein - [Ca2+]i cytosolic free Ca2+ concentration - gK ensemble (steady-state) K+-channel conductance - IK,out, IK,in outward-, inward-rectifying K+ channel (current) - IN current-voltage (relation) - Mes 2-(N-morpholinolethanesulfonic acid - pHi cytosolic pH - V membrane potential  相似文献   

8.
Several aspects of Mg2+ homeostasis were investigated in cultured chicken heart cells using the fluorescent Mg2+ indicator, FURAPTRA. The concentration of cytosolic Mg2+ ([Mg2+]i) is 0.48 ± 0.03 mM (n = 31). To test whether a putative Na/Mg exchange mechanism controls [Mg2+]i below electrochemical equilibrium, we manipulated the Na+ gradient and assessed the effects on [Mg2+]i. When extracellular Na+ was removed, [Mg2+]i increased; this increase was not altered in Mg-free solutions, but was attenuated in Ca-free solutions. A similar increase in [Mg2+]i, which was dependent upon extracellular Ca2+, was observed when intracellular Na+ was raised by inhibiting the Na/K pump with ouabain. These results do not provide evidence for Na/Mg exchange in heart cells, but they suggest that Ca2+ can modulate [Mg2+]i. In addition, removing extracellular Na+ caused a decrease in intracellular pH (pHi), as measured by pH-sensitive microelectrodes, and this acidification was attenuated when Cat+ was also removed from the solution. These results suggest that Ca2+ and H+ interact intracellularly. Since changes in the Na+ gradient can also alter pHi, we questioned whether pH can modulate [Mg2+]i. pHi was manipulated by the NH4Cl prepulse method. NH4 +-evoked changes in pHi, as measured by the fluorescent indicator BCECF, were accompanied by opposite changes in [Mg2+]i; [Mg2+]i changed by –0.16 mM/unit pH. These NH4 +-evoked changes in [Mg2+]i were not caused by movements of Mg2+ or Ca2+ across the sarcolemma or by changes in cytosolic Ca2+. Additionally, pHi was manipulated by changing extracellular pH (pHo). When pHo was decreased from 7.4 to 6.3, pHi decreased by 0.64 units and [Mg2+]i increased by 0.12 mM; in contrast, when pHo was raised from 7.4 to 8.3, pHi increased by 0.6 units and [Mg2+]i did not change significantly. The results of our investigations suggest that Ca 2+ and H+ can modulate [Mg2+]i, probably by affecting cytosolic Mg2+ binding and/or subcellular Mg2+ transport and that such redistribution of intracellular Mg2+ may play an important role in Mg2+ homeostasis in cardiac cells.  相似文献   

9.
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   

10.
Summary Internodal cells ofChara australis were made tonoplast-free by replacing the cell sap with EGTA-containing media; then the involvement of internal Cl and K+ in the excitation of the plasmalemma was studied.[Cl] i was drastically decreased by perfusing the cell interior twice with a medium lacking Cl. The lowered [Cl] i was about 0.01mm. Cells with this low [Cl] i generated action potential and showed anN-shapedV–I curve under voltage clamped depolarization like Cl-rich cells containing 13 or 29mm Cl.E m at the peak of the action potential was constant at [Cl] i between 0.01 and 29mm. The possibility that the plasmalemma becomes as permeable to other anions as to Cl during excitation is discussed.At [Cl] i higher than 48mm, cells were inexcitable. When anions were added to the perfusion medium to bring the K+ concentration to 100mm, NO 3 , F, SO 4 2– , acetate, and propionate inhibited the generation of action potentials like Cl, while methane sulfonate, PIPES, and phosphate did not inhibit excitability.The duration of the action potential depended strongly on the intracellular K+ concentration. It decreased as [K+] i (K-methane sulfonate) increased. Increase in [Na+] i (Na-methane sulfonate) also caused its decrease, although this effect was weaker than that of K+. The action of these monovalent cations on the duration of the action potential is the opposite of their action on the membrane from the outside (cf. Shimmen, Kikuyama & Tazawa, 1976,J. Membrane Biol. 30:249).  相似文献   

11.
Summary Recently we proposed that cytoplasmic acidification of low K+ (LK) sheep erythrocytes may stimulate ouabain-resistant Cl-dependent K+ flux (K+Cl cotransport), also known to be activated by cell swelling, treatment with N-ethylmaleimide (NEM), or removal of cellular bivalent cations. Here we studied the dependence of K+ transport on intracellular and extracellular pH (pH i , pH o ) varied either simultaneously or independently using the Cl/HCO 3 exchange inhibitor 4,4, diisothiocyanatostilbene-3,2-disulfonic acid (DIDS). In both control and NEM-treated LK cells volumes were kept near normal by varying extracellular sucrose. Using DIDS as an effective pH clamp, both K+ efflux and influx of Rb+ used as K+ congener were strongly activated at acid pH i and alkaline pH o . A small stimulation of K+ (Rb+) flux was also seen at acid pH i in the absence of DIDS, i.e., when pH i pH o . Anti-L l serum, known to inhibit K+Cl cotransport, prevented the pH i -stimulated K+ (Rb+) fluxes. Subsequent to NEM treatment at pH 6, K+ (Rb+) fluxes were activated only by raising pH, and thus were similar to the pH activation profile of K+ (Rb+) fluxes in DIDS-treated cells with pH o varied at constant physiologic pH i . Anti-L l , which inhibited NEM-stimulated K+ (Rb+) fluxes, failed to do so in NEM-plus DIDS-treated cells. Thus, NEM treatment interferes with the internal but not with the external pH-sensitive site.  相似文献   

12.
Summary We have studied the kinetic properties of rabbit red cell (RRBC) Na+/Na+ and Na+/H+ exchanges (EXC) in order to define whether or not both transport functions are conducted by the same molecule. The strategy has been to determine the interactions of Na+ and H+ at the internal (i) and external (o) sites for both exchanges modes. RRBC containing varying Na i and H l were prepared by nystatin and DIDS treatment of acid-loaded cells. Na+/Na+ EXC was measured as Na o -stimulated Na+ efflux and Na+/H+ EXC as Na o -stimulated H+ efflux and pH o -stimulated Na+ influx into acid-loaded cells.The activation of Na+/Na+ EXC by Na o at pH i 7.4 did not follow simple hyperbolic kinetics. Testing of different kinetic models to obtain the best fit for the experimental data indicated the presence of high (K m 2.2 mM) and low affinity (K m 108 mM) sites for a single- or two-carrier system. The activation of Na+/H+ EXC by Na o (pH i 6.6, Na i <1 mM) also showed high (K m 11 mM) and low (K m 248 mM) affinity sites. External H+ competitively inhibited Na+/Na+ EXC at the low affinity Na o site (K H 52 nM) while internally H+ were competitive inhibitors (pK 6.7) at low Na i and allosteric activators (pK 7.0) at high Na i .Na+/H+ EXC was also inhibited by acid pH o and allosterically activated by H i (pK 6.4). We also established the presence of a Na i regulatory site which activates Na+/H+ and Na+/Na+ EXC modifying the affinity for Na o of both pathways. At low Na i , Na+/Na+ EXC was inhibited by acid pH i and Na+/H+ stimulated but at high Na i , Na+/Na+ EXC was stimulated and Na+/H+ inhibited being the sum of both pathways kept constant. Both exchange modes were activated by two classes of Na o sites,cis-inhibited by external H o , allosterically modified by the binding of H+ to a H i regulatory site and regulated by Na i . These findings are consistent with Na+/Na+ EXC being a mode of operation of the Na+/H+ exchanger.Na+/H+ EXC was partially inhibited (80–100%) by dimethyl-amiloride (DMA) but basal or pH i -stimulated Na+/Na+ EXC (pH i 6.5, Na i 80 mM) was completely insensitive indicating that Na+/Na+ EXC is an amiloride-insensitive component of Na+/H+ EXC. However, Na+ and H+ efflux into Na-free media were stimulated by cell acidification and also partially (10 to 40%) inhibited by DMA: this also indicates that the Na+/H+ EXC might operate in reverse or uncoupled modes in the absence of Na+/Na+ EXC.In summary, the observed kinetic properties can be explained by a model of Na+/H+ EXC with several conformational states, H i and Na i regulatory sites and loaded/unloaded internal and external transport sites at which Na+ and H+ can compete. The occupancy of the H+ regulatory site induces a conformational change and the occupancy of the Na i regulatory site modulates the flow through both pathways so that it will conduct Na+/H+ and/or Na+/Na+ EXC depending on the ratio of internal Na+:H+.  相似文献   

13.
Summary Efflux of42K+ was measured in frog sartorius muscles equilibrated in depolarizing solutions with external K+ concentrations ([K+] o ) between 75 and 300mm and NaCl concentrations of 60, 120, or 240mm. For several combinations of KCl and NaCl, steady-state internal potentials (V i) were the same for different [K+] o . For the range ofV i examined, K+ efflux occurs principally through the K+ inward rectifier channels. When external K+ is removedV i remains constant for 2 to 3 hr because of the high membrane conductance to Cl, but K+ efflux drops by about one order of magnitude.External Ba2+ in the presence or absence of external K+ produces an inhibition of K+ efflux described by a relation of the formu=(u1/(1+C)[Ba2+] o ))+u 2, whereu is the uninhibited fraction of K+ efflux;u 1, u2 andC are constants; andu 1+u2=1.C depends both on [K+] o andV i. When [K+] o 75mm, increasing [K+] o at constantV i reduces Ba2+ sensitivity. For constantV i–30 mV, Ba2+ sensitivity is less when [K+] o =0 than when [K+] o 75mm. When [K+] o =0, Ba2+ sensitivity decreases asV i is made more positive. The dependence of the Ba2+ sensitivity onV i at constant [K+] o is greater when [K+] o =0 than when [K+] o 75mm.Both the activation of K+ efflux by external K+ and the Ba2+ inhibition of K+ efflux can be explained on the basis of two membrane control sites associated with each channel. When both sites are occupied by K+, the channels are in a high flux state. When one or both sites are empty, the channels are in a low, nonzero flux state. When Ba2+ occupies either site, K+ efflux is further reduced. The reduction of Ba2+-sensitivity by increasing [K+] o at high [K+] o is attributable to the displacement of Ba2+ from the control sites by K+. The increased Ba2+ sensitivity produced by going from [K+] o =0 to [K+] o >-75mm whenV i–30 mV is attributable to states in which Ba2+ occupies one site and K+ the other when [K+] o 0. The smallerV i dependence of the Ba2+ sensitivity when [K+] o 75mm compared to [K+] o =0 is attributable to the necessity that Ba2+ displace K+ at the control sites when [K+] o is high but not when [K+] o =0.  相似文献   

14.
Neuronal excitation leads to an increase of the extracellular K+ concentration ([K+]o) in brain. This increase has at least two energy-consuming consequences: (1) a depolarization-mediated change in intracellular pH (pHi) in astrocytes due to depolarization-mediated increased activity of the acid-extruding Na+/bicarbonate transporter NBCe1 (driven by secondary active transport, supported by ion gradients established by the Na+, K+-ATPase); and (2) activation of cellular reuptake of K+ mediated by the Na+, K+-ATPase in both neurons and astrocytes. Astrocytic, but not neuronal increase in NBCe1 activity and pHi is also seen after chronic treatment with either of the two anti-bipolar drugs carbamazepine or valproic acid. The third ‘classical’ anti-bipolar drug, ‘lithium’ increases astrocytic pHi by a different mechanism (stimulation of the acid extruding Na+/H+ exchanger NHE1). The acid extruder fluxes, which depend upon the change in pHi per time unit (ΔpHi/Δt) and intracellular buffering power, have not been established in most of these situations. Therefore their stimulatory effects on energy metabolism has not been quantitated. This has been done in the present study in cultured mouse astrocytes. pHi was determined using the fluorescent pH-sensitive indicator BCECF–AM and an Olympus IX71 live cell imaging fluorescence microscope. Molar acid extrusion fluxes (indicating transporter activity) were determined as pHi changes/min during recovery after acid-loading with NH3/NH4 +, NBCe1 mRNA and protein expression in the cultured cells by, respectively RT-PCR and Western blotting. Drug-induced up-regulation of acid extrusion flux was slow and less than physiologically seen after increase in K+ concentration. Energetically, K+ uptake is much costlier than NBCe1 activity.  相似文献   

15.
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   

16.
ATP-dependent potassium channels are present at high density in the membranes of heart, skeletal, and smooth muscle and have a lowP open at physiological [ATP]i. The unitary conductance is 15–20 pS at physiological [K+] o , and the channels are highly selective for K+. Certain sulfonylureas are specific blockers, and some K channel openers may also act through these channels. KATP channels are probably regulated through the binding of ATP, which may in turn be regulated through changes in the ADP/ATP ratio or in pHi. There is some evidence for control through G-proteins. The channels have complex kinetics, with multiple open and closed states. The main effect of ATP is to increase occupancy of long-lived closed states. The channels may have a role in the control of excitability and probably act as a route for K+ loss from muscle during activity. In arterial smooth muscle they may act as targets for vasodilators.  相似文献   

17.
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   

18.
M. Katsuhara  M. Tazawa 《Protoplasma》1986,135(2-3):155-161
Summary The mechanism of salt tolerance was studied using isolated internodal cells of the charophyteNitellopsis obtusa grown in fresh water. When 100 mM NaCl was added to artificial pond water (0.1 mM each of NaCl, KC1, CaCl2), no cell survived for more than one day. Within the first 30 minutes, membrane potential (Em) depolarized and membrane resistance (Rm) decreased markedly. Simultaneously, cytoplasmic Na+ increased and K+ decreased greatly. At steady state the increase in Na+ content was roughly equal to the decrease in K+ content. The Cl content of the cytoplasm did not change. These results suggest that Na+ enters the cytoplasm by exchange with cytoplasmic K+. Both the entry of Na+ and the exit of K+ are assumed to be passive and the latter being caused by membrane depolarization. Vacuolar K+, Na+, and Cl remained virtually constant, suggesting that rapid influx of Na+ from the cytoplasm did not occur.In 100 mM NaCl containing 10 mM CaCl2, membrane depolarization, membrane resistance decrease and changes in cytoplasmic [Na+] and [K+] did not occur, and cells survived for many days. When cells treated with 100 mM NaCl were transferred within 1 hour to 100 mM NaCl containing 10 mM CaCl2, Em decreased, Rm increased, cytoplasmic Na+ and K+ returned to their initial levels, and cells survived. Two possible mechanisms for the role of Ca2+ in salt tolerance inNitellopsis are discussed; one a reduction in plasmalemma permeability to Na+ and the other a stimulation of active Na+-extrusion.  相似文献   

19.
Summary We have studied the hyperpolarizing, electrogenic pump located on the apical membrane of the retinal pigment epithelium (RPE) in anin vitro preparation of bullfrog RPE-choroid. Changes in RPE [K+] i alter the current produced by this pump. Increasing [K+] o in the solution perfusing thebasal membrane increases RPE [K+] i (measured with a K+-specific microelectrode), and also depolarizes theapical membrane. This depolarization is due to a decrease in electrogenic pump current flowing across the apical membrane resistance, since it is abolished when the pump is inhibited by apical ouabain, by cooling the tissue, or by 0mm [K+] o outside the apical membrane. Removal of Cl from the solution perfusing the basal membrane abolishes the K+-evoked apical depolarization by preventing the entry of K+ (as KCl) into the cell. We conclude that the increase in [K+] i causes the decrease in pump current. This result is consistent with the finding that [K+] i is a competitive inhibitor of the Na+–K+ pump in red blood cells.It is possible that the light-evoked changes in [K+] o in the distal retina could alter RPE [K+] i , and thus could affect the pump from both sides of the apical membrane. Any change in pump current is likely to influence retinal function, since this pump helps to determine the composition of the photoreceptor extracellular space.  相似文献   

20.
Summary A membrane preparation enriched in the basolateral segment of the plasma membrane was isolated from the rat renal cortex by a procedure that included separation of particulates on a self-generating Percoll gradient. The uptake ofl-glutamate by the basolateral membrane vesicles was studied. A Na+ gradient ([Na+] o >[Na+] i ) stimulated the uptake ofl-glutamate and provided the driving force for the uphill transport of the acidic amino acid, suggesting a Na+-l-glutamate cotransport system in the basolateral membrane. A K+ gradient ([K+] i >[K+] o ) increased the uptake additionally. This effect was specific for K+ (Rb+). The action of the K+ gradient in enhancing the uptake ofl-glutamate had an absolute requirement for Na+. In the presence of Na+, but in the absence of a Na+ gradient. i.e., [Na+] o =[Na+] i , the K+ gradient also energized the concentrative uptake ofl-glutamate. This effect of the K+ gradient was not attributable to an alteration in membrane potential. The finding of a concentrative uptake system forl-glutamate energized by both Na+ ([Na+] o >[Na+] i and K+ ([K+] i >[K+] o ) gradients in the basolateral membrane, combined with previous reports of an ion gradient-dependent uphill transport system for this amino acid in the brush border membrane, suggests a mechanism by whichl-glutamate is accumulated intracellularly in the renal proximal tubule to extraordinarily high concentrations.  相似文献   

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