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1.
The proton/hydroxide (H+/OH) permeability of phospholipid bilayer membranes at neutral pH is at least five orders of magnitude higher than the alkali or halide ion permeability, but the mechanism(s) of H+/OH transport are unknown. This review describes the characteristics of H+/OH permeability and conductance through several types of planar phospholipid bilayer membranes. At pH7, the H+/OH conductances (G H/OH) range from 2–6 nS cm–2, corresponding to net H+/OH permeabilities of (0.4–1.7)×10–5 cm sec–1. Inhibitors ofG H/OH include serum albumin, phloretin, glycerol, and low pH. Enhancers ofG H/OH include chlorodecane, fatty acids, gramicidin, and voltages >80 mV. Water permeability andG H/OH are not correlated. The characteristics ofG H/OH in fatty acid (weak acid) containing membranes are qualitatively similar to the controls in at least eight different respects. The characteristics ofG H/OH in gramicidin (water wire) containing membranes are qualitatively different from the controls in at least four different respects. Thus, the simplest explanation for the data is thatG H/OH in unmodified bilayers is due primarily to weakly acidic contaminants which act as proton carriers at physiological pH. However, at low pH or in the presence of inhibitors, a residualG H/OH remains which may be due to water wires, hydrated defects, or other mechanisms.  相似文献   

2.
Summary Mechanisms of proton conductance (G H) were investigated in phospholipid bilayer membranes containing long-chain fatty acids (lauric, myristic, palmitic, oleic or phytanic). Membranes were formed from diphytanoyl phosphatidylcholine in decane plus chlorodecane (usually 30% vol/vol). Fatty acids were added either to the aqueous phase or to the membrane-forming solution. Proton conductance was calculated from the steadystate total conductance and the H+ diffusion potential produced by a transmembrane pH gradient. Fatty acids causedG H to increase in proportion to the first power of the fatty acid concentration. TheG H induced by fatty acids was inhibited by phloretin, low pH and serum albumin.G H was increased by chlorodecane, and the voltage dependence ofG H was superlinear. The results suggest that fatty acids act as simple (A type) proton carriers. The membrane: water partition coefficient (K p ) and adsorption coefficient () were estimated by finding the membrane and aqueous fatty acid concentrations which gave identical values ofG H. For palmitic and oleic acidsK p was about 105 and was about 10–2 cm. The A translocation or flip-flop rate (k a ) was estimated from the value ofG H and the fatty acid concentration in the membrane, assuming that A translocation was the rate limiting step in H+ transport. Thek A 's were about 10–4 sec–1, slower than classical weak-acid uncouplers by a factor of 105. Although long-chain fatty acids are relatively inefficient H+ carriers, they may cause significant biological H+ conductance when present in the membrane at high concentrations, e.g., in ischemia, hypoxia, hormonally induced lipolysis, or certain hereditary disorders, e.g., Refsum's (phytanic acid storage) disease.  相似文献   

3.
4.
Summary The pH-stat technique has been used to measure H+ fluxes in gastric mucosa and urinary bladder in vitro while keeping mucosal pH constant. We now report application of this method in renal tubules. We perfused proximal tubules with double-barreled micropipettes, blocked luminal fluid columns with oil and used a double-barreled Sb/reference microelectrode to measure pH, and Sb or 1n HC1-filled microelectrodes to inject OH or H+ ions into the tubule lumen. By varying current injection, pH was kept constant at adjustable levels by an electronic clamping circuit. We could thus obtain ratios of current (nA) to pH change (apparent H+-ion conductance). These ratios were reduced after luminal 10–4 m acetazolamide, during injection of OH, but they increased during injection of H+. The point-like injection source causes pH to fall off with distance from the injecting electrode tip even in oil-blocked segments. Therefore, a method analogous to cable analysis was used to obtain H+ fluxes per cm2 epithelium. The relation betweenJ H + and pH gradient showed saturation kinetics of H fluxes, both during OH and H+ injection. This kinetic behavior is compatible with inhibition ofJ H by luminal H+. It is also compatible with dependence on Na+ and H+ gradients of a saturable Na/H exchanger. H+-ion back-flux into the tubule lumen also showed saturation kinetics. This suggests that H+ flow is mediated by a membrane component, most likely the Na+–H+ exchanger.  相似文献   

5.
Summary In jejunal brush-border membrane vesicles, an out-wardly directed OH gradient (in>out) stimulates DIDS-sensitive, saturable folate (F) uptake (Schron, C.M., 1985).J. Clin. Invest. 76:2030–2033), suggesting carrier-mediated folate: OH exchange (or phenomenologically indistiguishable H+: folate cotransport). In the present study, the precise role of pH in the transport process was elucidated by examinin F uptake at varying pH. For pH gradients of identical magnitude, F uptake (0.1 M) was geater at lower (pHint/pHext:5.5/4.5) compared with higher (6.5/5.5) pH ranges. In the absence of a pH gradient, internal Ftrans stimulated DIDS-sensitive3H-folate uptake only at pH6.0. Since setepwise increments ininternal pH (4.57.5; pHext=4.5) stimulated F uptake, an inhibitory effect of higherinternal pH was excluded. In contrast, with increasing external pH(4.356.5; pHint=7.8), a 50-fold decrement in F uptake was observed (H+ K m =12.8±1.2m). Hill plots of these data suggest involvement of at least one H+ (OH) at high pH (divalent F–2 predominates). Since an inside-negative electrical potential did not affect F uptake at either pHext 4.55 or 5.8, transport of F and F–2 is electroneutral. Kinetic parameters for F and F–2 were calculated from uptake data at pHext 4.55 and 5.0. Comparision of predictedvs. experimentally determined kinetic parameters at pHext 5.8 (K m =1.33vs. 1.70 m;V max=12.8vs. 58.0 pmol/mg prot min) suggest that increasing external pH lowers theV max, but does not affect thatK m, for carrier-mediated F transport. These data are consistent with similarK i's for sulfasalazine (competitive inhibitor) at pHext 5.35 and 5.8 (64.7 and 58.5 m, respectively). In summary, the jejunal F carrier mediates electroneutral transport of mono- and divalen F and is sensitive to extermal pH with a H+ K m (or OH IC50) corresponding to pH 4.89. External pH affects theV max, but not theK m for carriermediated F uptake suggesting a reaction mechanism involving a ternary complex between the outward-facing conformation of the carrier and the transported ions (F and either OH or H+) rather than competitive binding that is mutually exclusive.  相似文献   

6.
Summary In jejunal brush-border membrane vesicles, an outwardly directed OH gradient (in>out) stimulates DIDS-sensitive, saturable folate (F) uptake (Schron, C.M. 1985.J. Clin. Invest. 76:2030–2033), suggesting carrier-mediated folate: OH exchange (or phenomenologically indistinguishable H+: folate cotransport). In the present study, the precise role of pH in the transport process was elucidated by examining F uptake at varying pH. For pH gradients of identical magnitude, F uptake (0.1 M) was greater at lower (pHint/pHext: 5.5/4.5) compared with higher (6.5/5.5) pH ranges. In the absence of a pH gradient, internal Ftrans stimulated DIDS-sensitive3H-folate uptake only at pH6.0. Since stepwise increments ininternal pH (4.57.5; pHext=4.5) stimulated F uptake, an inhibitory effect of higherinternal pH was excluded. In contrast, with increasing external pH (4.356.5; pHint=7.8), a 50-fold decrement in F uptake was observed (H+ K m =12.8±1.2 M). Hill plots of these data suggest involvement of at least one H+ (OH) at low pH (monovalent F predominates) and at least 2 H+ (OH) at high pH (divalent F–2 predominates). Since an inside-negative electrical potential did not affect F uptake at either pHext 4.55 or 5.8, transport of F and F–2 is electroneutral. Kinetic parameters for F and F–2 were calculated from uptake data at pHext 4.55 and 5.0. Comparison of predictedvs. experimentally determined kinetic parameters at pHext5.8 (K m =1.33vs. 1.70 M;V max=123.8vs. 58.0 pmol/mg prot min) suggest that increasing external pH lowers theV max, but does not affect theK m for carrier-mediated F transport. These data are consistent with similarK i ' s for sulfasalazine (competitive inhibitor) at pHext 5.35 and 5.8 (64.7 and 58.5 M, respectively). In summary, the jejunal F carrier mediates electroneutral transport of mono- and divalent F and is sensitive to external pH with a H+ K m (or OH lC50) corresponding to pH 4.89. External pH effects theV max, but not theK m for carriermediated F uptake suggesting a reaction mechanism involving a ternary complex between the outward-facing conformation of the carrier and the transported ions (F and either OH or H+),rather than competitive binding that is mutually exclusive.  相似文献   

7.
Summary Above a critical external pH (about 10.5), theChara membrane acquires new propertes. In this state the membrane potential is close to the equilibrium potentials for H+ and OH, hyperpolarizing as external pH increases with a slope of –59 mV/pH unit. The membrane conductance increases by an average factor of 2.4 above the critical pH. These changes are explained by an increase in permeability to OH (or H+). The establishment of a OH (or H+ permeable membrane at high pH suggests that the large fluxes of OH (or H+ which occur in the alkaline band in photosynthesizing cells are passive.  相似文献   

8.
Summary Human red cells were prepared with various cellular Na+ and K+ concentrations at a constant sum of 156mm. At maximal activation of the K+ conductance,g K(Ca), the net efflux of K+ was determined as a function of the cellular Na+ and K+ concentrations and the membrane potential,V m , at a fixed [K+]ex of 3.5mm.V m was only varied from (V m E K)25 mV and upwards, that is, outside the range of potentials with a steep inward rectifying voltage dependence (Stampe & Vestergaard-Bogind, 1988).g K(Ca) as a function of cellular Na+ and K+ concentrations atV m =–40, 0 and 40 mV indicated a competitive, voltage-dependent block of the outward current conductance by cellular Na+. Since the present Ca2+-activated K+ channels have been shown to be of the multi-ion type, the experimental data from each set of Na+ and K+ concentrations were fitted separately to a Boltzmann-type equation, assuming that the outward current conductance in the absence of cellular Na+ is independent of voltage. The equivalent valence determined in this way was a function of the cellular Na+ concentration increasing from 0.5 to 1.5 as this concentration increased from 11 to 101mm. Data from a previous study of voltage dependence as a function of the degree of Ca2+ activation of the channel could be accounted for in this way as well. It is therefore suggested that the voltage dependence ofg K(Ca) for outward currents at (V m E K)>25 25 mV reflects a voltage-dependent Na+ block of the Ca2+-activated K+ channels.  相似文献   

9.
Summary The conductance of the apical membrane of the toad urinary bladder was studied under voltage-clamp conditions at hyperpolarizing potentials (mucosa negative to serosa). The serosal medium contained high KCl concentrations to reduce the voltage and electrical resistance across the basal-lateral membrane, and the mucosal solution was Na free, or contained amiloride, to eliminate the conductance of the apical Na channels. As the mucosal potential (V m) was made more negative the slope conductance of the epithelium increased, reaching a maximum at conductance of the epithelium increased, reaching a maximum atV m=–100 mV. This rectifying conductance activated with a time constant of 2 msec whenV m was changed abruptly from 0 to –100 mV, and remained elevated for at least 10 min, although some decrease of current was observed. ReturningV m to+100 mV deactivated the conductance within 1 msec. Ion substitution experiments showed that the rectified current was carried mostly by cations moving from cell to mucosa. Measurement of K flux showed that the current could be accounted for by net movement of K across the apical membrane, implying a voltage-dependent conductance to K (G K). Mucosal addition of the K channel blockers TEA and Cs had no effect onG K, while 29mm Ba diminished it slightly. Mucosal Mg (29mm) also reducedG K, while Ca (29mm) stimulated it.G K was blocked by lowering the mucosal pH with an apparent pK1 of 4.5. Quinidine (0.5mm in the serosal bath) reducedG K by 80%.G K was stimulated by ADH (20 mU/ml), 8-Br-cAMP (1mm), carbachol (100 m), aldosterone (5×10–7 m for 18 hr), intracellular Li and extracellular CO2.  相似文献   

10.
Hydroxide, bicarbonate and buffer anion permeabilities in semitendinosus muscle fibers of Rana pipiens were measured. In all experiments, the fibers were initially equilibrated in isotonic, high K2SO4 solutions at pH o =7.2 buffered with phosphate. Two different methods were used to estimate permeabilities: (i) membrane potential changes were recorded in response to changes in external ion concentrations, and (ii) intracellular pH changes were recorded in response to changes in external concentrations of ions that alter intracellular pH. Constant field equations were used to calculate relative or absolute permeabilities.In the first method, to increase the size of the membrane potential change produced by a sudden change in anion entry, external K+ was replaced by Cs+ prior to changes of the anion under study. At constant external Cs+ activity, a hyperpolarization results from increasing external pH from 7.2 to 10.0 or higher, using either CAPS (3-[cyclohexylamino]-1-propanesulfonic acid) or CHES (2-[N-cyclohexylamino]-ethanesulfonic acid) as buffer. For each buffer, the protonated form is a zwitterion of zero net charge and the nonprotonated form is an anion. Using reported values of H+ permeability, calculations show that the reduction in [H+] o cannot account for the hyperpolarizations produced by alkaline solutions. Membrane hyperpolarization increases with increasing total external buffer concentration at constant external pH, and with increasing external pH at constant external buffer anion concentration. Taken together, these observations indicate that both OH and buffer anions permeate the surface membrane. The following relative permeabilities were obtained at pHo, 10.0± 0.3: (POH/PK) = 890 ± 150, (PCAPS/PK) = 12 ± 2 (PCHIES/PK) = 5.3 ± 0.9, and (PNO3/PK) = 4.7 ± 0.5 PNO/PK was independent of pH o up to 10.75. At pHo = 9.6, (PHCO3/PK) = 0.49 ± 0.03; at pH o = 8.9, (PCl/PK) = 18± 2 and at pH o = 7.1, (PHEPES/PK) = 20 ± 2.In the second method, on increasing external pH from 7.2 to 10.0, using 2.5 mm CAPS (total buffer concentration), the internal pH increases linearly with time over the next 10 min. This alkalinization is due to the entry of OH and the absorption of internal H+ by entering CAPS anion. The rate of CAPS entry was determined in experiments in which the external CAPS concentration was increased at constant external pH. Such increases invariably produced an increase in the rate of internal alkalinization, which was reversed when the CAPS concentration was reduced to its initial value. From the internal buffer power, the diameter of the fiber under study and the rates of change of internal pH, the absolute permeability for both OH and CAPS were calculated. At external pH = 10.0, the average (±sem) permeabilities were: POH=1.68±0.19×10–4 cm/sec and PCAPS=2.10±0.74×10–6cm/sec.We conclude that OH is about 50 times more permeable than Cl at alkaline pH and that the anionic forms of commonly used buffers have significant permeabilities.This research was supported by a grant from the National Institutes of Health (AR 31814). The authors wish to thank Dr. Peter G. Shrager and Dr. Bruce C. Spalding for reading an early draft of this report and for providing helpful suggestions.  相似文献   

11.
Summary We have chosen the MDCK cell line to investigate aldosterone action on H+ transport and its role in regulating cell membrane K+ conductance (G m K ). Cells grown in a monolayer respond to aldosterone indicated by the dose-dependent formation of domes and by the alkalinization of the dome fluid. The pH sensitivity of the plasma membrane K+ channels was tested in giant cells fused from individual MDCK cells. Cytoplasmic pH (pH i ) andG m K were measured simultaneously while the cell interior was acidified gradually by an extracellular acid load. We found a steep signoidal relationship between pH i andG m K (Hill coefficient 4.4±0.4), indicating multiple H+ binding sites at a single K+ channel. Application of aldosterone increased pH i within 120 min from 7.22±0.04 to 7.45±0.02 and from 7.15±0.03 to 7.28±0.02 in the absence and presence of the CO2/HCO 3 buffer system, respectively. We conclude that the hormone-induced cytoplasmic alkalinization in the presence of CO2/ HCO 3 is limited by the increased activity of a pH i -regulating HCO 3 extrusion system. SinceG m K is stimulated half-maximally at the pH i of 7.18±0.04, internal H+ ions could serve as an effective intracellular signal for the regulation of transepithelial K+ flux.  相似文献   

12.
Michael R. Blatt 《Planta》1988,174(2):187-200
Fusicoccin (FC) is commonly thought to promote electrogenic H+ extrusion through its action on the H+-ATPase of the plant plasma membrane. Nonetheless, essential support from rigorous electrophysiological analysis has remained largely absent. The present investigation surveys the effects of FC on the charge transport properties at the membrane of a higher-plant cell — stomatal guard cells of Vicia faba L. — for which the electrical geometry is defined, and from which the voltage-dependent kinetic characteristic for the pump has been identified. Current-voltage (I-V) relations of the guard cells were determined before and during treatments with FC, and during brief exposures to NaCN plus salicylhydroxamic acid. Responses of the pump and of the ensemble of secondary transport processes were identified in the whole-membrane conductance-voltage relations and in the difference-current-voltage (dI-V) characteristic for the pump. In 0.1 mM K+, exposure to 10 M FC shifted guard-cell potentials negative by 29–61 mV. Current-and conductance-voltage profiles indicated limited changes in the pump I-V characteristic, an observation which was confirmed through explicit kinetic analysis of pump dI-V relations. However, the voltage response was accompanied by a 1.5-to 2.6-fold fall in membrane conductance. These results challenge conventional views of fusicoccin action by ascribing the electrical responses to reduced current passage through secondary transport pathways as well as to enhanced electrogenic ion pumping.Abbreviations and symbols Hepes 4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid - SHAM salicylhydroxamic acid - FC fusicoccin - V m free-running membrane potential - G m membrane slope conductance at V m - (d)I-V (difference) current-voltage (relation) - G-V slope conductance-voltage (relation)  相似文献   

13.
Summary The effects of complete substitution of gluconate for mucosal and/or serosal medium Cl on transepithelial Na+ transport have been studied using toad urinary bladder. With mucosal gluconate, transepithelial potential difference (V T) decreased rapidly, transepithelial resistance (R T) increased, and calculated short-circuit current (I sc) decreased. CalculatedE Na was unaffected, indicating that the inhibition of Na+ transport was a consequence of a decreased apical membrane Na+ conductance. This conclusion was supported by the finding that a higher amiloride concentration was required to inhibit the residual transport. With serosal gluconateV T decreased,R T increased andI sc fell to a new steady-state value following an initial and variable transient increase in transport. Epithelial cells were shrunken markedly as judged histologically. CalculatedE Na fell substantially (from 130 to 68 mV on average). Ba2+ (3mm) reduced calculatedE Na in Cl Ringer's but not in gluconate Ringer's. With replacement of serosal Cl by acetate, transepithelial transport was stimulated, the decrease in cellular volume was prevented andE Na did not fall. Replacement of serosal isosmotic Cl medium by a hypo-osmotic gluconate medium (one-half normal) also prevented cell shrinkage and did not result in inhibition of Na+ transport. Thus the inhibition of Na+ transport can be correlated with changes in cell volume rather than with the change in Cl per se. Nystatin virtually abolished the resistance of the apical plasma membrane as judged by measurement of tissue capacitance. With K+ gluconate mucosa, Na+ gluconate serosa, calculated basolateral membrane resistance was much greater, estimated basolateral emf was much lower, and the Na+/K+ basolateral permeability ratio was much higher than with acetate media. It is concluded the decrease in cellular volume associated with substitution of serosal gluconate for Cl results in a loss of highly specific Ba2+-sensitive K+ conductance channels from the basolateral plasma membrane. It is possible that the number of Na+ pump sites in this membrane is also decreased.  相似文献   

14.
Summary A stopped-flow rapid reaction apparatus was used to study the rate of pH equilibration in human red cell suspensions. Flux of OH or H+ was determined over a wide range of extracellular pH (4–11) in CO2-free erythrocyte suspensions. In these experiments, an erythrocyte suspension at pH 7.3 is rapidly mixed with an equal volume of NaCl solution at 3.0>pH>11.5. The pH of the extracellular fluid of the mixture changes rapidly as OH or H+ moves across the red cell membrane. Flux and velocity constants can be calculated from the initiald pH/dt using the known initial intra- and extracellular pH. It was found that the further the extracellular pH is from 7.3 (in either direction from 4–11), the greater the absolute value of total OH and/or H+ flux. Pretreatment with SITS (4-acetamido-4-isothiocyanostilbene-2,2-disulfonic acid), a potent anion exchange inhibitor, greatly reduces flux over the entire pH range, while exposure to valinomycin, a potassium ionophore, has no measurable effect. These data suggest that (i) both H+ and OH may be moving across the red cell membrane at all pH; (ii) the species dominating pH equilibration is probably dependent on the extracellular pH, which determines the magnitude of the driving gradient for each ion; and (iii) the rapid exchange pathway of the erythrocyte membrane may be utilized for both H+ and OH transport during CO2-free pH equilibration.  相似文献   

15.
Superfusion of heart cells with hyperosmotic solution causes cell shrinkage and inhibition of membrane ionic currents, including delayed-rectifer K+ currents. To determine whether osmotic shrinkage also inhibits inwardly-rectifying K+ current (IK1), guinea-pig ventricular myocytes in the perforated-patch or ruptured-patch configuration were superfused with a Tyrodes solution whose osmolarity (T) relative to isosmotic (1T) solution was increased to 1.3–2.2T by addition of sucrose. Hyperosmotic superfusate caused a rapid shrinkage that was accompanied by a negative shift in the reversal potential of Ba2+-sensitive IK1, an increase in the amplitude of outward IK1, and a steepening of the slope of the inward IK1-voltage (V) relation. The magnitude of these effects increased with external osmolarity. To evaluate the underlying changes in chord conductance (GK1) and rectification, GK1-V data were fitted with Boltzmann functions to determine maximal GK1 (GK1max) and voltage at one-half GK1max (V0.5). Superfusion with hyperosmotic sucrose solutions led to significant increases in GK1max (e.g., 28±2% with 1.8T), and significant negative shifts in V0.5 (e.g., –6.7±0.6 mV with 1.8T). Data from myocytes investigated under hyperosmotic conditions that do not induce shrinkage indicate that GK1max and V0.5 were insensitive to hyperosmotic stress per se but sensitive to elevation of intracellular K+. We conclude that the effects of hyperosmotic sucrose solutions on IK1 are related to shrinkage-induced concentrating of intracellular K+.  相似文献   

16.
Summary The voltage dependence for outward-going current of the Ca-activated K+ conductance (g k (Ca)) of the human red cell membrane has been examined over a wide range of membrane potentials (V m) at constant values of [K+]ex, [K+]c and pHc, the intact cells being preloaded to different concentrations of ionized calcium. Outward-current conductances were calculated from initial net effluxes of K+ and the corresponding (V m-Ek) values. The basic conductance, defined as the outward-current coductance at (V m-Ek) 20 mV and [K+]ex 3mM (B. Vestergaard-Bogind, P. Stampe and P. Christophersen,J. Membrane Biol. 95:121–130, 1987) was found to be a function of cellular ionized Ca. At all degrees of Ca activationg K(Ca) was an apparently linear function of voltage (V m range –40 to +70 mV), the absolute level as well as the slope decreasing with decreasing activation. In a simple two-state model the constant voltage dependence can, at the different degrees of Ca activation, be accounted for by a Boltzmann-type equilibrium function with an equivalent valence of 0.4, assuming chemical equilibrium atV m=0 mV. Alternatively, the phenomenon might be explained by a voltage-dependent block of the outward current by an intracellular ion. Superimposed upon the basic conductance is the apparently independent inward-rectifying steep voltage function with an equivalent valence of 5 and chemical equilibrium at the givenE K value.Abbreviations CCCP carbonyl cyanidem-chlorophenylhydrazone - DIDS 4,4-diisothiocyanostilbene-2,2-disul  相似文献   

17.
Summary This paper reports experiments designed to assess the relations between net salt absorption and transcellular routes for ion conductance in single mouse medullary thick ascending limbs of Henle microperfusedin vitro. The experimental data indicate that ADH significantly increased the transepithelial electrical conductance, and that this conductance increase could be rationalized in terms of transcellular conductance changes. A minimal estimate (G c min ) of the transcellular conductance, estimated from Ba++ blockade of apical membrane K+ channels, indicated thatG c min was approximately 30–40% of the measured transepithelial conductance. In apical membranes, K+ was the major conductive species; and ADH increased the magnitude of a Ba++-sensitive K+ conductance under conditions where net Cl absorption was nearly abolished. In basolateral membranes, ADH increased the magnitude of a Cl conductance; this ADH-dependent increase in basal Cl conductance depended on a simultaneous hormone-dependent increase in the rate of net Cl absorption. Cl removal from luminal solutions had no detectable effect onG e , and net Cl absorption was reduced at luminal K+ concentrations less than 5mm; thus apical Cl entry may have been a Na+,K+,2Cl cotransport process having a negligible conductance. The net rate of K+ secretion was approximately 10% of the net rate of Cl absorption, while the chemical rate of net Cl absorption was virtually equal to the equivalent short-circuit current. Thus net Cl absorption was rheogenic; and approximately half of net Na+ absorption could be rationalized in terms of dissipative flux through the paracellular pathway. These findings, coupled with the observation that K+ was the principal conductive species in apical plasma membranes, support the view that the majority of K+ efflux from cell to lumen through the Ba++-sensitive apical K+ conductance pathway was recycled into cells by Na+,K+,2Cl cotransport.  相似文献   

18.
Summary The area-specific coductance of the membrane in the acid and basic zones (denoted byG A andG B , respectively) ofChara cells was measured in flowing solutions, containing 5mm zwitterionic buffer, as a function of the external pH(denoted by pH0). During illuminationG A was 1 S/m2 for pH0 in the range 5 to 8.5, and increased markedly to 3 to 6 S/m2 at higher pH0.G B , however, was always larger thanG A during illumination with a typical magnitude of 5 to 15 S/m2 for pH0 6 to 12. Thus under many experimental conditions it is possible that there is no single correct value for the membrane area-specific conductance. A flow of current in the external medium between the acid and basic regions was found to be associated with pH banding, and also withG B exceedingG A . This current could be present in flowing solutions without added HCO 3 over a wide range of pH0 and at high (25mm) buffer concentration. Combining measurements ofG A andG B with measurements of the currents in the acid and basic zones (denoted byJ A andJ B , respectively), it was estimated that the resting (i.e. in the absence of net current flow) potential difference (PD) across the membranes within the individual zones (denoted byU A andU B ) was –265±20 and –183±5 mV, respectively, during illumination. Upon the removal of illumination at pH0-7.5,G A ,G B andJ B were found to decrease rapidly during the initial few hundred seconds. During this period (U B V m ) remained relatively constant. A transient hyperpolarization ofV m often occurred, the magnitude of which was correlated with the magnitude ofJ B prior to the removal of illumination. After some 0.5 to 1 ksec of darkness,G A andG B had both decreased considerably and nowG A G B andU A U B V m . Eventually, after 2 to 8 ksec of darkness, the membrane conductance was effectively homogeneous with a much smaller magnitude (typically<0.2S/m2) andV m was depolarized by typically 5 to 15 mV.  相似文献   

19.
Summary Cellular impalements were used in combination with standard transepithelial electrical measurements to evaluate some of the determinants of the spontaneous lumen-positive voltage,V e , which attends net Cl absorption,J Cl net , and to assess how ADH might augment bothJ Cl met andV e in the mouse medullary thick ascending limb of Henle microperfusedin vitro. Substituting luminal 5mm Ba++ for 5mm K+ resulted in a tenfold increase in the apical-to-basal membrane resistance ratio,R c /R bl , and increasing luminal K+ from 5 to 50mm in the presence of luminal 10–4 m furosemide resulted in a 53-mV depolarization of apical membrane voltage,V a . Thus K+ accounted for at least 85% of apical membrane conductance. Either with or without ADH. 10–4 m luminal furosemide reducedV e andJ Cl net to near zero values and hyperpolarized bothV a andV bl , the voltage across basolateral membranes; however, the depolarization ofV bl was greater in the presence than in the absence of hormone while the hormone had no significant effect on the depolarization ofV a , Thus ADH-dependent increases inV b were referable to greater depolarizations ofV bl in the presence of ADH than in the absence of ADH 68% of the furosemide-induced hyperpolarization ofV a was referable to a decrease in the K+ current across apical membranes, but, at a minimum, only 19% of the hyperpolarization ofV bl could be accounted for by a furosemide-induced reduction in basolateral membrane Cl current. Thus an increase in intracellular Cl activity may have contributed to the depolarization ofV bl during net Cl absorption, and the intracellular Cl activity was likely greater with ADH than without hormone. Since ADH increases apical K+ conductance and since the chemical driving force for electroneutral Na+,K+,2Cl cotransport from lumen to cell may have been less in the presence of ADH than in the absence of hormone, the cardinal effects of ADH may have been to increase the functional number of both Ba++-sensitive conductance K+ channels and electroneutral Na+,K+,2Cl cotransport units in apical plasma membranes.  相似文献   

20.
Summary Confluent monolayers of the established opossum kidney cell line were exposed to NH4Cl pulses (20 mmol/liter) during continuous intracellular measurements of pH, membrane potential (PD m ) and membrane resistance (R m) in bicarbonate-free Ringer. The removal of extracellular NH4Cl leads to an intracellular acidification from a control value of 7.33±0.08 to 6.47±0.03 (n=7). This inhibits the absolute K conductance (g K+), reflected by a decrease of K+ transference number from 71±3% (n=28) to 26±6% (n=5), a 2.6±0.2-fold rise ofR m, and a depolarization by 24.2±1.5 mV (n=52). In contrast, intracellular acidification during a block ofg K+ by 3 mmol/liter BaCl2 enhances the total membrane conductance, being shown byR m decrease to 68±7% of control and cell membrane depolarization by 9.8±2.8 mV (n=17). Conversely, intracellular alkalinization under barium elevatesR m and hyperpolarizes PD m . The replacement of extracellular sodium by choline in the presence of BaCl2 significantly hyperpolarizes PD m and increasesR m, indicating the presence of a sodium conductance. This conductance is not inhibited by 10–4 mol/liter amiloride (n=7). Patch-clamp studies at the apical membrane (excised inside-out configuration) revealed two Na+-conductive channels with 18.8±1.4 pS (n=10) and 146 pS single-channel conductance. Both channels are inwardly rectifying and highly selective towards Cl. The low-conductive channel is 4.8 times more permeable for Na+ than for K+. Its open probability rises at depolarizing potentials and is dependent on the pH of the membrane inside (higher at pH 6.5 than at pH 7.8).  相似文献   

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