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1.
In order to study the mechanism of pancreatic HCO 3 transport, a perfused preparation of isolated intra-and interlobular ducts (i.d. 20–40 m) of rat pancreas was developed. Responses of the epithelium to changes in the bath ionic concentration and to addition of transport inhibitors was monitored by electrophysiological techniques. In this report some properties of the basolateral membrane of pancreatic duct cells are described. The transepithelial potential difference (PDte) in ducts bathed in HCO 3 -free and HCO 3 -containing solution was –0.8 and –2.6 mV, respectively. The equivalent short circuit current (Isc) under similar conditions was 26 and 50 A·cm–2. The specific transepithelial resistance (Rte) was 88 cm2. In control solutions the PD across the basolateral membrane (PDbl) was –63±1 mV (n=314). Ouabain (3 mmol/l) depolarized PDbl by 4.8±1.1 mV (n=6) within less than 10 s. When the bath K+ concentration was increased from 5 to 20 mmol/l, PDbl depolarized by 15.9±0.9 mV (n=50). The same K+ concentration step had no effect on PDbl if the ducts were exposed to Ba2+, a K+ channel blocker. Application of Ba2+ (1 mmol/l) alone depolarized PDbl by 26.4±1.4 mV (n=19), while another K+ channel blocker TEA+ (50 mmol/l) depolarized PDbl only by 7.7±2.0 mV (n=9). Addition of amiloride (1 mmol/l) to the bath caused 3–4 mV depolarization of PDbl. Furosemide (0.1 mmol/l) and SITS (0.1 mmol/l) had no effect on PDbl. An increase in the bath HCO 3 concentration from 0 to 25 mmol/l produced fast and sustained depolarization of PDbl by 8.5±1.0 mV (n=149). It was investigated whether the effect of HCO 3 was due to a Na++-dependent transport mechanism on the basolateral membrane, where the ion complex transferred into the cell would be positively charged, or whether it was due to decreased K+ conductance caused by lowered intracellular pH. Experiments showed that the HCO 3 effect was present even when the bath Na+ concentration was reduced to a nominal value of 0 mmol/l. Similarly, the HCO 3 effect remained unchanged after Ba2+ (5 mmol/l) was added to the bath. The results indicate that on the basolateral membrane of duct cells there is a ouabain sensitive (Na++K+)-ATPase, a Ba2+ sensitive K+ conductance and an amiloride sensitive Na+/H+ antiport. The HCO 3 effect on PDbl is most likely due to rheogenic anion exit across the luminal membrane.  相似文献   

2.
Rectal gland tubules (RGT) of spiny dogfish were dissected and perfused in vitro. Transepithelial PD (PDte), resistance (Rte), the PD across the basolateral membrane (PDbl) and intracellular chloride and potassium activities (a Cl– cell ,a K+ cell ) were measured. In a first series, 67 RGT segments were perfused with symmetric shark Ringers solution. The bath perfusate contained in addition db-cAMP 10–4, forskolin 10–6, and adenosine 10–4 mol · l–1. PDte was –11±1 (n=67) mV lumen negative, Rte 27±2 (n=47) cm2. PDbl –75±0.4 (n=260) mV.a K+ cell anda Cl– cell were 109±22 (n=4) and 38±4 (n=36) mmol · l–1 respectively. These data indicate that Cl secretion across the RGT must be an uphill transport process, whereas secretion of Na+ could be driven by the lumen negative PDte. Intracellular K+ is 14 mV above equilibrium with respect to the basolateral membrane PD and Cl is 23 mV above equilibrium across the apical membrane. In series 2, the conductivity properties of the apical and basolateral membrane as well as that of the paracellular pathway were examined in concentration step experiments. Decrease of the basolateral K+ concentration led to a rapid hyperpolarization of PDbt with a mean slope of 19 mV per decade of K+ concentration change. Addition of 0.5 mmol · l–1 Ba2+ to the bath solution lead to a marked depolarization and abolished the response to K+ concentration steps. In the lumen a Cl concentration downward step led to a depolarization of the lumen membrane; resulting in a mean slope of 18 mV per decade of Cl concentration change. When dilution potentials were generated across the epithelium, the polarity indicated that the paracellular pathway is cation selective. In series 3 the equivalent short circuit current (Isc=PDte/Rte) was determined as a function of symmetrical changes in Na+ concentration, with Cl held at 276 mmol · l–1, and as a function of symmetrical changes in Cl concentration, with Na+ held at 278 mmol · l–1 Isc was a saturable function of Na+ concentration (Hill coefficient 0.9±0.1,K 1/2 4.4 mmol · l–1,n=7) and also a saturable function of Cl concentration (Hill coefficient 2.0±0.1,K 1/2 75 mmol · l–1,n=11). These data are compatible with the assumption that the carrier responsible for NaCl uptake has a 1 Na+ per 2 Cl stoichiometry. In series 4, the effect of a K+ concentration downward step on PDbl anda Cl– cell transients was followed with high time resolution in the presence and absence of basolateral furosemide (5 · 10–5 to 10–4 mol · l–1) in an attempt to examine whether K+ reduction on the bath side inhibits Na+Cl uptake by the carrier system as does e.g. furosemide. The data indicate that removal of K+ from the bath side exerts an effect comparable to that of furosemide, i.e. it inhibits the carrier. We conclude that NaCl secretion in the RGT cell comprises at the least the following components: In the basolateral membrane, the (Na++K+)-ATPase, probably the Na+ 2 ClK+ carrier, and a K+ conductance. In the apical membrane a Cl conductance; and a Na+ conductive paracellular pathway.Supported by Deutsche Forschungsgemeinschaft DFG-Gr 480/8-1. Parts of this study have been presented at the 3rd International Symposium on Ion Selective Electrodes, Burg Rabenstein 1983, 16th Annual Meeting American Society of Nephrology, Washington DC 1983, 49th Tagung der Deutschen Physiologischen Gesellschaft, Dortmund 1984. A summary of the present study was published in Bulletin Mount Desert Island Biological Laboratory (Vol. 83)  相似文献   

3.
The conductance properties of the luminal membrane of cells from the thick ascending limb of Henle's loop of rat kidney (TAL) are dominated by K+. In excised membrane patches the luminal K+ channel is regulated by pH changes on the cytosolic side. To examine this pH regulation in intact cells of freshly isolated TAL segments we measured the membrane voltage (V m) in slow-whole-cell (SWC) recordings and the open probability (P o) of K+ channels in the cell-attached nystatin (CAN) configuration, where channel activity and part of V m can be recorded. The pipette solution contained K+ 125 mmol/l and Cl 32 mmol/l. Intracellular pH was determined by 2,7 bis(2-carboxyethyl)-5,(6)-carboxyfluorescein (BCECF) fluorescence. pH changes were induced by the addition of 10 mmol/l NH4 +/NH3 to the bath. In the presence of NH4 +/NH3 intracellular pH acidified by 0.53±0.11 units (n=7). Inhibition of the Na+2Cl K+ cotransporter by furosemide (0.1 mmol/l) reversed this effect and led to a transient alkalinisation by 0.62±0.14 units (n=7). In SWC experiments V m of TAL cells was -72±1 mV (n=70). NH4 +/NH3 depolarised V m by 22±2 mV (n=25). In 11 SWC experiments furosemide (0.1 mmol/l) attenuated the depolarising effect of NH4 + from 24±3 mV to 7±3 mV. Under control conditions the single-channel conductance of TAL K+ channels in CAN experiments was 66±5 pS and the reversal voltage for K+ currents was 70±2 mV (n=35). The P o of K+ channels in CAN patches was reduced by NH4 +/NH3 from 0.45±0.15 to 0.09±0.07 (n=7). NH4 +/NH3 exposure depolarised the zero current voltage of the permeabilised patches by-9.7±3.6 mV (n=5). The results show that TAL K+ channels are regulated by cytosolic pH in the intact cell. The cytosolic pH is acidified by NH4 +/NH3 exposure at concentrations which are physiologically relevant because Na+2ClK+(NH4 +) cotransporter-mediated import of NH4 + exceeds the rate of NH3 diffusion into the TAL. K+ channels are inhibited by this acidification and the cells depolarise. In the presence of furosemide TAL cells alkalinise proving that NH4 + uptake occurs by the Na+2ClK+ cotransporter. The findings that, in the presence of NH4 +/NH3 and furosemide, V m is not completely repolarised and that K+ channels are not activated suggest that the respective K+ channels may in addition to their pH regulation be inhibited directly by NH4 +/NH3.  相似文献   

4.
The membrane potential V m the cytosolic pH (pHi), the transference numbers (t) for K+, Cl and Na+/ non-selective cation (NSC) and the pH-sensitivity of V m were investigated in transitional cells from the vestibular labyrinth of the gerbil. V m, pHi, , and the pHi sensitivity of V m were under control conditions were –92±1 mV (n=89 cells), pHi 7.13±0.07 (n=11 epithelia), 0.87±0.02 (n=22), 0.02±0.01 (n=19), 0.01±0.01 (n=24) and –5 mV/pH unit (n=13 cells/n=11 epithelia), respectively. In the presence of 100 mol/l Ba2+ the corresponding values were: –70±1 mV (n=32), pHi 7.16±0.08 (n=6), 0.31±0.05 (n=4), 0.06±0.01 (n=6), 0.20±0.03 (n=10) and -16 mV/pH-unit (n=15/n=6). In the presence of 500 mol/l amiloride the corresponding values were: –72±2mV (n=34), pHi 7.00±0.07 (n=5), 0.50±0.04 (n=6), 0.04±0.01 (n=11), 0.28±0.04 (n=9) and –26 mV/pH-unit (n=20/n=5). In the presence of 20 mmol/l propionate plus amiloride the corresponding values were: –61±2 mV (n=27), pHi 6.72±0.06 (n=5), 0.30±0.02 (n=6), 0.06±0.01 (n=5) and 0.40±0.02 (n=8), respectively. V m was depolarized and and pHi decreased due to (a) addition of 1 mmol/l amiloride in 150 mmol/l Na+ by 38±1 mV (n=8), from 0.82±0.02 to 0.17±0.02 (n=8) and by 0.13±0.01 pH unit (n=6), respectively; (b) reduction of [Na+] from 150 to 1.5 mmol/l by 3.3±0.5 mV (n=30), from 0.83±0.02 to 0.75±0.04 (n=9) and by 0.33±0.07 pH unit (n=4), respectively and (c) addition of 1 mmol/l amiloride in 1.5 mmol/l Na+ by 20±1 mV (n=11) and from 0.83±0.03 to 0.53±0.02 (n=5), respectively. These data suggest that the K+ conductance is directly inhibited by amiloride and Ba2+ and that Ba2+ and amiloride uncover or induce a pH-sensitive and a Na+/NSC conductance which may or may not be the same entity.Some of the data have been presented at various meetings and appear in abstract form in [31, 35, 37]  相似文献   

5.
The present study was designed to elucidate the effects of sodium-coupled transport on the electrical properties of proximal tubule cells in the isolated perfused frog kidney. Cable analysis techniques have been employed to determine the resistance of the luminal and peritubular cell membranes in parallel (R m) and the apparent ratio of the luminal over the peritubular cell membrane resistance (VDR). Furthermore, the sensitivity of the potential difference across the peritubular cell membrane (PDpt) to 6-fold increases of peritubular potassium concentration (PDk) was taken as a measure of the relative potassium conductance of this membrane. In the absence of luminal phenylalanine, PDpt amounts to –60±1 mV (n=90),R m to 36±3 k cm (n=22), VDR to 1.81±0.14 (n=20), and PDk to 15.0±0.9 mV (n=25). The application of 10 mmol/l phenylalanine replacing 10 mmol/l raffinose leads to a rapid (within 30 s) depolarisation of PDpt to 50±5% of its control value and to a delayed (within 12 min) recovery to 95±5% of control. The rapid depolarisation is associated with a decline ofR m and VDR, indicating a decrease mainly of the luminal cell membrane resistance. During recovery of PDpt there is a parallel increase of VDR and a further decline ofR m pointing to a decline of the basolateral cell membrane resistance. PDk is decreased during rapid depolarisation but increases again during the recovery phase. Thus, phenylalanine initially decreases but then increases above control the apparent potassium conductance. Removal of phenylalanine leads to a transient hyperpolarisation and increased apparent potassium conductance. If a cell is depolarised by current injection into a neighbouring cell, a similar decrease of PDk is observed which shows also a similar recovery (partial repolarisation) despite continued injection of constant current. The data point to a potential-dependent peritubular K+-conductance (of the inwardly rectifying type) and to a regulatory increase within some ten minutes, when the cell is depolarised either by sodium entry across the luminal cell membrane or by current injection into a neighbouring cell.  相似文献   

6.
LLC-PK1 cells serve as a widely used model for the renal proximal tubule. Until now, little has been found out about their membrane voltage (V m) and ionic conductances (g). Several studies have shown changes in cell properties during differentiation and ageing. The aim of this study was to examine the relationship between V m or g and the age of these cells. Therefore, we investigated single cells, subconfluent and confluent monolayers of LLC-PK1 cells aged 1–8 days with the slow-whole-cell patch-clamp technique. The V m of all cells was-34±2 mV (n=75) and the membrane conductance (g m) was 2.3±0.3 nS (n=30). V m in cells aged up to 2 days was-24±3 mV (n=22) whereas V m in cells aged 5–8 days was -50±3 mV (n=15). An increase of extracellular K+ from 3.6 to 18.6 mmol/l led to a depolarization in all cells of 4±1 mV (n=31) and an increase of g m by 17±13% (n=15). Complete replacement of extracellular Na+ by N-methyl-D-glucamine (NMDG) led to a hyperpolarization of 19±2 mV (n=38) and gm was lowered by 27±14% (n=17). A reduction in extracellular Cl from 147 to 32 mmol/l showed no significant effect on V m (n=16) or g m (n=11). Amiloride (10 mol/l) had no significant effect on V m (n=13) or g m (n=7). The reduction of the extracellular osmolarity from 290 to 160 mosmol/l led to a hyperpolarization of 11±1 mV (n=18) and an increase in g m by 326±117% (n=12). There was no significant correlation between g m and cell age. LLC-PK1 cells used in this study have a K+ conductance and a non-selective cation conductance in parallel. With increasing age, LLC-PK1 cells became more and more conductive for K+ and lost their nonselective cation conductance. There is no evidence for a significant amiloride-sensitive Na+ or Cl conductance in these cells. The K+ conductance could be activated by osmotically induced cell swelling.  相似文献   

7.
The K+ channels of the principal cells of rat cortical collecting duct (CCD) are pH sensitive in excised membranes. K+ secretion is decreased with increased H+ secretion during acidosis. We examined whether the pH sensitivity of these K+ channels is present also in the intact cell and thus could explain the coupling between K+ and H+ secretion. Membrane voltages (V m), whole-cell conductances (g c), and single-channel currents of K+ channels were recorded from freshly isolated CCD cells or isolated CCD segments with the patch-clamp method. Intracellular pH (pHi) was measured using the pH-sensitive fluorescent dye 2-7-bis(carboxyethyl)-5-6-carboxyfluorescein (BCECF). Acetate (20 mmol/l) had no effect on V m, g c, or the activity of the K+ channels in these cells. Acetate, however, acidified pHi slightly by 0.17±0.04 pH units (n=19). V m depolarized by 12±3 mV (n=26) and by 23±2 mV (n=66) and g c decreased by 26±5% (n=13) and by 55±5% (n=12) with 3–5 or 8–10% CO2, respectively. The same CO2 concentrations decreased pHi by 0.49±0.07 (n=15) and 0.73±0.11 pH units (n=12), respectively. Open probability (P o) of all four K+ channels in the intact rat CCD cells was reversibly inhibited by 8–10% CO2. pHi increased with the addition of 20 mmol/l NH4 +/NH3 by a maximum of 0.64±0.08 pH units (n=33) and acidified transiently by 0.37±0.05 pH units (n=33) upon NH4 +/NH3 removal. In the presence of NH4 +/NH3 V m depolarized by 16±2 mV (n=66) and g c decreased by 26±7% (n=16). The activity of all four K+ channels was also strongly inhibited in the presence of NH4 +/NH3. The effect of NH4 +/NH3 on V m and g c was markedly increased when the pH of the NH4 +/NH3-containing solution was set to 8.5 or 9.2. From these data we conclude that cellular acidification in rat CCD principal cells down-regulates K+ conductances, thus reduces K+ secretion by direct inhibition of K+ channel activity. This pH dependence is present in all four K+ channels of the rat CCD. The inhibition of K+ channels by NH4 +/NH3 is independent of changes in pHi and rather involves an effect of NH3.  相似文献   

8.
The effects of bradykinin (BK) and histamine (Hist) on the membrane voltage (V m), ion conductances and ion channels of cultured human glomerular epithelial cells (hGEC) were examined with the nystatin patch clamp technique. Cells were studied between passage 3 and 20 in a bath rinsed with Ringer-like solution at 37°C. The mean value of V m was –41±0.5 mV (n=189). BK (10–6 mol/l, n=29) and Hist (10–5 mol/l, n= 55) induced a rapid transient hyperpolarization by 15±1 mV and 18±1 mV, respectively. The hyperpolarization was followed by a long lasting depolarization by 6±1 mV (BK 10–6 mol/l) and 7±1 mV (Hist 10–5 mol/l). The ED50 was about 5×10–8 mol/l for BK and 5×10–7 mol/l for Hist. In the presence of both agonists, increases of outward and inward currents were observed. A change in the extracellular K+ concentration from 3.6 to 30 mmol/l depolarized V m by 8±1 mV and completely inhibited the hyperpolarizing effect of both agents (n=11). Reduction of extracellular Cl concentration from 145 to 30 mmol/l led to a depolarization by 2 ±1 mV (n=25). In 30 mmol/l Cl the depolarizations induced by BK (10–7 mol/l) and Hist (10–6 mol/l) were augmented to 9±2 mV (n=14) and to 10±2 mV (n=11), respectively. Ba2+ (5 mmol/l) depolarized V m by 19±5 mV (n=6) and completely inhibited the hyperpolarization induced by BK (10–6 mol/l, n=3) and reduced that of Hist (10–5 mol/l) markedly (n=3). Preincubation with the K+ channel blocker charybdotoxin (1–10 nmol/l) for 3 min had no significant effect on V m, but reduced markedly the BK(10–6 mol/l, n=11) and Hist-(10–5 mol/l, n=6) induced hyperpolarizations. In 10 out of 31 experiments in the cell attached nystatin patch configuration big K+ channels with a conductance of 247±17 pS were found. The open probability of these K+ channels was increased 3- to 5-fold during the hyperpolarization induced by BK (10–7 mol/l) or Hist (10–5 mol/l, both n= 4). In excised inside/out patches this K+ channel had a mean conductance of 136±8.5 pS (n=10, clamp voltage 0 mV). The channel was outwardly rectifying and its open probability was increased when Ca2+ on the cytosolic side was greater than 0.1 mol/l. The data indicate that BK and Hist activate a and a in hGEC. The hyperpolarization is induced by the activation of a Ca2+-dependent maxi K+ channel.  相似文献   

9.
The distal convoluted tubule (DCT) from rabbit kidney were perfused in vitro to study the conductive properties of the cell membranes by using electrophysiological methods. When the lumen and the bath were perfused with a biearbonate free solution buffered with HEPES, the transepithelial voltage (V T) averaged –2.8±0.6 mV (n=20), lumen negative. The basolateral membrane voltage (V B) averaged –77.8±1.1 mV (n=33) obtained by intracellular impalement of microelectrodes. Cable analysis performed by injecting a current from perfusion pipette revealed that the transepithelial resistance was 21.8±1.7 ·cm2 and the fractional resistance of the luminal membrane was 0.78±0.03 (n=8), indicating the existence of ionic conductances in the luminal membrane. Addition of amiloride (10–5 mol/l) to the luminal perfusate or Na+ removal from the lumen abolished the lumen negativeV T and hyperpolarized the apical membrane. An increase in luminal K+ concentration from 5 to 50 mmol/l reduced the apical membrane potential (V A) by 37.5±2.6 mV (n=7), whereas a reduction of Cl in the luminal perfusate did not changeV A significantly (0.5±0.5 mV,n=4). Addition of Ba2+ to the lumen reducedV A by 42.6±1.0 mV (n=4). When the bathing fluid was perfused with 50 mmol/l K+ solution, the basolateral membrane voltage (V B) fell from –76.8±1.5 to –31.0±1.3 mV (n=18), and addition of Ba2+ to the bath reducedV B by 18.3±4.8 mV (n=7). Although a reduction of Cl in the bathing fluid from 143 to 5 mmol/l did not cause any significant fast initial depolarization (1.8±1.7 mV,n=8), a spike like depolarization (14.0±2.5 mV,n=4) was observed, upon Cl reduction in the presence of Ba2+ in the bath. From these results, we conclude that the apical membrane of DCT has both K+ and Na+ conductances and the basolateral membrane has a K+ conductance and a small Cl conductance.  相似文献   

10.
The luminal membrane of principal cells of rat cortical collecting duct (CCD) is dominated by a K+ conductance. Two different K+ channels are described for this membrane. K+ secretion probably occurs via a small-conductance Ca2+-independent channel. The function of the second, large-conductance Ca2+-dependent channel is unclear. This study examines properties of this channel to allow a comparison of this K+ channel with the macroscopic K+ conductance of the CCD and with similar K+ channels from other preparations. The channel is poorly active on the cell. It has a conductance of 263±11 pS (n=36, symmetrical K+ concentrations) and of 139±3 pS (n=91) with 145 mmol/l K+ on one side and 3.6 mmol/l K+ on the other side of the membrane. Its open probability is high after excision (0.71±0.03, n=85). The channel flickers rapidly between open and closed states. Its permeability in the cell-free configuration was 7.0±0.2×10–13 cm3/s (n=85). It is inhibited by several typical blockers of K+ channels such as Ba2+, tetraethylammonium, quinine, and quinidine and high concentrations of Mg2+. The Ca2+ antagonists verapamil and diltiazem also inhibit this K+ channel. As is typical for the maxi K+ channel, it is inhibited by charybdotoxin but not by apamin. The selectivity of this large-conductance K+ channel demonstrates significant differences between the permeability sequence (P K > P Rb > P NH4 > P Cs=P Li=P Na=P choline=0) and the conductance sequence (g K > g NH4 > g Rb > g Li=g choline > g Cs=g Na=0). The only other cations that are significantly conducted by this channel besides K+ (g K at V c = is 279±8 pS, n=88) are NH 4 + (g NH4=127±22 pS, n=10) and Rb+ (g Rb=36±5 pS, n=6). The K+ currents through this channel are reduced by high concentrations of choline+, Cs+, Rb+, and NH 4 + . These properties and the dependence of this channel on Ca2+ and voltage classify it as a maxi K+ channel. A possible physiological function of this channel is discussed in the accompanying paper.Supported by DFG Gr 480/10, by Schl 277/2-3 and by GIF 88/II  相似文献   

11.
The purpose of this study was to characterize the ion conductances, in particular those for Cl and K+, of human sweat duct cells grown in primary culture. Sweat duct cells from healthy individuals were grown to confluence on a dialysis membrane, which was then mounted in a mini-Ussing chamber and transepithelial and intracellular potentials were measured under open-circuit conditions. Under control conditions the epithelia developed mucosa-negative transepithelial potentials, V te, of about –10mV. The apical membrane potential, V a, was –25 mV to –30 mV (n=97) in most cells, but several cells had a higher potential of about –55 mV (n=29). Mucosal amiloride (10 mol/l) hyperpolarized V a from –31±1 mV to a new sustained level of –46±2 mV (n=36). These changes were accompanied by increase in the fractional resistance of the apical membrane, fR a, and decreases of V te and the equivalent short-circuit current, I sc. In amiloride-treated tissues an increase in mucosal K+ concentration (5 mmol/l to 25 mmol/l) depolarized V a by 5±1 mV (n=8), while the same step on the serosal side depolarized V a by 20±2 mV (n=8). A Cl channel blocker 3,5-dichloro-diphenylamine-2-carboxylate DCl-DPC; 10 mol/l) depolarized V a by 5±1 mV (n=6), an effect that was lost after amiloride application. The blocker had no effect from the serosal side. Reduction of mucosal Cl (from 120 to 30 or 10 mmol/l) depolarized V a by 9–11 mV (n=35), an effect that was often followed by a secondary hyperpolarization of 10–30 mV (n=27). Isoproterenol (5 mol/l) increased the V a responses to low Cl such that the depolarizing response was increased from 10±1 mV to 19±2 mV (n=8); the hyperpolarizing response seemed to be reduced. With changes in Cl concentration on the serosal side, V a remained relatively constant at –25 mV, while V te decreased from –8 mV to–3 mV; hence, V bl depolarized by about 5 mV. Taken together, our results show that the human sweat duct epithelium possesses Na+, K+ and Cl conductances on the luminal membrane and Cl and K+ conductances on the basolateral membrane. The Cl conductances on the luminal membrane is sensitive to DCl-DPC, and can be activated by isoproterenol. The small K+ conductance on the luminal membrane could account for some K+ secretion in sweat glands.  相似文献   

12.
The aim of this study was to investigate the role of the K+ conductance in unstimulated and stimulated pancreatic ducts and to see how it is affected by provision of exogenous HCO 3 /CO2. For this purpose we have applied electrophysiological techniques to perfused pancreatic ducts, which were dissected from rat pancreas. The basolateral membrane potential PDbl of unstimulated duct cells was between –60mV and –70mV, and the cells had a relatively large K+ conductance in the basolateral membrane as demonstrated by (a) 20–22 mV depolarization of PDbl in response to increase in bath K+ concentration from 5 mmol/l to 20mmol/l and (b) the effect of a K+ channel blocker, Ba2+ (5 mmol/l), which depolarized PDbl by 30–40mV. These effects on unstimulated ducts were relatively independent of bath HCO 3 /CO2. The luminal membrane seemed to have no significant K+ conductance. Upon stimulation with secretin or dibutyryl cyclic AMP, PDbl depolarized to about –35 mV in the presence of HCO 3 /CO2. Notably, the K+ conductance in the stimulated ducts was now only apparent in the presence of exogenous HCO 3 /CO2 in the bath solutions. Upon addition of Ba2+, PDbl depolarized by 13±1 mV (n=7), the fractional resistance of the basolateral membrane, FRbl increased from 0.66 to 0.78 (n=6), the specific transepithelial resistance, R te, increased from 52±13 cm2 to 59±15 cm2 (n=11), and the whole-cell input resistance, R c, measured with double-barrelled electrodes, increased from 20 M to 26 M (n=3). These results are consistent with Ba2+ inhibition of the K+ conductance. Following removal of exogenous HCO 3 /CO2 in the same ducts, stimulation led to a larger depolarization on PDbl to about –25 mV, and Ba2+ had a smaller effect on PDbl and no significant effect on the resistances. The individual resistances in the duct epithelium were estimated from equivalent circuit analysis. The luminal membrane resistance, R 1 decreased from about 2000 cm2 to 80 cm2 upon stimulation. The basolateral membrane resistance, R bl, remained at 90–120 cm2, and the paracellular shunt resistance, R s, at 50–80 cm2. Ba2+ increased R bl of stimulated ducts to about 200 cm2, an effect present only if the ducts were provided with exogenous HCO 3 /CO2. Taken together, the present results indicate that the basolateral K+ conductance of pancreatic ducts is sensitive to exogenous HCO 3 /CO2, i.e. without HCO 3 /CO2 the conductance becomes very low although the ducts are undergoing stimulation.A preliminary report of the present study has been presented at the XXXI International Congress of Physiological Sciences, Helsiniki, Finland, July 1989  相似文献   

13.
The Na+2ClK+ cotransporter in the apical membrane of the cortical thick ascending limb of the Henle's loop (cTAL) of rabbit nephron utilizes the electrochemical gradient for Na+ to transport K+ and Cl against an unfavorable electrochemical gradient from lumen to cell interior. In the present study attempts are made to measure intracellular K+ activity ( ) under control conditions and after inhibition of the cotransport system by furosemide (50·10–6 mol·l–1). 70 cTAL segments of 55 rabbits were perfused in vitro. Conventional Ling-Gerard and K+-selective microelectrodes were used to measure the PD across the basolateral membrane (PDbl) as well as the PD sensed by the single barrelled K+-selective electrode ( ). PDbl was –64±1 (n=65) mV and +15±1 (n=32) mV under control conditions. The positive value, significantly different from zero, indicates that is higher than predicted for passive distribution. The estimate for obtained from PDbl and was 113±8 mmol·l–1. Furosemide lead to the previously reported hyperpolarization of PDbl by 17±4 (n=13) mV and to a reduction of from 15±1 to 5±1 (n=20) mV. The , obtained from this set of data, was 117±9 mmol·l–1, and was not different from the control value. The present data indicate that is significantly above Nernst equilibrium under control conditions. The source for this above equilibrium accumulation of K+ stems from the carrier mediated uptake of Na+2Cl and K+. Consequently, the electrochemical gradient for K+ is rapidly reduced when the carrier is blocked by furosemide. The electrochemical gradient for K+, under control conditions, energizes the back leak of K+ from cell to lumen. This K+ flux is one component responsible for the lumen positive transepithelial PD.Parts of this study have been presented at the 58th Tagung Deutsche Physiologische und Deutsche Pharmakologische Gesellschaft, Mainz 1983; 67th Federation Meeting, Chicago 1983. This study was supported by Deutsche Forschungsgemeinschaft Gr. 480/5-7  相似文献   

14.
Diadenosine polyphosphates have been shown to influence renal perfusion pressure. As mesangial cells may contribute to these effects we investigated the effects of diadenosine triphosphate (Ap3A), diadenosine tetraphosphate (Ap4A), diadenosine pentaphosphate (Ap5A) and diadenosine hexaphosphate (Ap6A) on membrane voltage (V m) and membrane conductance (g m) in mesangial cells (MC) of normotensive Wistar-Kyoto (WKY) and spontaneously hypertensive (SHR) rats in primary and long-term culture. We applied the patch-clamp technique in the fast-whole-cell configuration to measure V m and g m. To compare the effects of diadenosine polyphosphates with hitherto known agonists we also tested adenosine 5-triphosphate (ATP) and angiotensin II (Ang II). As there was no significant difference in the V m values in MC of WKY (–42±1 mV, n=70) and SHR rats (–45±2 mV, n=99) as well as in the agonist-induced changes of V m, all data were pooled. The V m of all the cells was –44±1 mV (n=169) and g m was 15.9±1.8 nS (n=141). Ion-exchange experiments showed the presence of a K+ and a non-selective cation conductance in resting MC whereas a Cl conductance or a Na+selective conductance could not be observed. Ap3A, Ap4A, Ap5A, AP6A and ATP each at a concentration of 5 mol/l, led to a significant depolarization of V m by 5±2 mV (n=14), 7±1 mV (n=25), 3±1 mV (n=23), 2±1 mV (n=16), and 14±2 mV (n=23), respectively. For Ap4A, the most potent diadenosine polyphosphate, we determined the half-maximally effective concentration (EC 50) as 6 mol/l (n=5–25), for ATP as 2 mol/l (n=9–37), and for Ang II as 8 nmol/l (n=6–18). Ap4A 100 mol/l increased g m significantly by 55±20% (n=16), 100 mol/l ATP by 135±60% (n=18). The diadenosine polyphosphates examined were able to depolarize V m (Ang II >ATP> Ap4A>Ap3A>Ap5A>Ap6A) by activation of a Cl conductance and a non-selective cation conductance, as do ATP or Ang II.  相似文献   

15.
Proton transport mechanism in the cell membrane of Xenopus laevis oocytes   总被引:2,自引:0,他引:2  
Mechanisms of H+ transport across the plasma cell membrane of prophase-arrested oocytes of Xenopus laevis were investigated by testing the effect of ion substitutions and inhibitors on cytoplasmic pH (pHi), membrane potential (V m) and membrane resistance (R m). During superfusion with control solution of pH=7.4, pHi was 7.49±0.12 (n=15), V m was –61.9±7.8 mV (n=34) (cytoplasm negative), and R m was 2.9±1.5 M (n=19). These data confirm that H+ ions are not distributed at electrochemical equilibrium. By following pHi during recovery of the oocytes from an acid load (20 mmol/l NH4Cl) in the presence and absence of extracellular Na+ or amiloride (1 mmol/l), a Na/H exchanger was identified. On the basis of the known Na+ gradient across the cell membrane, this transporter could suffice to generate the observed H+ disequilibrium distribution. Utilizing blockers or ion-concentration-step experiments no evidence was obtained for an ATP-driven H+ pump or for passive acid/base transporters such as H+ conductances or Na+ (HCO 3 )3 cotransport. The membrane depolarization observed in response to extracellular acidification appeared to result from a pH-dependent, Ba2+-inhibitable K+ conductance.  相似文献   

16.
Microelectrodes were used to measure membrane potential and intracellular potassium activity in surface epithelial cells (SEC) of frog (Rana esculenta) fundic gastric mucosa in vitro. Separate measurements were carried out by applying fine-tipped, single barrelled, KCl filled non-selective electrodes and liquid K+-selective electrodes. Membrane potentials with respect to the mucosal and serosal surfaces, measured with non-selective electrodes, were –54.5±1.0 S.E. mV (n=59) and –73.0±1.1 S.E. mV (n=59) respectively. The electrical potential difference referred to the mucosal surface, when measured with K+-sensitive electrodes, was +21.2±0.8 S.E. mV (n=35), and intracellular K+ activity was 98.5 mmol/l. Assuming that intracellular and extracellular K+ activity coefficients are equal (K=K), the K+ concentration is 135.0 mmol/l. The K+ equilibrium potential,E K, was calculated as –90.0 mV i.e. more negative than both membrane potentials. This result indicates active potassium accumulation in the SEC and provides direct evidence of the presence of an active K+ pump in either both or in only one of the cell membranes.  相似文献   

17.
The basolateral membrane of rabbit straight proximal tubules, which were cannulated and perfused on one side, was investigated with the patch clamp technique. Properties of inward and outward directed single K+ channel currents were studied in cell-attached and insideout oriented cell-excised membrane patches. In cell-attached patches with NaCl Ringer solution both in pipette and bath, outward K+ currents could be detected after depolarization of the membrane patch by about 20–30 mV. The current-voltage (i/V) relationship could be fitted by the Goldman-Hodgkin-Katz (GHK) current equation, with the assumption that these channels were mainly permeable for K+ ions. A permeability coefficientP K of (0.17±0.04) · 10–12 cm3/s was obtained, the single channel slope conductance at infinite positive potentialg(V ) was 50±12 pS and the single channel conductance at the membrane resting potentialg(V bl) was 12±3 pS (n=4). In cell-excised patches, with NaCl in the pipette and KCl in the bath, the data could also be fitted to the GHK equation and yieldedP K = (0.1 ±0.01) ·10–12 cm3/s,g(V ) = 40 ± 4 pS andg(V bl) = 7 ± 1 pS (n=8). In cell-attached patches with KCl in the pipette and NaCl in the bath, inward K+ channels occurred at clamp potentials 60 mV, whereas outward K+ channel current was detected at more positive voltages. The current-voltage curves showed slight inward rectification. The single channel conductance, obtained from the linear part of the i/V curve by linear regression, was 46±3 pS and the reversal potential was 59±6 mV (n=9). In cell-excised patches with KCl in the pipette and NaCl in the bath, inward directed K+ channel currents could again be described by the GHK equation. The single channel parameters were similar to those recorded for outward K+ currents (see above). In inside-out oriented cell-excised patches with NaCl in the pipette and KCl in the bath, reducing bath (i.e. cytosolic) Ca2+ concentration from 10–6 mol/l to less than 10–9 mol/l did not affect the open state probability of single channel currents. These results demonstrate that the observed channels are permeable for K+ ions in both directions and that these basolateral K+ channels in rabbit proximal straight tubule are not directly dependent on Ca2+ ions.  相似文献   

18.
A study has been made of electrogenic cellular uptake of amino acids resulting in the depolarization of cell membrane potential (PDm) in confluent monolayers of an established opossum kidney (OK) cell line using conventional and pH-selective microelectrodes. Apical superfusion of neutral and dibasic amino acids rapidly depolarized the cell membrane, while application of acidic amino acids had no effect on PDm. The depolarization in response toL-phenylalanine andL-arginine was stereoselective, dose-dependent and saturable. 10 mmol/l ofL-phenylalanine reduced PDm by 4.8±0.4 mV (n=51) in a completely sodium-dependent way and the concentration necessary for halfmaximal depolarization (C1/2) was about 1.5 mmol/l. On the other hand, the C1/2 forL-arginine was about 0.02 mmol/l. The maximal depolarization produced byL-arginine (measured at 10 mmol/l) amounted to 6.8±1.2 mV (n=10) and this was not affected when extracellular sodium was replaced by choline (6.3±1.2 mV;n=10). The depolarizations induced byL-phenylalanine andL-arginine were significantly additive (p<0.001). The intracellular pH of OK cells was 7.09±0.03 (n=11) and did not change duringL-arginine application. We conclude that (1) carrier-mediated uptake of neutral and dibasic amino acids into OK cells is at least partially electrogenic. (2)L-Phenylalanine is transported by a Na+-symport. (3) In contrast,L-arginine depolarizes PDm independently of extracellular sodium. (4) Electrogenic uptake of acidic amino acids is not detectable in OK cells.Parts of this study were presented at the 65th meeting of the Deutsche Physiologische Gesellschaft, March 1988, Würzburg (Pflügers Arch 411, Suppl. 1, 1988, R96) and the 6th European Colloquium on Renal Physiology, May 1988, Varna (Acta Physiol Pharmacol Bulg 14, Suppl. 1, 1988, 77)  相似文献   

19.
Rabbit corneal endothelial cells mounted in vitro were impaled simultaneously with Na+-selective and conventional KCl-filled microelectrodes. The membrane potential (V m) was –30.4±0.8 mV (mean ±SEM, n = 55) and the intracellular [Na+]i (calculated from the Na+-selective electrode potential, VNa) was 13.7 ±1.9 mM (mean±SEM, n = 16). When ouabain was added to the perfusate the cell depolarised, causing both V m and VNa to increase with a very similar time course. Final V m was –6.3±0.6 mV (mean ±SEM, n = 15), and the final [Na+]i was 114±6.9 mM (mean ± SEM, n = 5). The parallel increase in V m and rise in [Na+]i suggest that a component of the ouabain-induced depolarisation of the cell (increase in V m) is due to Na+ entry into the cell down its concentration gradient. The lateral and basal location of the Na+/K+-ATPase in bovine endothelial cells was confirmed (for the first time at the electron-microscopic level) using a monoclonal antibody specific for the 1 subunit of Na+/K+-ATPase. The absence of a net Na+ flux across these cells combined with the basolateral location of the ATPase suggest that Na+ exit from the cell, and its re-entry take place across the same membrane (i. e. the basolateral).  相似文献   

20.
Vascular smooth muscle cells were obtained from rabbit aorta and were studied in primary culture on days 1–7 after seeding with electrophysiological techniques. In impalement experiments a mean membrane potential difference (PD) of –50±0.3 mV (n=387) was obtained with Ringer-type solution in the bath. PD was depolarized by 6±0.3 mV (n=45) and 16±2 mV (n= 5) when the bath K+ concentration was increased from the control value of 3.6 mmol/l to 13.6 and 23.6 mmol/l, respectively. Ba2+ (0.1–1 mmol/l) depolarized PD. Tetraethylammonium (TEA, 10 mmol/l) depolarized PD only slightly but significantly. Verapamil (0.1 mmol/l) and charybdotoxin (10 nmol/l) had no effect on PD. The conductance properties of these cells were further examined with the patch-clamp technique. K+ channels were spontaneously present in cell-attached patches. When the pipette was filled with 145 mmol/l KCl, a mean conductance (g K) of 209.6±4.6 mV (n=17) was read from the current/voltage curves at a clamp voltage (V c) of 0 mV. After excision K+ channels were found in 129 patches with inside-out and in 50 with outside-out configuration. With KCl on one and NaCl on the other side the mean g K at a V c of 0 mV was 134.6±3.9 pS (n=179). The mean permeability was 0.89±0.03×10–12 cm3/s. With symmetrical KCl solution the mean g K was 227±6 pS (n=17). The conductance sequence was g K g Rb= g Cs=g Na=0. TEA blocked dose-dependently only from the outside.(1–10 mmol/l). Lidocaine (5 mmol/l) quinidine (0.01–1 mmol/l) and quinine (0.01–1 mmol/l) blocked from both sides. Charybdotoxin (0.5–5 nmol/l) blocked only from the extracellular side. Ba2+ blocked from the cytosolic side and the inhibition was increased by depolarization and reduced by hyperpolarization. At a V c of 0 mV a half-maximal inhibition (IC50) of 2 mol/l was obtained. Verapamil and diltiazem blocked from both sides, verapamil with an IC50 of 2 mol/l and diltiazem with an IC50 of 10 mol/l. The open probability of this channel was increased by Ca2+ on the cytosolic side at activities > 0.1 mol/l. Half-maximal activation occurred at Ca2+ activities exceeding 1 mol/l. The present data indicate that the vascular smooth muscle cells of rabbit aorta in primary culture possess a K+ conductance. In excised patches only a maxi K+ channel was detected. This channel has properties different from the macroscopic K+ conductance. Hence, it is likely that the K+ conductance of the intact cell is dominated by yet another and thus far not detected K+ channel.Supported by DFG Gr 480/10  相似文献   

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