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1.
Summary In studies of apical membrane current-voltage relationships, in order to avoid laborious intracellular microelectrode techniques, tight epithelia are commonly exposed to high serosal K concentrations. This approach depends on the assumptions that high serosal K reduces the basolateral membrane resistance and potential to insignificantly low levels, so that transepithelial values can be attributed to the apical membrane. We have here examined the validity of these assumptions in frog skins (Rana pipiens pipiens). The skins were equilibrated in NaCl Ringer's solutions, with transepithelial voltageV t clamped (except for brief perturbations V t) at zero. The skins were impaled from the outer surface with 1.5m KCl-filled microelectrodes (R el>30 M). The transepithelial (short-circuit) currentl i and conductanceg t=–I t/V t, the outer membrane voltageV o (apical reference) and voltage-divider ratio (F o=V o/V t), and the microelectrode resistanceR el were recorded continuously. Intermittent brief apical exposure to 20 m amiloride permitted estimation of cellular (c) and paracellular (p) currents and conductances. The basolateral (inner) membrane conductance was estimated by two independent means: either from values ofg i andF o before and after amiloride or as the ratio of changes (–I c/V i) induced by amiloride. On serosal substitution of Na by K, within about 10 min,I c declined andg t increased markedly, mainly as a consequence of increase ing p. The basolateral membrane voltage (V i(=–V o) was depolarized from 75±4 to 2±1 mV [mean±sem (n=6)], and was partially repolarized following amiloride to 5±2 mV. The basolateral conductance increased in high serosal K, as estimated by both methods. Essentially complete depolarization of the basolateral membrane and increase in its conductance in response to high [K] were obtained also when the main serosal anion was SO4 or NO3 instead of Cl. On clampingV t over the range 0 to +125 mV in K2SO4-depolarized skins, the quasi-steady-stateV o V t relationship was linear, with a mean slope of 0.88±0.03. The above results demonstrate that, in a variety of conditions, exposure to high serosal K results in essentially complete depolarization of the basolateral membrane and a large increase in its conductance.  相似文献   

2.
Two-electrode voltage clamp (TEVC) methods were used to explore conductive transport pathways in principal cells, the dominant cell type in Malpighian tubules of the yellow fever mosquito. The basolateral membrane of principal cells had a voltage (Vbl) of -85.1 mV in 49 principal cells under control conditions. Measures of the input resistance Rpc together with membrane fractional resistance yielded estimates of the conductance of the basolateral membrane (gbl = 1.48 μS) and the apical membrane (ga = 3.13 μS). K+ channels blocked by barium accounted for 0.94 μS of gbl. Estimates of transference numbers yielded the basolateral membrane Na+ conductance of 0.24 μS, leaving 0.30 μS (20%) of gbl unaccounted. The secretagogue db-cAMP (0.1 mM), a known activator of the basolateral membrane Na+ conductance, significantly depolarized Vbl to -65.0 mV and significantly increased gbl from 1.48 μS to 2.47 μS. The increase was blocked with amiloride (1 mM), a known blocker of epithelial Na+ transport. The inhibition of metabolism with di-nitrophenol significantly depolarized Vbl to -9.7 mV and significantly increased Rpc from 391.6 kΩ to 2612.5 kΩ. Similar results were obtained with cyanide, but it remains unclear whether the large increases in Rpc stem from the uncoupling of epithelial cells and/or the shutdown of conductive transport pathways in basolateral and apical membranes. Our results indicate that the apical membrane of principal cells is more than twice as conductive as the basolateral membrane. Partial ionic conductances suggest the rate-limiting step for transepithelial Na+ secretion at the basolateral membrane.  相似文献   

3.
Summary In the isolated frog cornea, the effects of 0.1mm epinephrine were measured on both the transepithelial and intracellular electrical parameters. Epinephrine increased the short-circuit current (I sc) and transepithelial electrical conductance (g t) by 176 and 96%, respectively. The effective electromotive driving force for active transepithelial Cl transport (E Cl) was 45 mV and agrees with the value forE Cl calculated by a different technique in the isolated rabbit corneal epithelium (Klyce, S.D., Wong, R.K.S., 1977,J. Physiol. (London) 266: 777). With respect to the tear-side bathing solution, epinephrine caused the intracellular potential difference of shortcircuited frog corneas to decrease from –54 to –50 mV (P>0.05). The fractional resistance of the apical membrane {F(R o)=(Ro/Ro+Ri)} whereR o andR i represent the resistances of the apical and basolateral membranes, respectively, decreased from 0.38±0.06 to 0.23±0.03. Using these values ofF(R o) and the cellular conductances, the calculated Cl resistances ofR o andR i decreased 4.3- and 2.3-fold, respectively. However, the value forE Cl calculated from the intracellular electrical measurements (48 mV) did not appear to change since this value was in close agreement with the value forE Cl calculated from the effects of epinephrine on the transepithelial electrical parameters. Thus, the effects of epinephrine onI sc andg t can be accounted for by increases in the Cl conductance of both the apical and basolateral membranes. Epinephrine caused the potential difference across the basolateral membrane to hyperpolarize by 9 mV. All of these results are consistent with the notion that the steps in transepithelial Cl transport include uphill movement into the cell across the basolateral membrane followed by downhill movement across the apical membrane into the tear-side bathing solution.  相似文献   

4.
Summary The potential dependence of unidirectional36Cl fluxes through toad skin revealed activation of a conductive pathway in the physiological region of transepithelial potentials. Activation of the conductance was dependent on the presence of Cl or Br in the external bathing solution, but was independent of whether the external bath was NaCl-Ringer's, NaCl-Ringer's with amiloride, KCl-Ringer's or choline Cl-Ringer's To partition the routes of the conductive Cl ion flow, we measured in the isolated epithelium with double-barrelled microelectrodes apical membrane potentialV a , and intracellular Cl activity,a Cl c , of the principal cells indentified by differential interference contrast microscopy. Under short-circuit conditionsI sc=27.0±2.0 A/cm2, with NaCl-Ringer's bathing both surfaces,V a was –67.9±3.8mV (mean ±se,n=24, six preparations) anda Cl c was 18.0±0.9mM in skins from animals adapted to distilled water. BothV a anda Cl a were found to be positively correlated withI sc (r=0.66 andr=0.70, respectively). In eight epithelia from animals adapted to dry milieu/tap waterV a anda Cl c were measured with KCl Ringer's on the outside during activation and deactivation of the transepithelial Cl conductance (G Cl) by voltage clamping the transepithelial potential (V) at 40 mV (mucosa positive) and –100 mV. AtV=40 mV; i.e. whenG Cl was deactivated,V a was –70.1±5.0 mV (n=15, eight preparations) anda Cl c was 40.0±3.8mm. The fractional apical membrane resistance (fR a) was 0.69±0.03. Clamping toV=–100 mV led to an instantaneous change ofV a to 31.3±5.6 mV (cell interior positive with respect to the mucosal bath), whereas neithera Cl c norfR a changed significantly within a 2 to 5-min period during whichG Cl increased by 1.19±0.10 mS/cm2. WhenV was stepped back to 40 mV,V a instantaneously shifted to –67.8±3.9 mV whilea Cl c andfR a remained constant during deactivation ofG Cl. Similar results were obtained in epithelia impaled from the serosal side. In 12 skins from animals adapted to either tap water or distilled water the density of mitochondria-rich (D MRC) cells was estimated and correlated with the Cl current (I Cl though the fully activated (V=–100mV) Cl conductance). A highly significant correlation was revealed (r=–0.96) with a slope of –2.6 nA/m.r. (mitochondria-rich cell and an I-axis intercept not significantly different from zero. In summary, the voltage-dependent Cl currents were not reflected infR a anda Cl a of the principal cells but showed a correlation with the m.r. cell density. We conclude that the pricipal cells do not contribute significantly to the voltage-dependent Cl conductance.  相似文献   

5.
Intracellular ion concentrations were determined in split skins of Rana pipiens using the technique of electron microprobe analysis. Based on the 1 min Br uptake from the apical bath, two types of mitochondria-rich (MR) cells could be distinguished: active cells which rapidly exchanged their anions with the apical bath and inactive cells which did not. Br uptake and frequency of active MR cells were closely correlated with the skin conductance, g t. Replacing Cl in the apical bath with an impermeant anion significantly lowered g t and the Br uptake and Na concentration of active cells. Even larger reductions were observed after apical amiloride (0.1 mm). The inhibition of the Br uptake was reversible by voltage clamping (100 mV, inside positive). Cl removal and amiloride also led to some shrinkage of active cells. The results suggest that the active cell is responsible for a large part of g t. Inactive MR cells had much lower Br and Na concentrations which were not significantly affected by Cl removal, amiloride, or voltage clamping. Principal cells, which represent the main cell type of the epithelium, showed only a minimal Br uptake from the apical side which was not correlated with g t. Moreover, Cl removal had no effect on the Na, Br, and Cl concentrations of principal cells.I wish to thank Cathy Langford for her excellent technical assistance. Financial support was provided by National Institutes of Health grants DK35717 and 1S10-RR0-234501.  相似文献   

6.
Summary The basal-lateral surface of the epithelium of the urinary bladder of the toad (Bufo marinus) was depolarized by exposure of the serosal surface to 85mm KCL and 50mm sucrose. The extent of depolarization appeared to be virtually complete, as evaluated by the invariance in the transepithelial electrical potential difference and conductance on addition of nystatin (a monovalent cation ionophore) to the serosal medium. The Na-specific current (I Na) was defined as the current sensitive to the removal of Na from the mucosal medium or inhibitable by addition of amiloride to this medium. In the presence of the high K-sucrose serosal medium, rapid, serial, stepwise clamping of the transepithelial voltage (V) yielded a curvilinear dependence ofI Na onV; which is taken to represent theI–V curve of the apical Na channels. The constant field equation (Goldman, D.E. 1943;J. Gen. Physiol. 27:37) fits theI–V data points closely, allowing estimates to be made of the permeability to Na of the apical membrane (P Na) and of the intracellular Na activity (Na c ). Exposure of the apical surface to amiloride (5×10–7 m) decreasedP Na in proportion to the decrease inI Na (i.e., 70%) but decreased Na c only 25%. In contrast, an equivalent lent reduction inI Na elicited by exposure of the basallateral surface to ouabain was accompanied by only a 20% decrease inP Na and a sixfold increase in Na c . The effects of amiloride onP Na and ouabain on Na c are consistent with the primary pharmacological actions of these drugs. In addition,P Na appears to be under metabolic control, in that 2-deoxyglucose, a specific inhibitor of glycolysis, decreasedI Na andP Na proportionately, and lowered Na c marginally, effects indistinguishable from those obtained with amiloride.  相似文献   

7.
Summary Previous studies in anuran epithelia have shown that, after clamping the transepithelial voltage in symmetrical sequences for 4–6 min there is near-constancy of the rate of active Na transport and the associated oxidative metabolism, with a near-linear potential dependence of both. Here we have investigated in frog skin the cellular electrophysiological events associated with voltage clamping (V t =inside-outside potential). Increase and decrease ofV t produced converse effects, related directly to the magnitude ofV t .Hyperpolarization resulted in prompt decrease in inward transepithelial currentI t and increase in fractional outer membrane resistancefR 0 (as evaluated from small transient voltage perturbations) and in outer membrane potentialV 0. Overshoot ofV 0 was followed by relaxation to a quasi-steady state in minutes. Changes infR 0 were progressive, with half times of some 1–5 sec. Changes in transepithelial slope conductanceg t were more variable, usually preventing precise evaluation of the outer and inner cell membrane conductancesg 0 andg i . Nevertheless, it was shown thatg 0 is related inversely toV t andV 0. Presuming insensitivity ofV i toV t , the dependence ofg 0 onV 0 in the steady state much exceeds that predicted by the constant field equation. Apparent inconsistencies with earlier results of others may be attributable to differences in protocol and the complex dependence ofg 0 onV 0 and/or cellular current. In contrast to previous findings in tight epithelia at open circuit, differences inV t were associated with substantial differences infR 0 and inner membrane potentialV i . Hyperpolarization ofV t over ranges commonly employed in studies of active transport and metabolism appears to increase significantly the electrochemical work per Na ion transported.  相似文献   

8.
Summary Cystic fibrosis (CF) is characterized by abnormal epithelial Cl conductance (GCl). In vitro studies that have shown that cAMP regulation is an intrinsic property of the CF-affected GCl(CF-GCl) have been carried out previously on cultured secretory cells and on nonepithelial cells. Even though GCl in absorption is defective in CF, a clear demonstration of cAMP regulation of CF-GCl in a purely absorptive tissue is lacking. We studied the cAMP regulation of CF-GCl in the microperfused intact human reabsorptive sweat duct. About 40% of the ducts responded to cAMP (responsive) while the remainder of the ducts did not. In responsive ducts, cAMP-elevating agents: -adrenergic agonist isoproterenol (IPR), CPT-cAMP, forskolin, theophylline or IBMX increased G tby about 2.3-fold (n = no. of ducts = 8). Removal of media Cl, but not amiloride pretreatment (in the lumen), abolished the cAMP response, indicating exclusive activation of GCl. cAMP activated both apical and basolateral GCl. cAMP hyperpolarized gluconate: Cl (lumen: bath) transepithelial bionic potentials (V t=–20.3±5.2 mV, mean ±se, n=9) and transepithelial 3 1 luminal NaCl dilution diffusion potentials (V t=–8.8±2.9 mV, n=5). cAMP activated basolateral GCl as indicated by increased bi-ionic (gluconate: Cl, bath: lumen) diffusion potentials (by about 12 mV). The voltage divider ratio in symmetric NaCl solutions increased by 60%. Compared to responsive ducts, nonresponsive ducts were characterized by smaller spontaneous transepithelial potentials in symmetrical Ringer's solution (V t=–6.9±0.8 mV, n=24, nonresponsive vs. –19.4±1.8 mV, n=22, responsive ducts) but larger bi-ionic potentials (–94±6 mV, n=35, nonresponsive vs. –65±5 mV, n=17, responsive ducts) and dilution diffusion potentials (–40±5 mV, n=11, nonresponsive vs. –29±3 mV, n=7, responsive ducts). These results are consistent with an inherently (prestimulus) maximal activation of GCl in nonresponsive ducts and submaximal activation of GCl in responsive ducts. We conclude that cAMP activates CF-G Cl which is expressed and abnormal in both apical and basal membranes of this absorptive epithelium in CF.Abbreviations CF cystic fibrosis - G t transepithelial conductance - V b electrical potential across the basolateral membrane - V a electrical potential across the apical membrane - V t transepithelial potential - V b transepithelial currentinduced voltage deflections across the basolateral membrane - V a transepithelial current-induced voltage deflections across the apical membrane - V t transepithelial current-induced voltage deflection across the epithelium - VDR voltage divider ratio - GCl transepithelial Cl conductance - CF-GCl cystic fibrosis-affected Cl conductance - EMF electromotive force - IPR isoproterenol - IBMX 3-isobutyl-1-methylxanthine - CPT-cAMP chlorophenylthio-adenosine 3-5 cyclic monophosphate - PGE2 prostaglandin E2  相似文献   

9.
Summary As reported previously (S.R. Thomas et al.,J. Membrane Biol. 73:157–175, 1983) the current-voltage (I–V) relations of the Na-entry step across the apical membrane of short-circuitedNecturus urinary bladder in the presence of varying mucosal Na concentrations are (i) time-independent between 20–90 msec and (ii) conform to the Goldman-Hodgkin-Katz constant field flux equation for a single cation over a wide range of voltages.In contrast, theI–V relations of the basolateral membrane under these conditions are (i) essentially linear between the steady-state, short-circuited condition and the reversal potential (E s ); and (ii) are decidedly time-dependent withE s increasing and the slope conductance,E s , decreasing between 20 and 90 msec after displacing the transepithelial electrical potential difference. Evidence is presented that this time-dependence cannot be attributed entirely to the electrical capacitance of the tissue.The values ofg s determined at 20 msec are linear functions of the short-circuit current,I sc, confirming the relations reported previously, which were obtained using a more indirect approach.The values ofE s determined at 20 msec are significantly lower than any reasonable estimate of the electromotive force for K across the basolateral membrane, indicating that this barrier possesses a significant conductance to other ions which may exceed that to K. In addition, these values increase linearly with decreasingI sc and approach the value of the electrical potential difference across the basolateral membrane observed when Na entry across the apical membrane is blocked with amiloride or when Na is removed from the mucosal solution.A possible explanation for the time-dependence ofE s andg s is offered and the implications of these findings regarding the interpretation of previous microelectrophysiologic studies of epithelia are discussed.  相似文献   

10.
Summary Patch-clamp techniques have been applied to characterize the channels in the basolateral membrane of resting (cimetidine-treated, nonacid secreting) oxyntic cells isolated from the gastric mucosa ofNecturus maculosa. In cell-attached patches with pipette solution containing 100mm KCl, four major classes of K+ channels can be distinguished on the basis of their kinetic behavior and conductance: (1) 40% of the patches contained either voltage-independent (a) or hyperpolarization-activated (b), inward-rectifying channels with short mean open times (16 msec fora, and 8 msec forb). Some channels showed subconductance levels. The maximal inward conductanceg max was 31±5 pS (n=13) and the reversal potentialE rev was atV p=–34±6 mV (n=9). (2) 10% of the patches contained depolarization-activated and inward-rectifying channels withg max=40 ±18 pS (n=3) andE rev was atV p=–31±5 mV (n=3). With hyperpolarization, the channels open in bursts with rapid flickerings within bursts. Addition of carbachol (1mm) to the bath solution in cell-attached patches increased the open probabilityP o of these channels. (3) 10% of the patches contained voltage-independent inward-rectifying channels withg max=21±3 pS (n=4) andE rev was atV p=–24±9 mV (n=4). These channels exhibited very high open probability (P o=0.9) and long mean open time (1.6 sec) at the resting potential. (4) 20% of the patches contained voltage-independent channels with limiting inward conductance of 26±2 pS (n=3) andE rev atV p=–33±3 mV (n=3). The channels opened in bursts consisting of sequential activation of multiple channels with very brief mean open times (10 msec). In addition, channels with conductances less than 6 pS were observed in 20% of the patches. In all nine experiments with K+ in the pipette solution replaced by Na+, unitary currents were outward, and inward currents were observed only for large hyperpolarizing potentials. This indicates that the channels are more selective for K+ over Na+ and Cl. A variety of K+ channels contributes to the basolateral K+ conductance of resting oxyntic cells.  相似文献   

11.
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   

12.
Summary Two methods, the measurement of the response of the basolateral membrane potential (V bl) of proximal tubule cells ofNecturus to step changes in basolateral K+ concentration, and cellular cable analysis, were used to assess the changes in basolateral potassium conductance (G K) caused by a variety of maneuvers. The effects of some of these maneuvers on intracellular K+ activity (a K i ) were also evaluated using double-barreled ion-selective electrodes. Perfusion with 0mm K+ basolateral solution for 15 min followed by 45 min of 1mm K+ solution resulted in a fall in basolateral potassium (apparent) transference number (t K),V bl anda K i . Results of cable analysis showed that total basolateral resistance,R b , rose. The electrophysiological effects of additional manipulations, known to inhibit net sodium reabsorption across the proximal tubular epithelium ofNecturus, were also investigated. Ouabain caused a fall int K accompanied by large decreases ina K i andV bl. Lowering luminal sodium caused a fall int K and a small reduction inV bl. Selective reduction of peritubular sodium, a maneuver that has been shown to block sodium transport from lumen to peritubular fluid, also resulted in a significant decrease int K. These results suggest thatG K varies directly with rate of transport of the sodium pump, irrespective of the mechanism of change in pump turnover.Part of this material has been presented at the 10th International Conference on Biological Membranes (Cohen & Giebisch, 1984).  相似文献   

13.
Summary The mechanism of Na+ transport in rabbit urinary bladder has been studied by microelectrode techniques. Of the three layers of epithelium, the apical layer contains virtually all the transepithelial resistance. There is radial cell-to-cell coupling within this layer, but there is no detectable transverse coupling between layers. Cell coupling is apparently interrupted by intracellular injection of depolarizing current. The cell interiors are electrically negative to the bathing solutions, but the apical membrane of the apical layer depolarizes with increasingI sc. Voltage scanning detects no current sinks at the cell junctions or elsewhere. The voltage-divider ratio, , (ratio of resistance of apical cell membrane,R a, to basolateral cell membrane,R b) decreases from 30 to 0.5 with increasingI sc, because of the transportrelated conductance pathway in the apical membrane. Changes in effective transepithelial capacitance withI sc are predicted and possibly observed. The transepithelial resistance,R t, has been resolved intoR a, Rb, and the junctional resistance,R j, by four different methods: cable analysis, resistance of uncoupled cells, measurements of pairs of (R t, ) values in the same bladder at different transport rates, and the relation betweenR t andI sc and between andI sc.R j proves to be effectively infinite (nominally 300 k F) and independent ofI sc, andR a decreases from 154 to 4 k F with increasingI sc. In the resulting model of Na+ transport in tight epithelia, the apical membrane contains an amiloride-inhibited and Ca++-inhibited conductance pathway for Na+ entry; the basolateral membrane contains a Na+–K+-activated ATPase that extrudes Na+; intracellular (Na+) may exert negative feedback on apical membrane conductance; and aldosterone acts to stimulate Na+ entry at the apical membrane via the amiloride-sensitive pathway.  相似文献   

14.
15.
Summary Microelectrode techniques were applied to the rabbit isolated perfused cortical collecting duct to provide an initial quantitation and characterization of the cell membrane and tight junction conductances. Initial studies demonstrated that the fractional resistance (ratio of the resistance of the apical cell membrane to the sum of the resistances of the apical and basolateral membranes) was usually independent of the point along the tubule of microelectrode impalement—implicating little cell-to-cell coupling—supporting the application of quantitative techniques to the cortical collecting duct. It was demonstrated that in the presence of amiloride, either reduction in the luminal pH or the addition of barium to the perfusate selectively reduced the apical membrane potassium conductance. From the changes inG te and fractional resistance upon reducing the luminal pH or addition of barium to the perfusate, the transepithelial, apical membrane, basolateral membrane and tight junction conductances were estimated to be 9.3, 6.7, 8.1 and 6.0 mS cm–2, respectively. Ninety to ninety-five percent of the apical membrane conductance reflected the barium-sensitive potassium conductance in the presence of amiloride with an estimated potassium permeability of 1.1×10–4 cm sec–1. Reduction in the perfusate pH to 4.0 caused a 70% decrease in the apical membrane potassium conductance, implying a blocking site with an acidic group having a pK a near 4.4. It is concluded that both the transcellular and paracellular pathways of the cortical collecting tubule have high ionic conductances, and that the apical membrane conductance primarily reffects a high potassium conductance. Furthermore, both reduction in the perfusate pH and addition of barium to the perfusate selectively block the apical potassium channels, although the site of inhibition likely differs since the two ions display markedly different voltage-dependent blocks of the channel.  相似文献   

16.
Summary Cell Na activity,a Na c , was measured in the short-circuited frog skin by simulaneous cell punctures from the apical surface with open-tip and Na-selective microelectrodes. Skins were bathed on the serosal surface with NaCl Ringer and, to reduce paracellular conductance, with NaNO3 Ringer on the apical surface. Under control conditionsa Na c averaged 8±2mm (n=9,sd). Apical addition of amiloride (20 m) or Na replacement reduceda Na c to 3mm in 6–15 min. Sequential decreases in apical [Na] induced parallel reductions ina Na c and cell current,I c . On restoring Na after several minutes of exposure to apical Na-free solutionI c rose rapidly to a stable value whilea Na c increased exponentially, with a time constant of 1.8±0.7 min (n=8). Analysis of the time course ofa Na c indicates that the pump Na flux is linearly related toa Na c in the range 2–12mm. These results indicate thata Na c plays an important role in relating apical Na entry to basolateral active Na flux.  相似文献   

17.
Dicyclohexylcarbodiimide (DCCD) is a carboxyl group modifier and it is an inhibitor of various ATPases. Present experiments, using an in vitro preparation, were designed to study whether DCCD affected the transporters of the bullfrog cornea epithelium, specifically, the Na+/K+ ATPase pump located in the basolateral membrane. For this purpose, corneas were impaled with microelectrodes and experiments were done under short-circuit current (I sc ) conditions. Addition of DCCD to a concentration of 10−4 m to the tear solution gave a marked decrease in I sc ; a marked depolarization of the intracellular potential, V o ; and a significant decrease in the apical membrane fractional resistance, fR o . There were small and variable although significant changes in the transepithelial conductance, g t . The effects may be explained by a decrease in the basolateral membrane K+ conductance, in combination with a partial inhibition of the Na+/K+-ATPase pump located in the basolateral membrane. There is also evidence for an increase in the apical membrane Cl conductance. Received: 12 August 1999/Revised: 16 November 1999  相似文献   

18.
Summary Cell K activity,a k, was measured in the short-circuited frog skin by simultaneous cell punctures from the apical surface with open-tip and K-selective microelectrodes. Strict criteria for acceptance of impalements included constancy of the open-tip microelectrode resistance, agreement within 3% of the fractional apical voltage measured with open-tip and K-selective microelectrodes, and constancy of the differential voltage recorded between the open-tip and the K microelectrodes 30–60 sec after application of amiloride or substitution of apical Na. Skins were bathed on the serosal surface with NaCl Ringer and, to reduce paracellular Cl conductance and effects of amiloride on paracellular conductance, with NaNO3 Ringer on the apical surface.Under control conditionsa k r was nearly constant among skins (mean±SD=92±8mM, 14 skins) in spite of a wide range of cellular currents (5 to 70 A/cm2). Cell current (and transcellular Na transport) was inhibited by either apical addition of amiloride or substitution of Na by other cations. Although in some experiments the expected small increase ina k r after inhibition of cell current was observed, on the average the change was not significant (98±11mM after amiloride, 101±12mM after Na substitution), even 30 min after the inhibition of cell current. The membrane potential, which in the control state ranged from –42 to –77 mV, hyperpolarized after inhibition of cell current, initially to –109±5mV, then depolarizing to a stable value (–88±5mV) after 15–25 min. At this time K was above equilibrium (E k=98±2mV), indicating that the active pump mechanism is still operating after inhibition of transcellular Na transport.The measurement ofa k r permitted the calculation of the passive K current and pump current under control conditions. assuming a constant current source with almost all of the basolateral conductance attributable to K. We found a significant correlation between pump current and cell current with a slope of 0.31, indicating that about one-third of the cell current is carried by the pump, i.e., a pump stoichiometry of 3Na/2K.  相似文献   

19.
Summary The present investigation was undertaken to examine the usefulness of cultured human sweat duct cells for ion transport and related studies in the genetic disease, cystic fibrosis. Electrical properties of cultured duct (CD) cells were compared with electrical properties of microperfused duct (MPD) cells. The resting apical membrane potential (V a ) of the CD cells was −26.4±0.9 mV,n=158 cells as compared to −24.3±0.6 mV,n=105 of MPD cells. The Na+−K+ pump inhibitor ouabain, when applied to the apical surface of the CD cells and basolateral surface of MPD cells, depolarized both CD cells (from −28.6±3.6 to −16.8±2.4 mV,n=5) and MPD cells (from −23.8±0.5 mV to −19.5±1.8 mV,n=6). The Na+ conductance inhibitor amiloride applied to the apical surface hyperpolarized the apical membrane potentials (Va) of CD cells and MPD cells by −13.2±1.4 mV,n=43 and −34.3±3.1 mV,n=19), respectively, indicating the presence of amiloride sensitive Na+ channels in both groups of cells. However, the amiloride sensitivity of CD cells was dependent on the age of the culture. Cl substitution at the apical side by the impermeant anion gluconate depolarized the V a of CD cells and MPD cells by 12.2±0.9 mV,n=32 and 37.9±4.3 mV,n=12, respectively. The effect of β-adrenergic agonist isoproterenol (IPR), was inconsistent. In CD cells, IPR either hyperpolarized (ΔV a =−8.3±1.2mV,n=5) or depolarized (ΔV a =8.2±2.3 mV,n=4) or had no effect,n=2. In contrast, most of the MPD cells did not respond to IPR, but three cells had a varied response to IPR. Our results suggest that CD cells, like MPD cells, retain significant Na+ and Cl conductances. CD cells seem to have developed a higher sensitivity to β-adrenergic stimulation in tissue culture as compared to MPD cells. This work was supported by grants from the National Institutes of Health, Bethesda, MD, DK26547, Getty Oil Co., the Gillette Co., Cystic Fibrosis Research Inc., and the U.S. National Cystic Fibrosis Foundation.  相似文献   

20.
Summary Using the patch-clamp technique, we recorded whole-cell calcium current from isolated cardiac myocytes dissociated from the apical ventricles of 7-day and 14-day chick embryos. In 70% of 14-day cells after 24 hr in culture, two component currents could be separated from totalI Ca activated from a holding potential (V h) of –80 mV. L-type current (I L) was activated by depolarizing steps fromV h –30 or –40 mV. The difference current (I T) was obtained by subtractingI L, fromI Ca.I T could also be distinguished pharmacologically fromI L in these cells.I T was selectively blocked by 40–160 m Ni2+, whereasI L was suppressed by 1 m D600 or 2 m nifedipine. The Ni2+-resistant and D600-resistant currents had activation thresholds and peak voltages that were near those ofI T andI L defined by voltage threshold, and resembled those in adult mammalian heart. In 7-day cells,I T andI L could be distinguished by voltage threshold in 45% (S cells), while an additional 45% of 7-day cells were nonseparable (NS) by activation voltage threshold. Nonetheless, in mostNS cells,I Ca was partly blocked by Ni2+ and by D600 given separately, and the effects were additive when these agents were given together. Differences among the cells in the ability to separateI T andI L by voltage threshold resulted largely from differences in the position of the steady-state inactivation and activation curves along the voltage axis. In all cells at both ages in which the steady-state inactivation relation was determined with a double-pulse protocol, the half-inactivation potential (V 1/2) of the Ni2+-resistant currentI L averaged –18 mV. In contrast,V 1/2 of the Ni2+-sensitiveI T was –60 mV in 14-day cells, –52 mV in 7-dayS cells, and –43 mV in 7-day NS cells. The half-activation potential was near –2 mV forI L at both ages, but that ofI T was –38 mV in 14-day and –29 mV in 7-day cells. Maximal current density was highly variable from cell to cell, but showed no systematic differences between 7-day and 14-day cells. These results indicate that the main developmental change that occurs in the components ofI Ca is a negative shift with, embryonic age in the activation and inactivation relationships ofI T along the voltage axis.  相似文献   

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