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1.
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   

2.
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   

3.
Summary Individual resistances of the apical cell membrane,R a , the basolateral cell membrane,R bl , and the paracellular shunt,R s , were determined in theNecturus proximal tubule using a set of three electrical parameters. Four electrical parameters were measured: the transepithelial resistance, (R te ), the apical and basolateral cell membrane resistance in parallel, (R Z free-flow tubules), the basolateral cell membrane resistance in oil-filled tubules, (R Z oil-filled), and the ratio of apical and basolateral cell membrane resistance (R a /R bl ).R te was determined from an analysis of the spatial decay of luminal voltage following luminal current injection.R Z free-flow andR Z oil-filled were measured by the analysis of the spatial decay of intracellular voltage deflections following cellular current injection in free flow and oil-filled tubules, respectively.R a /R bl was estimated from the ratio of voltage deflections across the apical and basolateral cell membranes following transepithelial current injection. In addition, the magnitude of cellular and luminal cable interactions was evaluated, by comparing the spatial decay of voltage deflections in the cell and in the lumen following intracellular current injection. The combined cell membrane resistance (R a +R bl ) is between one to two orders of magnitude greater than the paracellular resistance. This result supports the view that theNecturus proximal tubule is a leaky epithelium.  相似文献   

4.
Summary Regulation of the paracellular pathway in rabbit distal colon by the hormone aldosterone was investigated in vitro in Ussing chambers by means of transepithelial and microelectrode techniques. To evaluate the cellular and paracellular resistances an equivalent circuit analysis was used. For the analysis the apical membrane resistance was altered using the antibiotic nystatin. Under control conditions two groups of epithelia were found, each clearly dependent on the light: dark regime. Low-transporting epithelia (LT) were observed in the morning and high-transporting epithelia (HT) in the afternoon. Na+ transport was about 3-fold higher in HT than in LT epithelia. Incubating epithelia of both groups with 0.1 mol·1-1 aldosterone on the serosal side nearly doubled in LT epithelia the short circuit current and transepithelial voltage but the transepithelial resistance was not influenced. Maximal values were reached after 4–5 h of aldosterone treatment. In HT epithelia due to the effect of aldosterone all three transepithelial parameters remained constant over time. Evaluation of the paracellular resistance revealed a significant increase after aldosterone stimulation in both epithelial groups. This increase suggests that tight junctions might have been regulated by aldosterone. The hormonal effect on electrolyte transport was also dependent on the physiological state of the rabbit colon. Since net Na+ absorption in distal colon is, in addition to transcellular absorption capacity, also dependent on the permeability of the paracellular pathway, the regulation of tight junctions by aldosterone may be a potent mechanism for improving Na+ absorption during hormone-stimulated ion transport.Abbreviations V t transepithelial potential difference (mV) - R t transepithelial resistance (·cm2) - G t transepithelial conductance (mS·cm-2) - Isc calculated short circuit current (A·cm-2) - V a apical membrane potential difference (mV) - V bl basolateral membrane potential difference (mV) - voltage divider ratio - R a apical membrane resistance (·cm2) - R bl basolateral membrane resistance (·cm2) - R c cellular resistance ( of apical and basolateral resistance) (·cm2) - R p resistance of the paracellular pathway (·cm2) - G a apical membrane conductance (mS·cm-2) - G bl basolateral membrane conductance (mS·cm-2) - G p paracellular conductance (mS·cm-2) - G t transepithelial conductance (mS·cm-2) - HT contr high transporting control epithelia - LT contr low transporting control epithelia - HT aldo aldosterone incubated high transporting epithelia - LT aldo aldosterone incubated low transporting epithelia  相似文献   

5.
Summary The electrical properties of the basolateral membrane of rabbit descending colon were studied with microelectrode methods in conjunction with the polyene antibiotic nystatin. Two problems were examined: (i) the relative distribution of tight junctional, apical membrane and basolateral membrane resistances, and (ii) the ionic basis of the basolateral membrane potential. Intracellular K+ activity (K+) was measured using liquid ion exchanger microelectrodes ((K+)=76±2mm) and was found not to be in equilibrium with the basolateral membrane potential. In order to measure membrane resistances and to estimate the selective permeability of the basolateral membrane, the apical membrane was treated with nystatin and bathed with a K2SO4 Ringer's solution which was designed to mimic intracellular K+ composition. This procedure virtually eliminated the resistance and electromotive force of the apical membrane. Shunt resistance was calculated by two independent methods based on microelectrode and transepithelial measurements. Both methods produced similar results (R s =691±63 cm2 and 770±247 cm2, respectively). These findings indicate that the shunt has no significant selectivity, contrary to previous reports. Native apical membrane resistance was estimated as 705±123 V cm2 and basolateral membrane resistance was 95±14 V cm2.To estimate basolateral membrane selectivity, the serosa was bathed in a NaCl Ringer's solution followed by a series of changes in which all or part of the Na+ was replaced by equimolar amounts of K+. From measures of bi-ionic potentials and conductance during these replacements, we calculated potassium permeability and selectivity ratios for the nystatin-treated colon by fitting these results to the constant field equations. By correcting for shunt conductance, it was then possible to estimate the selective permeability of the basolateral membrane alone. Selectivity estimates were as follows:P Na/P K=.08 andP Cl/P K=.07 (uncorrected for shunt) andP Na/P K=.04 andP Cl/P K=.06 (basolateral membrane alone).In a second set of experiments, evidence for an electrogenic Na+ pump in the basolateral membrane is presented. A small ouabain-sensitive potential could be generated in the nystatin-treated colon in the absence of chemical or electrical gradients by mucosal, but not serosal, addition of NaCl. We conclude that this electrogenic pump may contribute to the basolateral membrane potential; however, the primary source of this potential is passive: specifically, a potassium gradient which is maintained by an active transport process.An appendix compares the results of nystatin experiments to amiloride experiments which were conducted separately on the same tissues. The purpose of this comparison was to develop a comprehensive model of colonic transport. The analysis reveals a leak conductance in the apical membrane and the presence of an amiloride-insensitive conductance pathway.  相似文献   

6.
Summary The ionic dependencies of the transepithelial and intracellular electrical parameters were measured in the isolated frog cornea. In NaCl Ringer's the intracellular potential differenceV sc measured under short-circuit conditions depolarized by nearly the same amount after either increasing the stromal-side KCl concentration from 2.5 to 25mm or exposure to 2mm BaCl2 (K+ channel blocker). With Ba2+ the depolarization of theV sc by 25mm K+ was reduced to one-quarter of the control change. If the Cl-permselective apical membrane resistanceR o remained unchanged, the relative basolateral membrane resistanceR i, which includes the lateral intercellular space, increased at the most by less than twofold after Ba2+. These effects in conjunction with the depolarization of theV sc by 62 mV after increasing the stromal-side K+ from 2.5 to 100mm in Cl-free Ringer's as well as the increase of the apparent ratio of membrane resistances (a=R o/Ri) from 13 to 32 are all indicative of an appreciable basolateral membrane K+ conductance. This ratio decreased significantly after exposure to either 25mm K+ or Ba2+. The decline ofR o/Ri with 25mm K+ appears to be anomalous since this decrease is not consistent with just an increase of basolateral membrane conductance by 25mm K+, but rather perhaps a larger decrease ofR o thanR iAlso an increase of lateral space resistance may offset the effect of decreasingR i with 25mm K+. In contrast,R o/Ri did transiently increase during voltage clamping of the apical membrane potential differenceV o and exposure to 25mm K+ on the stromal side. This increase and subsequent decrease ofR o/Ri supports the idea that increases in stromal K+ concentration may produce secondary membrane resistance changes. These effects onR o/Ri show that the presence of asymmetric ionic conductance properties in the apical and basolateral membranes can limit the interpretative value of this parameter. The complete substitution of Na+ withn-methyl-glucamine in Cl-free Ringer's on the stromal side hyperpolarized theV sc by 6 mV whereas 10–4 m ouabain depolarized theV sc by 7 mV. Thus the basolateral membrane contains K+, Na+ and perhaps Cl pathways in parallel with the Na/K pump component.  相似文献   

7.
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   

8.
Summary Exposing the apical membrane of toad urinary bladder to the ionophore nystatin lowers its resistance to less than 100 cm2. The basolateral membrane can then be studied by means of transepithelial measurements. If the mucosal solution contains more than 5mm Na+, and serosal Na+ is substituted by K+, Cs+, or N-methyl-d-glucamine, the basolateral membrane expresses what appears to be a large Na+ conductance, passing strong currents out of the cell. This pathway is insensitive to ouabain or vanadate and does not require serosal or mucosal Ca2+. In Cl-free SO 4 2– Ringer's solution it is the major conductive pathway in the basolateral membrane even though the serosal side has 60mm K+. This pathway can be blocked by serosal amiloride (K i=13.1 m) or serosal Na+ ions (K i 10 to 20mm). It also conducts Li+ and shows a voltage-dependent relaxation with characteristic rates of 10 to 20 rad sec–1 at 0 mV.  相似文献   

9.
Summary Direct current (DC) measurement methods have been commonly used to characterize the conductance properties of the mammalian colon. However, these methods provide no information concerning the effects of tissue morphology on the electrophysiological properties of this epithelium. For example, distribution of membrane resistances along narrow fluid-filled spaces such as the lateral intercellular spaces (LIS) or colonic crypts can influence DC measurements of apical and basolateral membrane properties. We used impedance analysis to determine the extent of such distributed resistance effects and to assess the conductance and capacitance properties of the colon. Because capacitance is proportional to membrane area, this method provides new information concerning membrane areas and specific ionic conductances for these membranes.We measured transepithelial impedance under three conditions: (1) control conditions in which the epithelium was opencircuited and bathed on both sides with NaCl–HCO3 Ringer's solutions, (2) amiloride conditions which were similar to control except that 100 m amiloride was present in the mucosal bathing solution, and (3) mucosal NaCl-free conditions in which mucosal Na and Cl were replaced by potassium and sulfate or gluconate (K+ Ringer's). Three morphologically-based equivalent circuit models were used to evaluate the data: (1) a lumped model (which ignores LIS resistance), (2) a LIS distributed model (distributed basolateral membrane impedance) and (3) a crypt-distributed model (distributed apical membrane impedance). To estimate membrane impedances, an independent measurement of paracellular conductance (G s ) was incorporated in the analysis. Although distributed models yielded improved fits of the data, the distributed and lumped models produced similar estimates of membrane parameters. The predicted effects of distributed resistances on DC microelectrode measurements were largest for the LIS-distributed model. LIS-distributed effects would cause a 12–15% underestimate of membrane resistance ratio (R a /R b ) for the control and amiloride conditions and a 34% underestimate for the K Ringer's condition. Distributed resistance effects arising from the crypts would produce a 1–2% overestimate ofR a /R b .Apical and basolateral membrane impedances differed in the three different experimental conditions. For control conditions, apical membrane capacitance averaged 21 F/cm2 and the mean apical membrane specific conductance (G a-norm) was 0.17 mS/F. The average basolateral membrane capacitance was 11 F/cm2 with a mean specific conductance (G b-norm) of 1.27 mS/F.G a-norm was decreased by amiloride or K+ ringer's to 0.07 mS/gmF and 0.06 mS/F, respectively. Basolateral conductance was also reduced by amiloride, whereas capacitance was unchanged (G b-norm=0.97 mS/F). For the K+ Ringer's condition, both basolateral conductance and capacitance were greatly increased such thatG b-norm was not significantly different from the control condition.  相似文献   

10.
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   

11.
Summary The ability of early proximal tubule cells of theNecturus kidney to regulate volume was evaluated using light microscopy, video analysis and conventional microelectrodes.Necturus proximal tubule cells regulate volume in both hyperand hyposmotic solutions. Volume regulation in hyperosmotic fluids is HCO 3 dependent and is associated with a decrease in the relative K+ conductance of the basolateral cell membrane and a decrease in the resistance ratio,R a /R bl . Volume regulation in hyposmotic solutions is also dependent upon the presence of HCO 3 but is also inhibited by 2mm Ba2+ in the basolateral solution. Hyposmotic regulation is accompanied by an increase in the relative K+ conductance of the basolateral cell membrane and an increase inR a /R bl . Neither hypo- nor hyposmotic regulation have any affect on the depolarization of the basolateral cell membrane potential induced by HCO 3 removal. We conclude that volume regulation in the early proximal tubule of the kidney involves both HCO 3 -dependent transport systems and the basolateral K+ conductance.  相似文献   

12.
Summary We used intracellular microelectrode techniques to study the mechanisms responsible for Cl secretion by canine tracheal epithelium. Tissues were treated with indomethacin (10–6 m, added to the mucosal solution) to reduce the baseline rate of Cl secretion and then stimulated by addition of epinephrine (10–6 m) or prostaglandin E1 (10–6 m) to the submucosal solution.Three conclusions emerged from our findings: First, secretagogues enhance the rate of transepithelial Cl transport primarily by increasing apical membrane Cl permeability, since: (i) stimulation of secretion produced parallel decreases in transepithelial resistance (R t) and the membrane resistance ratioR a/Rb, whereR a andR b refer to the resistances of the apical and basolateral membranes; (ii) there was an inverse relation between the short-circuit current andR a/Rb; (iii) secretagogues depolarized the electrical potential difference across the apical membrane (a) and produced an equivalent hyperpolarization of the transepithelial electrical potential difference (1) so that, in the steady-state, the basolateral membrane potential (b) was unchanged; and (iv) substitution of sulfate or gluconate for Cl in the bathing solutions prevented secretagogue-induced changes inR t, Ra/Rb, (a) and (1).Second, Cl entry into the cell across the basolateral membrane appears to be electrically-neutral since omission of Cl from the submucosal solution had no effect on (b) and did not decreaseR a/Rb as would be expected if Cl entered the cell by a conductive process.Third, secretagogues decreaseR b. Approximately 20 sec after the onset of the secretory responseR a/Rb underwent a secondary increase whileR t continued to fall. The decrease inR b may reflect an increase in basolateral membrane K permeability.  相似文献   

13.
Summary Apical Na+ entry into frog skin epithelium is widely presumed to be electrodiffusive in nature, as for other tight epithelia. However, in contrast to rabbit descending colon andNecturus urinary bladder, the constant field equation has been reported to fit the apical sodium current (N Na)-membrane potential (mc) relationship over only a narrow range of apical membrane potentials or to be inapplicable altogether. We have re-examined this issue by impaling split frog skins across the basolateral membrane and examining the current-voltage relationships at extremely early endpoints in time after initiating pulses of constant transepithelial voltage. In this study, the rapid transient responses in mc were completed within 0.5 to 3.5 msec. Using endpoints to 1 to 25 msec, the Goldman equation provided excellent fits of the data over large ranges in apical potential of 300 to 420 mV, from approximately –200 to about +145 mV (cell relative to mucosa). Split skins were also studied when superfused with high serosal K+ in order to determine whether theI Na-mc relationship could be generated purely by transepithelial measurements. Under these conditions, the basolateral membrane potential was found to be –10±3 mV (cell relative to serosa, mean±se), the basolateral fractional resistance was greater than zero, and the transepithelial current was markedly and reversibly reduced. For these reasons, use of high serosal K+ is considered inadvisable for determining theI Na-mc relationship, at least in those tissues (such as frog skin) where more direct measurements are technically feasible. Analysis of theI Na-mc relationships under baseline conditions provided estimates of intracellular Na+ concentration and of apical Na+ permeability of 9 to 14mm and of 3 × 10–7 cm · sec–1, respectively, in reasonable agreement with estimates obtained by different techniques.  相似文献   

14.
Summary The effects of bathing solution HCO 3 /CO2 concentrations on baseline cell membrane voltages and resistances were measured inNecturus gallbladder epithelium with conventional intracellular microelectrode techniques. Gallbladders were bathed in either low HCO 3 /CO2 Ringer's solutions (2.4mm HCO 3 /air or 1mm HEPES/air) or a high HCO 3 /CO2 Ringer's (10mm HCO 3 /1% CO2). The principal finding of these studies was that the apical membrane fractional resistance (fR a) was higher in tissues bathed in the 10mm HCO 3 /CO2 Ringer's, averaging 0.87±0.06, whereasfR a averaged 0.63±0.07 and 0.48±0.08 in 2.4mm HCO 3 and 1mm HEPES, respectively. Intraepithelial cable analysis was employed to obtain estimates of the individual apical (R a) and basolateral membrane (R b) resistances in tissues bathed in 10mm HCO 3 /1% CO2 Ringer's. Compared to previous resistance measurements obtained in tissues bathed in a low HCO 3 /CO2 Ringer's, the higher value offR a was found to be due to both an increase inR a and a decrease inR b. The higher values offR a and lower values ofR b confirm the recent observations of others. To ascertain the pathways responsible for these effects, cell membrane voltages were measured during serosal solution K+ and Cl substitutions. The results of these studies suggest that an electrodiffusive Cl transport mechanism exists at the basolateral membrane of tissues bathed in a 10mm HCO 3 /1% CO2 Ringer's, which can explain in part the fall inR b. The above observations are discussed in terms of a stimulatory effect of solution [HCO 3 /PCO2 on transepithelial fluid transport, which results in adaptive changes in the conductive properties of the apical and basolateral membranes.  相似文献   

15.
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   

16.
Summary Euryhaline Crustacea living in dilute media, counterbalance the salt loss by active absorption of NaCl across the gill epithelium. To investigate the mechanisms involved in salt absorption, transeptithelial potential difference (PDte) was measured in isolated, perfused gills of the fiddler crab,Uca tangeri. The influence of some specific inhibitors of epithelial ion transport on the PDte was tested.With symmetrical conditions on both sides of the epithelium, the posterior gills ofUca tangeri showed a spontaneous PDte of +5 to +10 mV, that is an active transport potential which was positive on the bath side as referred to the hemolymph side. This potential decreased considerably after application of KCN or 2,4-dinitrophenol (DNP) to the perfusion saline.Omission of K+ from the perfusion saline or addition of ouabain led to a reversible drop of the PDte, suggesting that the absorption of Na+ and also of Cl is driven by the (Na++K+)ATPase located in the basolateral membrane of the epithelial cells.Perfusion of the hemolymph space with saline containing diphenylamine-2-carboxylate (DPC) or the loop diuretic furosemide resulted in a decrease of the PDte.After application of amiloride to the bath saline the PDte increased. Half-maximum response to amiloride was reached at a concentration of about 10–5 mol·l–1. This suggests that one of the Na+ pathways across the apical membrane may consist of Na+ channels.Abbreviations PD te transepithelial potential difference - DPC diphenylamine-2-carboxylate - R ps resistance of perfusate shunt - R te transepithelial resistance - R in input resistance - DNP 2,4-dinitrophenol Parts of this study have been reported at the 1st Congress of Comparative Physiology and Biochemistry, Liège 1984, and at the Vth European Colloquium on Renal Physiology, Frankfurt, 1985  相似文献   

17.
Summary Forskolin (i.e, cAMP)-modulation of ion transport pathways in filter-grown monolayers of the Cl-secreting subclone (19A) of the human colon carcinoma cell line HT29 was studied by combined Ussing chamber and microimpalement experiments.Changes in electrophysiological parameters provoked by serosal addition of 10–5 m forskolin included: (i) a sustained increase in the transepithelial potential difference (3.9±0.4 mV). (ii) a transient decrease in transepithelial resistance with 26±3 · cm2 from a mean value of 138±13 · cm2 before forskolin addition, (iii) a depolarization of the cell membrane potential by 24±1 mV from a resting value of –50±1 mV and (iv) a decrease in the fractional resistance of the apical membrane from 0.80±0.02 to 0.22±0.01. Both, the changes in cell potential and the fractional resistance, persisted for at least 10 min and were dependent on the presence of Cl in the medium. Subsequent addition of bumetanide (10–4 m), an inhibitor of Na/K/2Cl cotransport, reduced the transepithelial potential, induced a repolarization of the cell potential and provoked a small increase of the transepithelial resistance and fractional apical resistance. Serosal Ba2+ (1mm), a known inhibitor of basolateral K+ conductance, strongly reduced the electrical effects of forskolin. No evidence was found for a forskolin (cAMP)-induced modulation of basolateral K+ conductance.The results suggest that forskolin-induced Cl secretion in the HT-29 cl.19A colonic cell line results mainly from a cAMP-provoked increase in the Cl conductance of the apical membrane but does not affect K+ or Cl conductance pathways at the basolateral pole of the cell. The sustained potential changes indicate that the capacity of the basolateral transport mechanism for Cl and the basal Ba2+-sensitive K+ conductance are sufficiently large to maintain the Cl efflux across the apical membrane. Furthermore, evidence is presented for an anomalous inhibitory action of the putative Cl channel blockers NPPB and DPC on basolateral conductance rather than apical Cl conductance.  相似文献   

18.
19.
20.
Summary The effects of short (1 sec) and long (1 min) transepithelial current clamps on membrane voltages and resistances ofNecturus gallbladder were investigated. Transepithelial and cell membrane current-voltage relationships determined from 1-sec clamps revealed that: a) depolarization of the apical membrane voltage (V mc) results in a marked decrease in apical membrane fractional resistance (fR a), whereas hyperpolarization ofV mc results in either no change infR a or a small increase, and b) the voltage-dependent changes infR a are essentially complete within 500 msec. Exposure of the tissue to 5mm TEA+ on the mucosal side caused no significant change in baselineV mc (–69±2 mV) and yet virtually abolished the voltage dependence offR a. A possible interpretation of these results is that two types of K+ channels exist in the apical membrane, with different voltage dependencies and TEA+ sensitivities. Acidification or Ba2+ addition to the mucosal solution also reduced the voltage-dependent changes infR a. The time courses of the changes infR a and in the cable properties of the epithelium were assessed during 1-min transepithelial current clamps (±200 A/cm2). No secondary change infR a was observed with mucosa-to-serosa currents, but a slow TEA+-sensitive decrease infR a (half-time of seconds) was evident with serosa-to-mucosa currents. Cable analysis experiments demonstrated that the initial (<500 msec) voltage-dependent decrease infR a is due to a fall in apical membrane resistance. The later decrease infR a is due to changes in both cell membrane resistances attributable to the increase in transcellular current flow resulting from a fall in paracellular conductance. The voltage dependence of the apical membrane conductance is a more significant problem in estimatingfR a than the current-induced effects on the lateral intercellular spaces. In principle, TEA+ can be used to prevent the nonlinear behavior ofR a during measurements of the voltage divider or membrane resistance ratio.  相似文献   

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