首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 31 毫秒
1.
Summary In a previous study we presented evidence that chloride transport across the basolateral membrane inNecturus proximal tubule cells occurs predominantly via exchange for both Na+ and HCO 3 . In this study the regulation of intracellular chloride was further examined in the doubly-perfused kidney preparation using conventional and chloride-sensitive microelectrodes. Application of hypertonic basolateral solutions containing 80mm raffinose stimulated an efflux of chloride such that chloride activity remained unchanged at control levels. Membrane potential did not change in these experiments. Inhibition of Cl exit across the basolateral cell membrane by removal of either HCO 3 or Na+ from the perfusion solution resulted in a significant increase in intracellular chloride activity,a Cl i , when basolateral osmolarity was raised. Hypertonic basolateral solutions also produced a significant rise ina Cl i in the presence of SITS.This study provides further evidence that chloride is transported across the basolateral cell membrane in exchange for both Na+ and HCO 3 . Since this exchange mechanism is activated in response to hypertonic solutions, these studies suggest a functional role for this exchanger in the regulation ofa Cl i in theNecturus proximal tubule cell during volume changes.  相似文献   

2.
Summary The chloride conductance of the basolateral cell membrane of theNecturus proximal tubule was studied using conventional and chloride-sensitive liquid ion exchange microelectrodes. Individual apical and basolateral cell membrane and shunt resistances, transepithelial and basolateral, cell membrane potential differences, and electromotive forces were determined in control and after reductions in extracellular Cl. When extracellular Cl activity is reduced in both apical and basolateral solutions the resistance of the shunt increases about 2.8 times over control without any significant change in cell membrane resistances. This suggests a high Cl conductance of the paracellular shunt but a low Cl conductance of the cell membranes. Reduction of Cl in both bathing solutions or only on the basolateral side hyperpolarizes both the basolateral cell membrane potential difference and electromotive force. Hyperpolarization of the basolateral cell membrane potential difference after low Cl perfusion was abolished by exposure to HCO 3 -free solutions and SITS treatment. In control conditions, intracellular Cl activity was significantly higher than predicted from the equilibrium distribution across both the apical and basolateral cell membranes. Reducing Cl in only the basolateral solution caused a decrease in intracellular Cl. From an estimate of the net Cl flux across the basolateral cell membrane and the electrochemical driving force, a Cl conductance of the basolateral cell membrane was predicted and compared to measured values. It was concluded that the Cl conductance of the basolateral cell membrane was not large enough to account for the measured flux of Cl by electrodiffusion alone. Therefore these results suggest the presence of an electroneutral mechanism for Cl transport across the basolateral cell membrane of theNecturus proximal tubule cell.  相似文献   

3.
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   

4.
Summary The purpose of this study was to characterize the basolateral membrane of the S3 segment of the rabbit proximal tubule using conventional and ion-selective microelectrodes. When compared with results from S1 and S2 segments, S3 cells under control conditions have a more negative basolateral membrane potential (V bl=–69 mV), a higher relative potassium conductance (t K=0.6), lower intracellular Na+ activity (A Na=18.4mm), and higher intracellular K+ activity (A K=67.8mm). No evidence for a conductive sodium-dependent or sodium-independent HCO 3 pathway could be demonstrated. The basolateral Na–K pump is inhibited by 10–4 m ouabain and bath perfusion with a potassium-free (0-K) solution. 0-K perfusion results inA Na=64.8mm,A K=18.5mm, andV bl=–28 mV. Basolateral potassium channels are blocked by barium and by acidification of the bathing medium. The relative K+ conductance, as evaluated by increasing bath K+ to 17mm, is dependent upon the restingV bl in both S2 and S3 cells. In summary, the basolateral membrane of S3 cells contains a pump-leak system with similar properties to S1 and S2 proximal tubule cells. The absence of conductive bicarbonate pathways results in a hyperpolarized cell and larger Na+ and K+ gradients across the cell borders, which will influence the transport properties and intracellular ion activities in this tubule segment.  相似文献   

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

6.
Summary The contribution of specific ions to the conductance and potential of the basolateral membrane of the rabbit urinary bladder has been studied with both conventional and ion-specific microelectrode techniques. In addition, the possibility of an electrogenic active transport process located at the basolateral membrane was studied using the polyene antibiotic nystatin. The effect of ion-specific microelectrode impalement damage on intracellular ion activities was examined and a criterion set for acceptance or rejection of intracellular activity measurements. Using this criterion, we found (K+)=72mm and (Cl)=15.8mm. Cl but not K+ was in electrochemical equilibrium across the basolateral membrane. The selective permeability of the basolateral membrane was measured using microelectrodes, and the data analyzed using the Goldman, Hodgkin-Katz equation. The sodium to potassium permeability ratio (P Na/P K) was 0.044, and the chloride to potassium permeability ratio (P Cl/P K) was 1.17. Since K+ was not in electrochemical equilibrium, intracellular (K+) is maintained by active metabolic processes, and the basolateral membrane potential is a diffusion potential with K+ and Cl the most permeable ions. After depolarizing the basolateral membrane with high serosal potassium bathing solutions and eliminating the apical membrane as a rate limiting step for ion movement using the polyene antibiotic nystatin, we found that the addition of equal aliquots of NaCl to both solutions caused the basolateral membrane potential to hyperpolarize by up to 20 mV (cell interior negative). This popential was reduced by 80% within 3 min of the addition of ouabain to the serosal solution. This hyperpolarization most probably represents a ouabain sensitive active transport process sensitive to intracellular Na+. An equivalent electrical circuit for Na+ transport across rabbit urinary bladder is derived, tested, and compared to previous results. This circuit is also used to predict the effects that microelectrode impalement damage will have on individual membrane potentials as well as time-dependent phenomena; e.g., effect of amiloride on apical and basolateral membrane potentials.  相似文献   

7.
Summary Enhanced cellular cAMP levels have been shown to increase apical membrane Cl and HCO 3 conductances in epithelia. We found that the phosphodiesterase inhibitor 3-isobutyl-1-methyl-xanthine (IBMX) increases cAMP levels inNecturus gallbladder. We used conventional open-tip and double-barreled Cl-selective microelectrodes to study the effects of IBMX on membrane conductances and intracellular Cl activities in gallbladders mounted in a divided chamber and bathed with Ringer's solutions at 23°C and pH 7.4. In HCO 3 -free media, 0.1mM IBMX added to the mucosal medium depolarized the apical membrane potentialV a , decreased the fractional resistanceF R , and significantly reduced intracellular Cl activity (a Cl i ). Under control conditions,a Cl i was above the value corresponding to passive distribution across the apical cell membrane. In media containing 25mM HCO 3 , IBMX caused a small transient hyperpolarization ofV a followed by a depolarization not significantly different from that observed in HCO 3 -free Ringer's. Removal of mucosal Cl, Na+ or Ca2+ did not affect the IBMX-induced depolarization inV a . The basolateral membrane ofNecturus gallbladder is highly K+ permeable. Increasing serosal K+ from 2.5 to 80mM, depolarizedV a . Mucosal IBMX significantly reduced this depolarization. Addition of 10mM Ba2+, a K+ channel blocker, to the serosal medium depolarizedV a and, essentially, blocked the depolarization induced by IBMX. These results indicate that mucosal IBMX increases apical HCO 3 conductance and decreases basolateral K+ conductance in gallbladder epithelial cells via a cAMP-dependent mechanism. The latter effect, not previously reported in epithelial tissues, appears to be the major determinant of the IBMX-induced depolarization ofV a .  相似文献   

8.
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   

9.
Summary The basolateral potassium conductance of cells of most epithelial cells plays an important role in the transcellular sodium transport inasmuch as the large negative equilibrium potential of potassium across this membrane contributes to the electrical driving force for Na+ across the apical membrane. In the present study, we have attempted to establish, theI-V curve of the basolateral membrane of theAmphiuma collecting tubule, a membrane shown to be K+ selective. TransepithelialI-V curves were obtained in short, isolated perfused collecting tubule segments. The shunt conductance was determined using amiloride to block the apical membrane Na+ conductance. In symmetrical solutions, the shuntI-V curve was linear (conductance: 2.2±0.3 mS·cm–2). Transcellular current was calculated by subtracting the shunt current from the transepithelial current in the absence of amiloride. Using intracellular microelectrodes, it was then possible to measure the basolateral membrane potential simultaneously with the transcellular current. The basolateral conductance was found to be voltage dependent, being activated by hyperpolarization: conductance values at –30 and –80 mV were 3.6±1.0 and 6.6±1.0 mS·cm–2, respectively. BasolateralI-V curves were thus clearly different from that predicted by the constant field model. These results indicate that the K+-selective basolateral conductance of an amphibian collecting tubule shows inward (anomalous) rectification. Considering the electrogenic nature basolateral Na–K-pump, this may account for coupling between pump-generated potential and basolateral K+ conductance.  相似文献   

10.
Summary Active Cl transport in bullfrog corneal epithelium was studied using transepithelial impendance analysis methods, and direct-current (DC) measurements of membrane voltages and resistance ratios. The technique allows the estimation of the apical and basolateral membrane conductances, and the paracellular conductance, and does not rely on the use of membrane conductance-altering agents to obtain these measurements as was requisite in earlier DC equivalent-circuit analysis studies. In addition, the analysis results in estimates of the apical and basolateral membrane capacitances, and allows resolution of the paracellular conductance into properties of the tight junctions and lateral spaces. Membrane capacitances (proportional to areas) were used to estimate the specific conductances of the apical and basolateral membranes, as well as to evaluate coupling between the cell layers. We confirm results obtained from earlier studies: (1) apical membrane conductance is proportional to the rate of active Cl transport and is, highly Cl selective; (2) intracellular Cl activity is above electrochemical equilibrium, thereby providing a net driving force for apical membrane Cl exit; (3) the paracellular conductance is comparable to the transcellular conductance. We also found that: (1) the paracellular conductance is composed of the series combination of the junctional conductance and a nonnegligible lateral space resistance; (2) a small K+ conductance reported in the apical membrane may result from Cl channels possessing a finite permeability to K+; (3) the basolateral membrane areas is 36 times greater than the apical membrane area which is consistent with the notion of electrical coupling between the five to six cell layers of the epithelium; (4) the specific conductance of the basolateral membrane is many times lower than that of the apical membrane; (5) the net transport of Cl is modulated primarily by changes in the conductance of the apical membrane and not by changes in the net electrochemical gradient resulting from opposite changes in the electrical and chemical gradients; (6) the conductance of the basolateral membrane does not change with transport which implies that the net driving force for K+ exit increases with transport, possibly due to an increase in the intracellular K+ activity.  相似文献   

11.
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   

12.
Summary Cysteine-sensitive alkaline phosphatase and/or ouabain-sensitive Na+, K+-ATPase were studied by ultrastructure cytochemistry in epithelial cells of proximal and distal kidney tubules. Alkaline phosphatase reactivity was confined to the surface of the microvillous luminal cell membrane of proximal tubule cells, whereas distal tubules and collecting ducts were unreactive. The Na+, K+-ATPase reactivity was localized evenly along the cytoplasmic side of the basolateral cell membrane of cells of proximal and distal tubules and in collecting ducts. In the proximal tubules, where the activity was strongest, the Na+, K+-ATPase deposits were also found in the 10–50 nm gap between the cell membrane and the cisternae of tubulo-cisternal endoplasmic reticulum (TER) underlying a major part of the basolateral cell membrane. The restriction of Na+, K+-ATPase sites, which are involved in extrusion of Na+ from the cell, to a narrow cytoplasmic compartment located between the cell membrane and the cisternae of TER, is consistent with a transport role for the TER.  相似文献   

13.
Summary The interactions between ion and water fluxes have an important bearing on osmoregulation and transepithelial water transport in epithelial cells. Some of these interactions were investigated using ion-selective microelectrodes in theNecturus gallbladder. The intracellular activities of K+ and Cl in epithelial cells change when the epithelium is adapted to transport in solutions of a low osmolarity. In order to achieve new steady states at low osmolarities, cells lost K+, Cl and some unidentified anions. Surprisingly, the apparent K+ concentration remained high: at an external osmolartity of 64 mOsm the intracellular K+ concentration averaged 95mm. This imbalance was sensitive to anoxia and ouabain. The effects of abrupt changes in the external osmolarities on the intracellular activities of Na+, K+ and Cl were also investigated. The gradients were effectuated by mannitol. The initial relative rates of change of the intracellular activities of Na+ and Cl were equal. The data were consistent with Na+ and Cl ions initially remaining inside the cell and a cell membraneL p of 10–3 cm sec–1 osm–1, which is close to the values determine by Spring and co-workers (K.R. Spring, A. Hope & B.-E. Persson, 1981.In: Water Transport Across Epithelia. Alfred Benzon Symposium 15. pp. 190–200. Munskgaard, Copenhagen). The initial rate of change of the intracellular activity of K+ was only 0.1–0.2 times the change observed in Na+ and Cl activities, and suggests that K+ ions leave the cell during the osmotically induced H2O efflux and enter with an induced H2O influx. The coupling is between 98 and 102 mmoles liter–1. Various explanations for the anomalous behavior of intracellular K+ ions are considered. A discussion of the apparent coupling between K+ and H2O, observed in nonsteady states, and its effects on the distribution of K+ and H2O across the cell membrane in the steady states, is presented.  相似文献   

14.
Summary Models of epithelial salt secretion, involving secondary active transport of Cl [9], locate the K+ conductance of the plasma membrane exclusively in the basolateral membrane, although there is considerable experimental evidence to show that many secretory epithelia do have a significant apical K+ conductance. We have used an equivalent circuit model to examine the effect of an apical K+ conductance on the composition and flow rate of the fluid secreted by an epithelium in which secretion is driven by the secondary active transport of Cl. The parameters of the model were chosen to be similar to those measured in the dog tracheal mucosa when stimulated with adrenaline to secrete. We find that placing a K+ conductance in the apical membrane can actually enhance secretion provided that proportion of the total cell K+ conductance in the apical membrane is not greater than about 60%, the enabling effect on secretion being maximal when the proportion is around 10–20%. We also find that even when the entire cell K+ conductance is located in the apical membrane, the secreted fluid remains relatively Na+ rich. Analysis of the sensitivity of model behavior to the choice of values for the parameters shows that the effects of an apical K+ conductance are enhanced by increasing the ratio of the paracellular resistance to the transcellular resistance.  相似文献   

15.
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   

16.
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   

17.
Summary We have measured the intracellular potassium activity, [K+]i and the mechanisms of transcellular K+ transport in reabsorptive sweat duct (RSD) using intracellular ion-sensitive microelectrodes (ISMEs). The mean value of [K+]i in RSD is 79.8±4.1mm (n=39). Under conditions of microperfusion, the [K+]i is above equilibrium across both the basolateral membrane, BLM (5.5 times) and the apical membrane, APM (7.8 times). The Na+/K+ pump inhibitor ouabain reduced [K+]i towards passive distribution across the BLM. However, the [K+]i is insensitive to the Na+/K+/2 Cl cotransport inhibitor bumetanide in the bath. Cl substitution in the lumen had no effect on [K+]i. In contrast, Cl substitution in the bath (basolateral side) depolarized BLM from –26.0±2.6 mV to –4.7*±2.4 mV (n=3;* indicates significant difference) and decreased [K+]i from 76.0±15.2mm to 57.7* ±12.7mm (n=3). Removal of K+ in the bath decreased [K+]i from 76.3±15.0mm to 32.3*±7.6mm (n=4) while depolarizing the BLM from –32.5±4.1 mV to –28.3*±3.0 mV (n=4). Raising the [K+] in the bath by 10-fold increased [K+]i from 81.7±9.0mm to 95.0*±13.5mm and depolarized the BLM from –25.7±2.4 mV to –21.3*±2.9 mV (n=4). The K+ conductance inhibitor, Ba2+, in the bath also increased [K+]i from 85.8±6.7mm to 107.0*±11.5mm (n=4) and depolarized BLM from –25.8±2.2 mV to –17.0*±3.1 mV (n=4). Amiloride at 10–6 m increased [K+]i from 77.5±18.8mm to 98.8*±21.6mm (n=4) and hyperpolarized both the BLM (from –35.5±2.6 mV to –47.8*±4.3 mV) and the APM (from –27.5±1.4 mV to –46.0* ±3.5 mV,n=4). However, amiloride at 10–4 m decreased [K+]i from 64.5±0.9mm to 36.0*±9.9mm and hyperpolarized both the BLM (from –24.7±1.4 mV to –43.5*±4.2 mV) and APM (from –18.3±0.9 mV to –43.5*±4.2 mV,n=6). In contrast to the observations at the BLM, substitution of K+ or application of Ba2+ in the lumen had no effect on the [K+]i or the electrical properties of RSD, indicating the absence of a K+ conductance in the APM. Our results indicate that (i) [K+]i is above equilibrium due to the Na+/K+ pump; (ii) only the BLM has a K+ conductance; (iii) [K+]i is subject to modulation by transport status; (iv) K+ is probably not involved in carrier-mediated ion transport across the cell membranes; and (v) the RSD does not secrete K+ into the lumen.  相似文献   

18.
19.
Summary Simultaneous measurements of transepithelial potential difference (PD) and net water flux were made in the stripped intestine of seawater eels, and the effects of ouabain on these two parameters were examined in normal Ringer solution or under a chloride concentration gradient. Ouabain reduced the serosa-negative PD and the net water flux in normal Ringer solution with a linear relationship between the PD and the net water flux. Removal of K+ from the Ringer solution on both serosal and mucosal sides also reduced the PD and the net water flux to approximately zero. On the other hand, blocking the Na+–K+ pump by ouabain, K+-free or Na+-free Ringer solution increased the diffusion potential for Cl. Inhibition of Cl transport and increment in Cl permeability by ouabain occurred almost simultaneously. It is likely, therefore, that Cl transport as well as Cl permeability is dependent on Na+–K+ pump activity. A possible mechanism of dependence of Cl transport on the Na+–K+ pump is discussed in relation to the increment in Cl permeability.  相似文献   

20.
Summary Gluconate substitution for serosal Cl reduces the transepithelial short-circuit current (I sc) and depolarizes shortcircuited frog skins. These effects could result either from inhibition of basolateral K+ conductance, or from two actions to inhibit both apical Na+ permeability (P Na ap ) and basolateral pump activity. We have addressed this question by studying whole-and split-thickness frog skins. Intracellular Na+ concentration (C Na c ) andP Na ap have been monitored by measuring the currentvoltage relationship for apical Na+ entry. This analysis was conducted by applying trains of voltage pulses, with pulse durations of 16 to 32 msec. Estimates ofP Na ap ) and CNa/c were not detectably dependent on pulse duration over the range 16 to 80 msec. Serosal Cl replacement uniformly depolarized short-circuited tissues. The depolarization was associated with inhibition ofI sc across each split skin, but only occasionally across the whole-thickness preparations. This difference may reflect the better ionic exchange between the bulk medium and the extracellular fluid in contact with the basolateral membranes, following removal of the underlying dermis in the split-skin preparations.P Na ap was either unchanged or increased, and CNa/c either unchanged or reduced after the anionic replacement. These data are incompatible with the concept that serosal Cl replacement inhibitsP Na ap and Na, K-pump activity. Gluconate substutition likely reduces cell volume, triggering inhibition of the basolateral K+ channels, consistent with the data and conclusions of S.A. Lewis, A.G. Butt, M.J. Bowler, J.P. Leader and A.D.C Macknight (J. Membrane Biol. 83:119–137, 1985) for toad bladder. The resulting depolarization reduces the electrical force favoring apical Na+ entry. The volume-conductance coupling serves to conserve volume by reducing K+ solute loss. Its molecular basis remains to be identified.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号