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1.
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   

2.
Ouabain-blocked toad urinary bladders were maintained in Na+-free mucosal solutions, and a depolarizing solution of high K+ activity containing only 5 mM Na+ on the serosal side. Exposure to mucosal sodium (20 mM activity) evoked a transient amiloride-blockable inward current, which decayed to near zero within one hour. The apical sodium conductance increased in the initial phase of the current decay and decreased in the second phase. The conductance decrease required Ca2+ to be present on the serosal side and was more rapid when the mucosal Na+ activity was higher. At 20 mM mucosal Na+ and 3 mM serosal Ca2+ the initial (maximal) rate of inhibition amounted to 20% in 10 min. The conductance decrease could be accelerated by raising the serosal Ca2+ activity to 10 mM. The inhibition reversed on lowering the serosal Ca2+ to 3 μM and, in addition, the mucosal Na+ to zero. Exposure of the mucosal surface to the ionophore nystatin abolished the Ca2+ sensitivity of the transcellular conductance, showing that the Ca2+-sensitive conductance resides in the apical membrane. The data imply that in the K+-depolarized epithelia, cellular Ca2+, taken up from the serosal medium by means of a Na+-Ca2+ antiport, cause feedback inhibition by blockage of apical Na+ channels. However, the rate of inhibition is small, such that this regulatory mechanism will have little effect at 1 mM serosal Ca2+ and less than 20 mM cellular Na+.  相似文献   

3.
The absorbance change of the weak base dye probe, Acridine orange, was used to monitor alterations of pH gradients across renal brush border membrane vesicles. The presence of Na+/H+ or Li+/H+ exchange was demonstrated by diluting Na2SO4 or Li2SO4 loaded vesicles into Na+- or Li+-free solutions, which caused dye uptake. About 20% of the uptake was abolished by lipid permeable cations such as valinomycin-K+ or tetraphenylphosphonium, indicating perhaps the presence of a finite Na+ conductance smaller than electroneutral Na+/H+ exchange. The protonophore tetrachlorosalicylanilide raised the rate of dye uptake under these conditions, hence the presence of an Na+ conductance greater than the H+ conductance was suggested. K+ gradients also induced changes of pH, at about 10% of the Na+ or Li+ rate. Partial inhibition (21%) was seen with 0.1 mM amiloride indicating that K+ was a low affinity substrate for the Na+/H+ exchange. Acceleration both by tetrachlorosalicylanilide (2-fold) and valinomycin (4-fold) suggested the presence of 2 classes of vesicles, those with high and those with low K+ conductance. The larger magnitude of the valinomycin dependent signal suggested that 75% of the vesicles had a low K+ conductance. Inward Cl? gradients also induced acidification, partially inhibited by the presence of tetraphenylphosphonium, and accelerated by tetrachlorosalicylanilide. Thus both a Cl? conductance greater than the H+ conductance and a Cl?/OH? exchange were present. The rate of Na+/H+ exchange was amiloride sensitive with a pH optimum of 6.5 and an apparent Km for Na+ or Li+ of about 10 mM and an EA of 14.3 kcal per mol. A 61-fold Na2SO4 gradient resulted in a pH gradient of 1.64 units which increased to 1.8 with gramicidin. An equivalent NaCl gradient gave a much lower ΔpH even in the presence of gramicidin showing that the H+ and Cl? pathways could alter the effects of the Na+/H+ exchange.  相似文献   

4.
《Molecular membrane biology》2013,30(3-4):339-365
In rat small intestine, the active transport of organic solutes results in significant depolarization of the membrane potential measured in an epithelial cell with respect to a grounded mucosal solution and in an increase in the transepithelial potential difference. According to the analysis with an equivalent circuit model for the epithelium, the changes in emf's of mucosal and serosal membranes induced by active solute transport were calculated using the measured conductive parameters. The result indicates that the mucosal cell membrane depolarizes while the serosal cell membrane remarkably hyperpolarizes on the active solute transport. Corresponding results are derived from the calculations of emf's in a variety of intestines, using the data that have hitherto been reported. The hyperpolarization of serosal membrane induced by the active solute transport might be ascribed to activation of the serosal electrogenic sodium pump. In an attempt to determine the causative factors in mucosal membrane depolarization during active solute transport, cell water contents and ion concentrations were measured. The cell water content remarkably increased and, at the same time, intracellular monovalent ion concentrations significantly decreased with glucose transport. Net gain of glucose within the cell was estimated from the restraint of osmotic balance between intracellular and extracellular fluids. In contrast to the apparent decreases in intracellular Na+ and K+ concentrations, significant gains of Na+ and K+ occurred with glucose transport. The quantitative relationships among net gains of Na+, K+ and glucose during active glucose transport suggest that the coupling ratio between glucose and Na+ entry by the carrier mechanism on the mucosal membrane is approximately 1:1 and the coupling ratio between Na+-efflux and K+-influx of the serosal electrogenic sodium pump is approximately 4:3 in rat small intestine. In addition to the electrogenic ternary complex inflow across the mucosal cell membrane, the decreases in intracellular monovalent ion concentrations, the temporary formation of an osmotic pressure gradient across the cell membrane and the streaming potential induced by water inflow through negatively charged pores of the cell membrane in the course of an active solute transport in intestinal epithelial cells are apparently all possible causes of mucosal membrane depolarization.  相似文献   

5.
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   

6.
《Developmental biology》1987,122(2):432-438
The fertilization potential of the Pseudocentrotus depressus egg involved three transiently depolarizing components which had a different time course and a peak value. Three peaks were at less than 10 sec, 43 ± 4 sec (mean ± SD), and 182 ± 22 sec after the onset of the fertilization potential. Their peak values (mean ± SD) were 37 ± 4, 17 ± 3, and −31 ± 5 mV in standard artificial sea water. The effect of external ions on the membrane potential at the peak of the second component was measured with a conventional voltage-recording microelectrode. The peak value changed 51 mV with a 10-fold change in external Na+ concentration. However, it was about 65 mV more negative than the equilibrium potential of Na+, assuming that the internal Na+ concentration was 13.5 mM. H+, Ca2+, Mg2+, and Cl did not contribute to the peak value. The peak value was sensitive to the external K+ concentration. These data fitted a theoretical line obtained from the Goldman-Hodgkin-Katz equation, using a ratio of PNa:PK:PCl = 1.1:1.0:0. This means that the permeability to both Na+ and K+ is responsible for the second component of the fertilization potential. The fertilization potential was also measured in the artificial sea water containing Li+ or Cs+. The egg at the second component of the fertilization potential was almost equally permeable to Li+ as well as Na+ or K+ and somewhat permeable to Cs+. By contrast, the resting membrane potential before fertilization depended to a large extent upon K+ permeability.  相似文献   

7.
Summary A simple numerical model for theNecturus gallbladder epithelium is presented. K+, Na+ and Cl cross the mucosal and serosal membranes as well as the junctions by means of electrodiffusion; furthermore the mucosal membrane contains a neutral entry mechanism for NaCl and the serosal membrane contains an active pump for K+ and Na+. The values which have been used for the model are taken from the literature. The model can only attain steady states if the resistance of the serosal membrane is lower than 1000 cm2. Values reported in the literature for the resistance of this membrane vary from about 3000 to about 100 cm2. We shall argue, however, that the higher estimates are in error because they are derived from a model of the tissue in which each membrane and the junction are modeled by a resistor; this procedure is invalid because the resistance of the lateral intercellular space relative to the resistance of the tight junctions is neglected and consequently the resistance of the serosal membrane is overestimated by a factor of about four. Apart from predicting a realistic steady state at normal external concentrations the model can predict quantitatively several experimental results obtained from the living epithelium. We have focused on the experiments which test the permeabilities of the serosal membrane and the properties of the pump:i) Replacement of serosal Cl by an impermeant ion.ii) Replacement of serosal K+ by Na+.iii) Inhibiting the (Na+, K+)-pump. The best correspondence between model and experiments is obtained when the pump is assumed to be electrogenic (or rheogenic) with a ratio of coupling between Na+ and K+ of 32. In this case both model and direct experiments (also presented in this paper) show an initial abrupt depolarization of 6 to 7 mV. The model also shows that it cannot be concluded fromi andii that the Cl permeability of the serosal membrane is low. The model explains, even with high passive Cl permeabilities, why the intracellular Cl concentration is relatively unaffected by paracellular currents, a fact which in other epithelia has been taken as an implication of a low Cl permeability of the serosal membranes.  相似文献   

8.
Members of the eukaryotic PIEZO family (the human orthologs are noted hPIEZO1 and hPIEZO2) form cation-selective mechanically-gated channels. We characterized the selectivity of human PIEZO1 (hPIEZO1) for alkali ions: K+, Na+, Cs+ and Li+; organic cations: TMA and TEA, and divalents: Ba2+, Ca2+, Mg2+ and Mn2+. All monovalent ions permeated the channel. At a membrane potential of -100 mV, Cs+, Na+ and K+ had chord conductances in the range of 35–55 pS with the exception of Li+, which had a significantly lower conductance of ~ 23 pS. The divalents decreased the single-channel permeability of K+, presumably because the divalents permeated slowly and occupied the open channel for a significant fraction of the time. In cell-attached mode, 90 mM extracellular divalents had a conductance for inward currents carried by the divalents of: 25 pS for Ba2+ and 15 pS for Ca2+ at -80 mV and 10 pS for Mg2+ at -50 mV. The organic cations, TMA and TEA, permeated slowly and attenuated K+ currents much like the divalents. As expected, the channel K+ conductance increased with K+ concentration saturating at ~ 45 pS and the KD of K+ for the channel was 32 mM. Pure divalent ion currents were of lower amplitude than those with alkali ions and the channel opening rate was lower in the presence of divalents than in the presence of monovalents. Exposing cells to the actin disrupting reagent cytochalasin D increased the frequency of openings in cell-attached patches probably by reducing mechanoprotection.  相似文献   

9.
(1) The active transport of Na+ across the turtle bladder epithelial cell layer consists of a passive entry step through a Na+-selective path in the apical membrane and an active extrusion step through Na+ pump-containing path in the basal-lateral membrane together with some back-leakage through the paracellular spaces and tight junctions between the epithelial cells. This hypothesis has now been verified qualitatively and to some extent, quantitatively by the use of an intracellularly-located microelectrode in conjunction with a conventional assembly of extracellularly-located macroelectrodes mainly in short-circuited bladders bathed by Na+-rich Ringer media. Under these conditions, the intracellular potential (Vsc) averaged 38.4 mV with the cell electronegative; the fractional resistance of the apical membrane (?Ra) averaged 0.55; while the concomitant transepithelial parameters, short circuiting current (Isc) and electrical conductance (Gt), average 68.6 μA/cm2 and 0.98 mS/cm2, respectively. (2) The relation between these parameters and the transepithelial flow of Na+ (orIsc) is evoked by blocking Na+ entry into the cell (by the mucosal addition of amiloride or removal of mucosal Na+). Amiloride-induced blockade of the Na+ entry step results in a rapid hyperpolarization of the cell interior during which Vsc = —79.1 mV and ?Ra = 0.92. Isc and Gt (equivalent to the shunt conductance under these conditions) averaged 5 μA/cm2 and 0.35 mS/cm2, respectively. The entire process is reversible on re-admission of Na+ entry into the cell. (3) A slow depolarization of the cell interior in the period of blocked transapical Na+ entry is opposite to that expected from an electroneutral Na+-K+ exchanging pump; but instead is the predictable response of an electrogenic Na+ pump in parallel with a passive K+-selective conductance in the basal-lateral membrane. (4) The electrogenicity concept is substantiated after pretreatment of the bladder with serosal ouabain, which changes the response of Vsc to amiloride (from the aforementioned biphasic response) to a step-function response, attributable mainly to the development of a slowly dissipating K+ diffusion potential across the basallateral membrane. (5) Under open-circuit conditions, the electronegativity of cell to mucosa (Va) is a linear inverse function of the electropositivity of serosa to mucosa (Vt). For Vt ? 100 mV, Va is positive; and for Vt between ?30 and 90 mV, Va is negative.  相似文献   

10.
The ability of acid-sensing ion channels (ASICs) to discriminate among cations was assessed based on changes in conductance and reversal potential with ion substitution. Human ASIC1a was expressed in Xenopus laevis oocytes, and acid-induced currents were measured using two-electrode voltage clamp. Replacement of extracellular Na+ with Li+, K+, Rb+, or Cs+ altered inward conductance and shifted the reversal potentials consistent with a selectivity sequence of Li ∼ Na > K > Rb > Cs. Permeability decreased more rapidly than conductance as a function of atomic size, with PK/PNa = 0.1 and GK/GNa = 0.7 and PRb/PNa = 0.03 and GRb/GNa = 0.3. Stimulation of Cl currents when Na+ was replaced with Ca2+, Sr2+, or Ba2+ indicated a finite permeability to divalent cations. Inward conductance increased with extracellular Na+ in a hyperbolic manner, consistent with an apparent affinity (Km) for Na+ conduction of 25 mM. Nitrogen-containing cations, including NH4+, NH3OH+, and guanidinium, were also permeant. In addition to passing through the channels, guanidinium blocked Na+ currents, implying competition for a site within the pore. The role of negative charges in an external vestibule of the pore was evaluated using the point mutation D434N. The mutant channel had a decreased single-channel conductance, measured in excised outside-out patches, and a macroscopic slope conductance that increased with hyperpolarization. It had a weakened interaction with Na+ (Km = 72 mM) and a selectivity that was shifted toward larger atomic sizes. We conclude that the selectivity of ASIC1 is based at least in part on interactions with binding sites both within and internal to the outer vestibule.  相似文献   

11.
Summary The presence and regional localization of voltagegated ion channels on taste cells inNecturus maculosus were studied. Lingual epithelium was dissected from the animal and placed in a modified Ussing chamber such that individual taste cells could be impaled with intracellular microelectrodes and the chemical environment of the apical and basolateral membranes of cells could be strictly controlled. That is, solutions bathing the the mucosal and serosal surfaces of the epithelium could be exchanged independently and the effects of pharmacological agents could be tested selectively on the apical or basolateral membranes of taste cells. In the presence of amphibian physiological saline, action potentials were elicited by passing brief depolarizing current pulses through the recording electrode. Action potentials provided a convenient assay of voltage-gated ion channels. As in other excitable tissues, blocking current through Na+, K+, or Ca2+ channels had predictable and consistent effects on the shape and magnitude of the action potential. A series of experiments was conducted in which the shape and duration of regenerative action potentials were monitored when the ionic composition was altered and/or pharmacological blocking agents were added to the mucosal or to the serosal chamber. We have found the following: (1) voltage-gated K+ channels (delayed rectifier) are found predominately, if not exclusively, on the chemoreceptive apical membrane; (ii) voltage-gated Na+ and Ca2+ channels are found on the apical (chemoreceptive) and basolateral (synaptic) membrane; (iii) there is a K+ leak channel on the basolateral membrane which appears to vary seasonally in its sensitivity to TEA. The nonuniform distribution of voltage-gated K+ channels and their predominance on the apical membrane may be important in taste transduction: alterations in apical K+ conductance may underlie receptor potentials ellicted by rapid stimuli.  相似文献   

12.
Summary The transepithelial fluxes, conductances and permeabilities of Li+, Na+, K+, Cs+, NH 4 + and H3CNH 3 + were studied under ionic concentrations ranging from 12 to 250mm inBufo arenarum gallbladders. When these measurements are carefully corrected in order to get only the component due to the paracellular cation channels, the following results are obtained: (1) The permeability ratios (cationic/anionic) are a decreasing function of salt concentration. (2) The partial conductances through paracellular cationic channels show nonlinear saturable concentration kinetics. (3) Moreover, partial conductance kinetics of K+, Cs+ and NH 4 + present a maximum followed, at higher concentratons, by a negative-slope region. (4) The selectivity sequences obtained from biionic potentials do not agree with those obtained from partial conductance measurements. (5) The unidirectional22Na tracer flux (serosal to mucosal) is inhibited by 63% when the K+ symmetrical concentration in the bathing solutions is raised from 25 to 200mm. (6) When the unidirectional42K fluxes (serosal to mucosal) at 200mm KCl Na-free solutions are compared with K+ partial conductance by means of the Hodgkin and Keynes (Hodgkin, A.L., Keynes, R.D. 1955.J. Physiol London 128:61–88) expression, then factor is 2.0. These results indicate that cations do not follow the independence principle and behave as in single-file diffusion multi-ion pores when crossing the paracellular cation channels ofBufo arenarum gallbladder epithelium.  相似文献   

13.
The addition of LiCl stimulated the (Na++K+)-dependent ATPase activity of a rat brain enzyme preparation. Stimulation was greatest in high Na+/low K+ media and at low Mg. ATP concentrations. Apparent affinities for Li+ were estimated at the α-sites (moderate-affinity sites for K+ demonstrable in terms of activation of the associated K+-dependent phosphatase reaction), at the β-sites (high-affinity sites for K+ demonstrable in terms of activation of the overall ATPase reaction), and at the Na+ sites for activation. The relative efficacy of Li+ was estimated in terms of the apparent maximal velocity of the phosphatase and ATPase reactions when Li+ was substituted for K+, and also in terms of the relative effect of Li+ on the apparent KM for Mg· ATP. With these data, and previously determined values for the apparent affinities of K+ and Na+ at these same sites, quantitative kinetic models for the stimulation were examined. A composite model is required in which Li+ stimulates by relieving inhibition due to K+ and Na+ (i) by competing with K+ for the α-sites on the enzyme through which K+ decreases the apparent affinity for Mg·ATP and (ii) by competing with Na+ at low-affinity inhibitory sites, which may represent the external sites at which Na+ is discharged by the membrane NA+/K+ pump that this enzyme represents. Both these sites of action for Li+ would thus lie, in vivo, on the cell exterior.  相似文献   

14.
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   

15.
Summary The reaction of abdominal skins of the frog speciesRana temporaria on mucosal K+-containing solutions was studied in an Ussing-type chamber by recording transepithelial potential difference (PD), short-circuit current (SCC) and conductance (G). With Na-Ringer's as serosal medium, a linear correlation between PD and the logarithm of the mucosal K+-concentration ([K] o ) was obtained. The K+-dependent SCC saturated with increasing [K] o , and could quickly and reversibly be depressed by addition of Rb+, Cs+, and H+, Li+, Na+, and NH 4 + did not influence K+ current. A large scatter was obtained for kinetic parameters like the slope of the PD-log [K] o -line (18–36.5 mV/decade), the apparent Michaelis constant (13–200mm), and the maximal current of the saturable SCC (6–50 A·cm–2), as well as for the degree of inhibition by Cs+ ions. This seemed to be caused by a time-dependent change during long time exposure to high [K] o (more than 30 sec), thereby inducing a selectivity loss of K+-transporting structures, together with an increase in SCC andG and a decrease in PD. Short time exposure to K+-containing solutions showed a competitive inhibition of K+ current by Cs+ ions, and a Michaelis constant of 6.6mm for the inhibitory action of Cs+. Proton titration resulted in a decrease of K+ current at pH<3. An acidic membrane component (apparent dissociation constant 2.5×10–3 m) is virtually controlling K+ transfer. Reducing the transepithelial K+-concentration gradient by raising the serosal potassium concentration was accompanied by the disappearance of SCC and PD.  相似文献   

16.
In leech P neurons the inhibition of the Na+-K+ pump by ouabain or omission of bath K+ leaves the membrane potential unaffected for a prolonged period or even induces a marked membrane hyperpolarization, although the concentration gradients for K+ and Na+ are attenuated substantially. As shown previously, this stabilization of the membrane potential is caused by an increase in the K+ conductance of the plasma membrane, which compensates for the reduction of the K+ gradient. The data presented here strongly suggest that the increased K+ conductance is due to Na+-activated K+ (KNa) channels. Specifically, an increase in the cytosolic Na+ concentration ([Na+]i) was paralleled by a membrane hyperpolarization, a decrease in the input resistance (Rin) of the cells, and by the occurrence of an outwardly directed membrane current. The relationship between Rin and [Na+]i followed a simple model in which the Rin decrease was attributed to K+ channels that are activated by the binding of three Na+ ions, with half-maximal activation at [Na+]i between 45 and 70 mM. At maximum channel activation, Rin was reduced by more than 90%, suggesting a significant contribution of the KNa channels to the physiological functioning of the cells, although evidence for such a contribution is still lacking. Injection experiments showed that the KNa channels in leech P neurons are also activated by Li+.  相似文献   

17.
A Na+-specific and Na+-stimulated active α-aminoisobutyric acid transport system was reconstituted from plasma membranes isolated from mouse fibroblast BALB/c 3T3 cells transformed by simian virus 40. The plasma membranes were treated with dimethylmaleic anhydride and then extracted with 2% cholate. The cholate-solubilized supernatant proteins were combined with exogenous phospholipids and eluted through a Sephadex G-50 column. This yielded reconstituted vesicles which in the presence of Na+ could actively transport α-aminoisobutyric acid as shown by the transient accumulation above the equilibrium level (overshoot). The overshoot was not obtained with other monovalent cations such as K+, Li+, and choline+. The electrochemical effect of the lipophilic anion, SCN?, led to greater α-aminoisobutyric acid uptake as compared to that observed with Cl? or SO42?. The Na+-stimulated transport of a-aminoisobutyric acid was a saturable process with an apparent Km of 2 mm. Studies of the inhibition of α-aminoisobutyric acid transport by other amino acids showed that methylaminoisobutyric acid [specifically transported by A system (alanine preferring)]had a pronounced inhibitory effect on a-aminoisobutyric acid uptake in contrast to the slight inhibitory effect produced by phenylalanine [primarily transported by L system (leucine preferring)]. The results show that the reconstituted vesicles, prepared from partially purified membrane proteins and exogenous phospholipids, regained the same important transport properties of native membrane vesicles, i.e., Na+-specific and Na+-stimulated concentrative α-aminoisobutyric acid uptake.  相似文献   

18.
The Cl/HCO 3 exchange mechanism usually postulated to occur in gastric mucosa cannot account for the Na+-dependent electrogenic serosal to mucosal Cl transport often observed. It was recently suggested that an additional Cl transport mechanism driven by the Na+ electrochemical potential gradient may be present on the serosal side of the tissue. To verify this, we have studied Cl transport in guinea pig gastric mucosa. Inhibiting the (Na+, K+) ATPase either by serosal addition of ouabain or by establishing K+-free mucosal and serosal conditions abolished net Cl transport. Depolarizing the cell membrane potential with triphenylmethylphosphonium (a lipid-soluble cation), and hence reducing both the Na+ and Cl electrochemical potential gradients, resulted in inhibition of net Cl flux. Reduction of short-circuit current on replacing Na+ by choline in the serosal bathing solution was shown to be due to inhibition of Cl transport. Serosal addition of diisothiocyanodisulfonic acid stilbene (an inhibitor of anion transport systems) abolished net Cl flux but not net Na+ flux. These results are compatible with the proposed model of a Cl/Na+ cotransport mechanism governing serosal Cl entry into the secreting cells. We suggest that the same mechanism may well facilitate both coupled Cl/Na+ entry and coupled HCO 3 /Na+ exit on the serosal side of the tissue.  相似文献   

19.
Internal Cs+, Na+, Li+, and, to a lesser degree, Rb+ interfere with outward current through the K pores in voltage clamped squid axons. Addition of 100 mM NaF to the perfusion medium cuts outward current for large depolarizations about in half, and causes negative conductance over a range of membrane voltages. For example, suddenly reducing membrane potential from +100 to +60 mv increases the magnitude of the outward current. Internal Cs+ and, to a small extent, Li+, also cause negative conductance. Na+ ions permeate at least 17 times less well through the K pores than K+, and Cs+ does not permeate measurably. The results strongly suggest that K pores have a wide and not very selective inner mouth, which accepts K+, Na+, Li+, Cs+, tetraethylammonium ion (TEA+), and other ions. The diameter of the mouth must be at least 8 A, which is the diameter of a TEA+ ion. K+ ions in the mouths probably have full hydration shells. The remainder of the pore is postulated to be 2.6–3.0 A in diameter, large enough for K+ and Rb+ but too small for Cs+ and TEA+. We postulate that Na+ ions do not enter the narrower part of the pore because they are too small to fit well in the coordination cages provided by the pore as replacements for the water molecules surrounding an ion.  相似文献   

20.
In the presence of an iso-osmotic concentration (0.4 M) of LiCl, the exit of cellular K+ and concomitant entry of Li+ in the marine bacterium, Vibrio alginolyticus, were enhanced by an increase in the medium pH, with an optimum at about pH 9.6. In addition to alkaline pH, the K+ exit in the NaCl medium required the presence of a weak base such as diethanolamine, ethanolamine or methylamine, which is permeable to the membrane in its unprotonated form. No net entry of Na+ was detected in this case and the amine accumulated in exchange for K+. The K+ exit observed at alkaline pH could be explained by the function of a K+/H+ antiporter. Once the cells were loaded with the amine, their exposure to the NaCl medium in the absence of loaded amine induced the entry of Na+. In RbCl or CsCl medium, fast entry of Rb+ or Cs+ and exit of K+ were observed at neutral pH (7.5), and the rate of K+ exit increased with the medium pH. From these results, we established a simple method for the replcement of cellular cations with a desired cation (Li+, Na+, K+, Rb+ or Cs+). The present method was found to be applicable also to Escherichia coli.  相似文献   

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