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1.
Summary Unidirectional 22Na+ and 36Cl fluxes were determined in short-circuited, stripped rumen mucosa from sheep by using the Ussing chamber technique. In both CO2/HCO 3 -containing and CO2/HCO 3 -free solutions, replacement of gluconate by short-chain fatty acids (SCFA, 39 mM) significantly enhanced mucosal-toserosal Na+ absorption without affecting the Cl transport in the same direction. Short-chain fatty acid stimulation of Na+ transport was at least partly independent of Cl and could almost completely be abolished by 1 mM mucosal amiloride, while stimulation of Na+ transport was enhanced by lowering the mucosal pH from 7.3 to 6.5. Similar to the SCFA action, raising the PCO2 in the mucosal bathing solution led to an increase in the amiloride-sensitive mucosal-to-serosal Na+ flux. Along with its effect on sodium transport, raising the PCO2 also stimulated chloride transport. The results are best explained by a model in which undissociated SCFA and/or CO2 permeate the cell membrane and produce a raise in intracellular H+ concentration. This stimulates an apical Na+/H+ exchange, leading to increased Na+ transport. The stimulatory effect of CO2 on Cl transport is probably mediated by a Cl/HCO 3 exchange mechanism in the apical membrane. Binding of SCFA anions to that exchange as described for the rat distal colon (Binder and Mehta 1989) probably does not play a major role in the rumen.Abbreviations DIDS 4,4'-diisothiocyanatostilbene-2,2'-disulfonic acid - G t transepithelial conductance (mS·cm-2) - HSCFA undissociated short-chain fatty acids - J ms mucosal-to-serosal flux (Eq · cm-2 · h-1) - J net net flux (Eq · cm-2 · h-1) - J sm serosal-to-mucosal flux (Eq · cm-2 · h-1) - PD transepithelial potential difference (mV) - SCFA dissociated short-chain fatty acids - SCFA short-chain fatty acids  相似文献   

2.
Summary Bicarbonate presence in the bathing media doubles Na+ and fluid transepithelial transport and in parallel significantly increases Na+ and Cl intracellular concentrations and contents, decreases K+ cell concentration without changing its amount, and causes a large cell swelling. Na+ and Cl lumen-to-cell influxes are significantly enhanced, Na+ more so than Cl. The stimulation does not raise any immediate change in luminal membrane potential and cannot be due to a HCO 3 -ATPase in the brush border. The stimulation goes together with a large increase in a Na+-dependent H+ secretion into the lumen. All of these data suggests that HCO 3 both activates Na+–Cl cotransport and H+–Na+ countertransport at the luminal barrier.Thiocyanate inhibits Na+ and fluid transepithelial transport without affecting H+ secretion and HCO 3 -dependent Na+ influx. It reduces Na+ and Cl concentrations and contents, increases the same parameters for K+, causes a cell shrinking, and abolishes the lumen-to-cell Cl influx. It enters the cell and is accumulated in the cytoplasm with a process which is Na+-dependent and HCO 3 -activated. Thus, SCN is likely to compete for the Cl site on the cotransport carrier and to be slowly transferred by the cotransport system itself.  相似文献   

3.
Gallbladder Na+ absorption is linked to gallstone formation in prairie dogs. Na+/H+ exchange (NHE) is one of the major Na+ absorptive pathways in gallbladder. In this study, we measured gallbladder Na+/H+ exchange and characterized the NHE isoforms expressed in prairie dogs. Na+/H+ exchange activity was assessed by measuring amiloride-inhibitable transepithelial Na+ flux and apical 22Na+ uptake using dimethylamiloride (DMA). HOE-694 was used to determine NHE2 and NHE3 contributions. Basal J Na ms was higher than J Na sm with J Na net absorption. Mucosal DMA inhibited transepithelial Na+ flux in a dose-dependent fashion, causing J Na ms equal to J Na sm and blocking J Na net absorption at 100 μm. Basal 22Na+ uptake rate was 10.9 ± 1.0 μmol · cm−2· hr−1 which was inhibited by ∼43% by mucosal DMA and ∼30% by mucosal HOE-694 at 100 μm. RT-PCR and Northern blot analysis demonstrated expression of mRNAs encoding NHE1, NHE2 and NHE3 in the gallbladder. Expression of NHE1, NHE2 and NHE3 polypeptides was confirmed using isoform-specific anti-NHE antibodies. These data suggest that Na+/H+ exchange accounts for a substantial fraction of gallbladder apical Na+ entry and most of net Na+ absorption in prairie dogs. The NHE2 and NHE3 isoforms, but not NHE1, are involved in gallbladder apical Na+ uptake and transepithelial Na+ absorption. Received: 9 February 2001/Revised: 11 April 2001  相似文献   

4.
Summary Although it is generally believed thatChara and some fresh-water angiosperms transport bicarbonate ions inwards across their plasma membranes, there has been no direct demonstration of such transport in these plants. The (indirect) arguments for their transporting HCO 3 are arguments against the inward diffusion of CO2 at the observed rates. They rest on calculations of the equilibrium concentration of CO2 or of the maximum rate at which CO2 might be produced from HCO 3 at the pH of the medium outside the cells. SinceChara acidifies the medium over about half the cell surface during C assimilation, these calculations have been based on questionable premises.We propose a model forChara in which the acidification is attributed to active efflux of H+, and we calculate that both the equilibrium concentration of CO2 and its rate of production outside the cell can be high enough to support the observed rates of C assimilation, without postulating transport of the species HCO 3 or H2CO3.Calculations are presented also for alternative models in which there is membrane transport of HCO 3 . The first includes symport of H+ with HCO 3 , again dependent on active H+ efflux. In the second, there is active electrogenic transport of HCO 3 . In this case the low pH in the medium outside the cell is caused by the dissociation of H2CO3 produced by hydration of CO2 which leaks from the cell cytoplasm.All three models are consistent with the observations to date, but the first is more economical of postulates. It can also explain the apparent transport of HCO 3 by fresh-water angiosperms such asEgeria.  相似文献   

5.
Summary Proximal, stripped segments of small intestine from the urodeleAmphiuma were short-circuited in media containing Na+, Cl and HCO 3 . Under these conditions there was a large net absorption of Cl, a small net absorption of Na+ and a residual flux (J Net R ) consistent with HCO 3 secretion. Net Cl absorption correlated with the short-circuit current (I sc); net Na+ absorption correlated negatively withJ Net R . Acetazolamide eliminated theI sc, lowered Cl absorption by 50%, and reduced net Na+ absorption without alteringJ Net R . Benzolamide inhibited theI sc without alteringJ Net R . Benzolamide inhibited theI sc more rapidly when applied on the mucosal surface. Replacement of Na+ or HCO 3 (and CO2) in the media eliminated theI sc, net Cl absorption and the residual flux. Likewise, inclusion of the stilbene SITS in the serosal media eliminated theI sc, net Cl absorption and the residual flux. The cytoplasmic activity of Cl (a ci a ) was determined with single and double-barreled microelectrodes. Thea ci a of villus absorptive cells in normal media was 21.0mm and in excess of that expected on the basis of electrochemical equilibrium of Cl at the mucosal membrane. Active Cl accumulation was also observed in the presence of acetazolamide but was eliminated upon replacement of media Na+ with choline. The mucosal membrane potential was depolarized upon replacement of media Na+. It is concluded that Cl is actively absorbed into intestinal cells ofAmphiuma by an electrogenic process located in the mucosal membrane. Depending on the level of intracellular HCO 3 , accumulated Cl may diffuse passively back into the mucosal media or undergo exchange with bath HCO 3 at the serosal membrane.  相似文献   

6.
Simultaneous net uptake of Na+ and net extrusion of H+, both inhibited by amiloride, could be stimulated in red blood cells of the frog, Rana temporaria, either by intracellular acidification or cellular shrinkage. Net transports of Na+ and H+ were transient, dying out after 10–20 min (20°C) when stimulated by intracellular acidification but developing more slowly and proceeding for more than 60 min (20°C) when stimulated by cellular shrinkage. Evidence is presented suggesting a coupling between the transports of Na+ and H+ with an exchange ratio of 1:1 Na+/H+ exchange, stimulated by intracellular acidification, was able to readjust intracellular pH also when operating in parallel to a fully working anion exchanger in CO2/HCO 3 - -buffered media. Inhibition of anion exchange resulted in reduced cellular net uptake of Na+.Abbreviations DIDS 4,4-diisothiocyanatostilbene-2,2-disulphonate - DMSO dimethylsulphoxide - IU international unit - pH e extracellular pH - pH i intracellular pH - RBC red blood cell  相似文献   

7.
Summary The rate of luminal alkalinization in vitro byGillichthys mirabilis posterior intestine as measured by a manual pH stat technique was 0.70±0.05 Equiv/cm2 h; acidification of the mucosal medium was never observed. The rate of HCO 3 secretion (J HCO 3) was reduced by ouabain, serosally-applied DIDS, removal of serosal HCO 3 and replacement of media Cl with gluconate. HCO 3 secretion was enhanced replacement of Cl with isethionate and unaffected by mucosal DIDS, furosemide or acetazolamide.J HCO 3 was reduced at mucosal pH above or below 7.5. These results support active HCO 3 secretion via a Cl/HCO 3 exchange mechanism on the basolateral membrane and a conductive exit pathway for HCO 3 , H+ or OH on the apical membrane.Abbreviations DIDS diisothiocyanostilbene-2,2-disulfonic acid - TEP transepithelial potential - GBR Gillichthyts bicarbonate Ringer - GUR Gillichthys unbuffered, bicarbonate-free Ringer - GER Gillichthys EPPS-buffered, bicarbonate-free Ringer - EPPS N-(2-hydroxyethyl)piperazine-N-3-propanesulfonic acid  相似文献   

8.
pH i recovery in acid-loaded Ehrlich ascites tumor cells and pH i maintenance at steady-state were studied using the fluorescent probe BCECF.Both in nominally HCO 3 -free media and at 25 mm HCO 3 , the measured pH i (7.26 and 7.82, respectively) was significantly more alkaline than the pH i . value calculated assuming the transmembrane HCO 3 gradient to be equal to the Cl gradient. Thus, pH i in these cells is not determined by the Cl gradient and by Cl/HCO 3 exchange.pH i recovery following acid loading by propionate exposure, NH 4 + withdrawal, or CO2 exposure is mediated by amiloride-sensitive Na+/H+ exchange in HCO3 free media, and in the presence of HCO 3 (25 mm) by DIDS-sensitive, Na+-dependent Cl/HCO 3 exchange. A significant residual pH i recovery in the presence of both amiloride and DIDS suggests an additional role for a primary active H+ pump in pH i regulation. pH i maintenance at steady-state involves both Na+/H+ exchange and Na+-dependent Cl/HCO 3 exchange.Acute removal of external Cl induces a DIDS-sensitive, Na+-dependent alkalinization, taken to represent HCO 3 influx in exchange for cellular Cl. Measurements of 36Cl efflux into Cl-free gluconate media with and without Na+ and/or HCO 3 (10 mm) directly demonstrate a DIDS-sensitive, Na+ dependent Cl/HCO 3 exchange operating at slightly acidic pH i (pHo 6.8), and a DIDS-sensitive, Na+-independent Cl/HCO 3 exchange operating at alkaline pH i (pH o 8.2).The excellent technical assistance of Marianne Schiødt and Birgit B. Jørgensen is gratefully acknowledged. The work was supported by the Carlsberg Foundation (B.K.) and by a grant from the Danish Natural Science Foundation (E.K.H. and L.O.S.).  相似文献   

9.
This study examines the effects of acute in vitro acid-base disorders on Na+/H+ and H+-ATPase transporters in rabbit kidney proximal tubules (PT). PT suspensions were incubated in solutions with varying acid base conditions for 45 min and utilized for brush border membrane (BBM) vesicles preparation. BBM vesicles were studied for Na+/H+ exchange activity (assayed by 22Na+ influx) or abundance (using NHE-3 specific antibody) and H+-ATPase transporter abundance (using antibody against the 31 kDa subunit). The Na+/ H+ exchanger activity increased by 55% in metabolic acidosis (pH 6.5, HCO 3 3 mm) and decreased by 41% in metabolic alkalosis (pH 8.0, HCO 3 90 mm). The abundance of NHE-3 remained constant in acidic, control, and alkalotic groups. H+-ATPase abundance, however, decreased in metabolic acidosis and increased in metabolic alkalosis by 57% and 42%, respectively. In PT suspensions incubated in isohydric conditions (pH 7.4), Na+/H+ exchanger activity increased by 29% in high HCO 3 group (HCO 3 96 mm) and decreased by 16% in the low HCO 3 groups (HCO 3 7mm. The NHE-3 abundance remained constant in high, normal, and low [HCO 3 ] tubules. The abundance of H+-ATPase, however, increased by 82% in high [HCO 3 ] and decreased by 77% in the low [HCO 3 ] tubules. In PT suspensions incubated in varying pCO2 and constant [HCO 3 ], Na+/H+ exchanger activity increased by 35% in high pCO2 (20% pCO2, respiratory acidosis) and decreased by 32% in low pCO2 (1.5% pCO2, respiratory alkalosis) tubules. The NHE-3 abundance remained unchanged in high, normal, and low pCO2 tubules. However, the H+-ATPase abundance increased by 74% in high pCO2 and decreased by 69% in low pCO2 tubules.The results of these studies suggest that the luminal Na+/H+ exchanger is predominantly regulated by pH whereas H+-ATPase is mainly regulated by [HCO 3 ] and/ or pCO2. They further suggest that the adaptive changes in H+-ATPase transporter are likely mediated via endocytic/exocytic pathway whereas the adaptive changes in Na+/H+ exchanger are via the nonendocytic/exocytic pathway.The excellent technical assistance of Yollanda J. Hattabaugh, Gwen L. Bizal, and L. Yang is greatly appreciated. Portions of these studies were presented at the annual meeting of the American Society of Nephrology, Boston, MA, November 1993, and published in abstract form (J.Am.Soc.Neph. 4:840A, 1993)These studies were supported by a Merit Review Grant from the Department of Veterans Affairs and a grant-in-aid from the American Heart Association (to M.S.), a Baxter Health Care Grant (to B.B.), and the National Institute of Health Grants DK 38510 (to E.B.C. and M.C.R.) and DK 42086 (to E.B.C.).  相似文献   

10.
Summary In rabbit gallbladder epithelium, a Na+/H+, Cl/HCO 3 double exchange and a Na+–Cl symport are both present, but experiments on intact tissue cannot resolve whether the two transport systems operate simultaneously. Thus, isolated apical plasma membrane vesicles were prepared. After preloading with Na+, injection into a sodium-free medium caused a stable intravesicular acidification (monitored with the acridine orange fluorescence quenching method) that was reversed by Na+ addition to the external solution. Although to a lesser extent, acidification took place also in experiments with an electric potential difference (PD) equal to 0. If a preset pH difference (pH) was imposed ([H+]in>[H+]out, PD=0), the addition of Na-gluconate to the external solution caused pH dissipation at a rate that followed saturation kinetics. Amiloride (10–4 m) reduced the pH dissipation rate. Taken together, these data indicate the presence of Na+ and H+ conductances in addition to an amiloride-sensitive, electroneutral Na+/H+ exchange.An inwardly directed [Cl] gradient (PD=0) did not induce intravesicular acidification. Therefore, in this preparation, there was no evidence for the presence of a Cl/OH exchange.When both [Na+] and [Cl] gradients (outwardly directed, PD=0) were present, fluorescence quenching reached a maximum 20–30 sec after vesicle injection and then quickly decreased. The decrease was not observed in the presence of a [Na+] gradient alone or the same [Na+] gradient with Cl at equal concentrations at both sides. Similarly, the decrease was abolished in the presence of both Na+ and Cl concentration gradients and hydrochlorothiazide (5×10–4 m). The decrease was not influenced by an inhibitor of Cl/OH exchange (10–4 m furosemide) or of Na+–K+–2Cl symport (10–5 m bumetanide).We conclude that a Na+/H+ exchange and a Na+–Cl symport are present and act simultaneously. This suggests that in intact tissue the Na+–Cl symport is also likely to work in parallel with the Na+/H+ exchange and does not represent an induced homeostatic reaction of the epithelium when Na+/H+ exchange is inhibited.  相似文献   

11.
Summary As the CO2 supply often limits photosynthesis a number of aquatic species use HCO 3 as carbon source as well. The use of HCO 3 leads to the production of one OH for every molecule/CO2 fixed. The OH is excreted into the medium. We studied the mechanism of HCO 3 utilization in the leaves ofElodea andPotamogeton. In the so-called polar leaves of these plants the HCO 3 uptake takes place at the lower and OH-release at the upper epidermis. This flux of negative charge is balanced by a kation flux in the same direction. The use of HCO 3 and the influx of kations is accompanied by a pH drop. The release of OH and kations at the upper epidermis causes a raise of the pH there. The pH changes and the kation concentrations (in the present experiments K+) are measured by means of miniature electrodes. From this the CO2 (including H2CO3), HCO 3 and CO 3 = concentrations were calculated. When the light is turned on, after a dark period, the pH increases simultaneously at both sides for 5–10 minutes. During this so-called a-polar phase there is no K+ transport through the leaf. Experiments at different ambient pH's and comparison with other aquatic species shows that this initial pH raise results from CO2 fixation. After 5–10 minutes the polar phase and HCO 3 utilization start. At the lower side the pH and [K+] drop, at the upper side pH and [K+] increase. During the a-polar phase [CO2] at the lower epidermis decreased, as expected. Whereas in the a-polar phase the CO2 concentration at this side very markedly increased. This sharp increase of [CO2] may be explained either by CO2 diffusion from the leaf cells previously taken up as HCO 3 or by a proton (H+) extrusion at the lower epidermis causing conversion of HCO 3 into CO2 in the cell wall. This latter mechanism is discussed in more detail.  相似文献   

12.
Summary Recent studies in hepatocytes indicate that Na+-coupled HCO 3 transport contributes importantly, to regulation of intracellular pH and membrane HCO 3 transport. However, the direction of net coupled Na+ and HCO 3 movement and the effect of HCO 3 on Na+ turnover and Na+/K+ pump activity are not known. In these studies, the effect of HCO 3 on Na+ influx and turnover were measured in primary rat hepatocyte cultures with22Na+, and [Na+] i was measured in single hepatocytes using the Na+-sensitive fluorochrome SBFI. Na+/K+ pump activity was measured in intact perfused rat liver and hepatocyte monolayers as Na+-dependent or ouabain-suppressible86Rb uptake, and was measured in single hepatocytes as the effect of transient pump inhibition by removal of extracellular K+ on membrane potential difference (PD) and [Na+] i . In hepatocyte monolayers, HCO 3 increased22Na+ entry and turnover rates by 50–65%, without measurably altering22Na+ pool size or cell volume, and HCO 3 also increased Na+/K+ pump activity by 70%. In single cells, exposure to HCO 3 produced an abrupt and sustained rise in [Na+] i , from 8 to 12mm. Na+/K+ pump activity assessed in single cells by PD excursions during transient K+ removal increased 2.5-fold in the presence of HCO 3 , and the rise in [Na+] i produced by inhibition of the Na+/K+ pump was similarly increased 2.5-fold in the presence of HCO 3 . In intact perfused rat liver, HCO 3 increased both Na+/K+ pump activity and O2 consumption. These findings indicate that, in hepatocytes, net coupled Na+ and HCO 3 movement is inward and represents a major determinant of Na+ influx and Na+/K+ pump activity. About half of hepatic Na+/K+ pump activity appears dedicated to recycling Na+ entering in conjunction with HCO 3 to maintain [Na+] i within the physiologic range.  相似文献   

13.
Ion and acid–base balance were examined in the freshwater-adapted mummichog (Fundulus heteroclitus) using a series of treatments designed to perturb the coupling mechanisms. Unidirectional Cl uptake (JClin) was extremely low whereas JNain was substantial (three- to sixfold higher); comparable differences occurred in unidirectional efflux rates (JClout, JNaout). JClin was refractory to all treatments, suggesting that Cl/base exchange was unimportant or absent. Indeed, no base excretion or modulation of ion fluxes occurred for acid–base balance for up to 8 h after NaHCO3 loading (injections of 1000 or 3000 nequiv.·g−1). Acute environmental low pH (4.5) and amiloride (10−4 M) treatments caused concurrent inhibition of JNain and net H+ excretion (JH+net), indicating the presence of Na+/H+ exchange. JNain was elevated and JH+net restored during recovery from both treatments, but this exchange did not appear to be dynamically adjusted for acid–base homeostasis. High external ammonia exposure (1 mmol·l−1) initially blocked ammonia excretion (JAmmnet) but had no effect on JNain, whereas high pH (9.4) reduced both JAmmnet and JNain. Inhibition of JNain by the low pH and amiloride treatments had no effect on JAmmnet. These results indicate that ammonia excretion is entirely diffusive and independent of both Na+uptake and the protons that are transported via the Na+/H+ coupling. In addition, ureagenesis served as a compensatory mechanism during high external ammonia exposure, as a marked elevation in urea excretion partially replaced the inhibited JAmmnet. In all treatments, changes in the Na+–Cl net flux differential were consistent with changes in JH+net measured by traditional water titration techniques, indicating that the former can be used as an estimate of the acid–base status of the fish. Overall, the results demonstrate that the freshwater-adapted F. heteroclitus does not conform to the ion/acid–base relationships described in the standard model based on commonly studied species such as trout, goldfish, and catfish.  相似文献   

14.
Summary Active HCO 3 t- secretion in the anterior rectal salt gland of the mosquito larva,Aedes dorsalis, is mediated by a 11 Cl/HCO 3 exchanger. The cellular mechanisms of HCO 3 and Cl transport are examined using ion- and voltage-sensitive microelectrodes in conjunction with a microperfused preparation which allowed rapid saline changes. Addition of DIDS or acetazolamide to, or removal of CO2 and HCO 3 from, the serosal bath caused large (20 to 50 mV) hyperpolarizations of apical membrane potential (V a) and had little effect on basolateral potential (V bl). Changes in luminal Cl concentration alteredV a in a repid, linear manner with a slope of 42.2 mV/decaloga Cl l –. Intracellular Cl activity was 23.5mm and was approximately 10mm lower than that predicted for a passive distribution across the apical membrane. Changes in serosal Cl concentration had no effect onV bl, indicating an electrically silent basolateral Cl exit step. Intracellular pH in anterior rectal cells was 7.67 and the calculated was 14.4mm. These results show that under control conditions HCO3 enters the anterior rectal cell by an active mechanism against an electrochemical gradient of 77.1 mV and exits the cell at the apical membrane down a favorable electrochemical gradient of 27.6 mV. A tentative cellular model is proposed in which Cl enters the apical membrane of the anterior rectal cells by passive, electrodiffusive movement through a Cl-selective channel, and HCO 3 exits the cell by an active or passive electrogenic transport mechanism. The electrically silent nature of basolateral Cl exit and HCO3 entry, and the effects of serosal addition of the Cl/HCO3 exchange inhibitor, DIDS, on and transepithelial potential (V ic) suggest strongly that the basolateral membrane is the site of a direct coupling between Cl and HCO 3 movements.  相似文献   

15.
Summary Intracellular pH (pHi) regulation was studied in crayfish neurons with pH-, and Na+-sensitive microelectrodes. It was confirmed to involve both a HCO 3 -dependent and a HCO 3 -independent mechanism. The latter was identified as the amiloride-sensitive Na+/H+ exchange described in vertebrate cells. Its dependence on extracellular pH (pHe) and Na+ concentration ([Na+]e) was studied in CO2-free external solutions at 20°C. The steady state pHi and the rate constant (k) of the exponential pHi recovery following an acid load were determined. At pHe=7.5 and [Na+]e=200 mM, the average steady state pHi was 7.09±0.12 (as compared to 7.30±0.10 in the presence of 5 mM bicarbonate). The dependence of the rate constant of recovery on [Na+]e could be described by Michaelis-Menten kinetics; at pHe=7.5 the apparentK m andK max were 39 mM and 1.4 mmol·l–1·min–1, respectively. Decreasing pHe reduced the rate of recovery, the variations ofk with pHe conforming to a simple titration curve with an apparent pK of 7.05±0.21. These kinetic properties of the Na+/H+ exchange in crayfish neurons are similar to those described in vertebrate cells.Preliminary results were presented at the First International Congress of Comparative Physiology and Biochemistry (Liège, Belgium, 1984)  相似文献   

16.
Summary Carbon dioxide excreted across fish gills is hydrated catalytically to form HCO 3 and H+ ions in water near the gill surface. We tested the possibility that CO2 excretion is functionally linked to ammonia excretion through chemical reactions in the gill-water boundary layer. A bloodperfused trout head preparation was utilized in which the convective and diffusive components of branchial gas transfer were controlled. Pre-incubation of blood perfusate with the carbonic anhydrase inhibitor, acetazolamide, reduced both carbon dioxide and ammonia excretion in the blood-perfused preparation. Increasing the buffering capacity of inspired ventilatory water significantly reduced ammonia excretion, but carbon dioxide excretion was unaffected. Each of these experimental treatments significantly reduced the acidification of ventilatory water flowing over the gills. It is proposed that the catalysed conversion of excreted CO2 to form HCO 3 and H+ ions provides a continual supply of H+ ions need for the removal of NH3 as NH 4 + . We suggest, therefore, that acidification of boundary layer water by CO2 enhances blood-to-water NH3 diffusion gradients and facilitates ammonia excretion.  相似文献   

17.
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   

18.
Summary The pH-stat technique has been used to measure H+ fluxes in gastric mucosa and urinary bladder in vitro while keeping mucosal pH constant. We now report application of this method in renal tubules. We perfused proximal tubules with double-barreled micropipettes, blocked luminal fluid columns with oil and used a double-barreled Sb/reference microelectrode to measure pH, and Sb or 1n HC1-filled microelectrodes to inject OH or H+ ions into the tubule lumen. By varying current injection, pH was kept constant at adjustable levels by an electronic clamping circuit. We could thus obtain ratios of current (nA) to pH change (apparent H+-ion conductance). These ratios were reduced after luminal 10–4 m acetazolamide, during injection of OH, but they increased during injection of H+. The point-like injection source causes pH to fall off with distance from the injecting electrode tip even in oil-blocked segments. Therefore, a method analogous to cable analysis was used to obtain H+ fluxes per cm2 epithelium. The relation betweenJ H + and pH gradient showed saturation kinetics of H fluxes, both during OH and H+ injection. This kinetic behavior is compatible with inhibition ofJ H by luminal H+. It is also compatible with dependence on Na+ and H+ gradients of a saturable Na/H exchanger. H+-ion back-flux into the tubule lumen also showed saturation kinetics. This suggests that H+ flow is mediated by a membrane component, most likely the Na+–H+ exchanger.  相似文献   

19.
Summary Activation of protein kinase C has been shown to cause both stimulation and inhibition of transport processes in the brush-border membrane and renal tubule. This study was designed to examine the dose-response nature and time-dependent effect of 4 -phorbol-12-myristate-13-acetate (PMA) on the rates of bicarbonate absorption (J HCO3) and fluid absorption (J v) in the proximal convoluted tubule (PCT) of rat kidney. Bicarbonate flux was determined by total CO2 changes between the collected fluid and the original perfusate as analyzed by microcalorimetry. Luminal perfusion of PMA (10–10 10–5 M) within 10 min caused a significant increase ofJ HCO3 andJ v. A peaked curve of the dose response was observed with maximal effect at 10–8 M PMA on both bicarbonate and fluid reabsorption, which could be blocked completely by amiloride (10–3 m) and EIPA (10–5 M). On the other hand, with an increase of perfusion time beyond 15 min, PMA (10–8 and 10–6 M) could inhibitJ HCO3 andJ v. Amiloride (10–3 M) or EIPA (10–5 M) significantly inhibitsJ HCO3 andJ v, while there is no additive effect of PMA and amiloride or EIPA on PCT transport. An inactive phorbol-ester, 4-phorbol, that does not activate protein kinase C, had no effects onJ HCO3 andJ v. Capillary perfusion of PMA (10–8 M) significantly stimulate bothJ HCO3 andJ v; however, PMA did not affect glucose transport from either the luminal side or basolateral side of the PCT. These results indicate that activation of endogenous protein kinase C by PMA could either stimulate or inhibit both bicarbonate and fluid reabsorption in the PCT dependent on time and dose, and these effects are through the modulation of Na+/H exchange mechanism.  相似文献   

20.
The ionic fluxes associated with the ATP-dependent acidification of endocytic vesicles were studied in a preparation isolated from rabbit reticulocytes enriched for transferrin-transferrin receptor complexes. No vesicle acidification was observed in the absence of intra- and extravesicular ions (sucrosein/sucroseout), while maximal acidification was observed with NaClin/KClout·K in + was a poor substitute for Na in + , and Cl out could be replaced by other anions with the following efficacy of acidification: Cl>Br>I>PO 4 3– >gluconate>SO 4 2– . Flux studies using36Cl and22Na+ showed that the vesicles had a permeability for Cl and Na+, and that ATP-dependent H+ pumping was accompanied by a net influx of Cl and a net efflux of Na+ provided that there was a Na+ concentration gradient. After 3 mins, the time necessary to maximal acidification, the electrical charge generated by the entrance of H+ was countered to about 45% by the Cl influx and to about 42% by the Na+ efflux. These studies demonstrated that both Cl and Na+ fluxes are necessary for optimal endocytic vesicle acidification.  相似文献   

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