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1.
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   

2.
To evaluate the role of the gill chloride cells in regulating metabolic alkalosis in rainbow trout (Oncorhynchus mykiss), the surface area of branchial chloride cells was altered experimentally using combined cortisol/ovine growth hormone injections. Long-term (10-day) treatment of fish with cortisol/ovine growth hormone caused an increase in the two-dimensional chloride cell fractional surface area when compared to uninjected fish (from 8.4 to 29.7%). This was the combined result of an increase in the size of individual cells (from 34.6 to 59.2 m2) and increased numbers of cells (from 2368 to 5006 cells · mm-2). Metabolic alkalosis was induced by intra-arterial infusion of 140 mmol · l-1 NaHCO3; control fish were infused with 140 mmol · l-1 NaCl. Blood pH and plasma [HCO3 -] increased in both the untreated and the cortisol/ovine growth hormone-treated fish. However, the increases in pH (from 8.05 to 8.53) and [HCO3 -] (from 5.9 to 22.2 mmol · l-1) in the untreated fish were significantly greater than in the cortisol/ovine growth hormone-treated fish (pH increased from 7.78 to 8.11; [HCO3 -] increased from 5.5 to 13.9 mmol · l-1). In all fish, NaHCO3 infusion elicited an increase in the rate of branchial basic equivalent excretion (acidic equivalent uptake) which, in turn, was caused by decreases and increases in branchial Na+ uptake and Cl- uptake, respectively. In the untreated fish, there was a pronounced increase (75%) in chloride cell surface area during NaHCO3 infusion. The attenuation of the metabolic alkalosis during HCO3 - infusion in the cortical/ovine growth hormone-treated fish was caused, at least in part, by an enhancement of branchial basic equivalent excretion. In these fish that already displayed a proliferation of chloride cells, there was no further increase in chloride cell surface area. The changes in Na+ influx and Cl- influx were quantitatively similar during NaHCO3 infusion in both groups. This suggests that the greater rate of base excretion in the cortisol/ovine growth hormone-treated fish was caused by a greater percentage of Cl- uptake being coupled to HCO3 - excretion and less to Cl- excretion (Cl- exchange diffusion).Abbreviations Amm total ammonia - bw body weight - CC chloride cell - CCFA chloride cell fractional area - cort/oGH cortisol/ovine growth hormone - dpm disintegrations per minute - J Amm net flux of total ammonia - J in unidirectional influx - J inCl- chloride ion uptake - J inNa+ sodium ion uptake - J netH+ net acidic equivalent flux - J TA net flux of titrable alkalinity - MS 222 ethyl-m-aminobenzoate - oGH ovine growth hormone - PVC pavement cell - SEM scanning electron microscope - TA titrable alkalinity  相似文献   

3.
Rainbow trout that were held under control conditions, at pH8·0, in moderately hard Hamilton tap water, had Cl? and Na+ influx rates (JCLin and JNa, respectively) of 270 and 300 μmol kg?1 h?1, respectively. Exposure to pH 9·5 water led to an immediate 67% decline in JCLin and a 45% reduction in JNain at 0–1 h. Influx rates declined further and by 4–5 h the net decreases in both JCLin and JNain approximated 80%. By 24 h JCLin had recovered to rates not significantly different from those at pH 8·0; while JNain only partially recovered and remained about 50% lower than control measurements through 72 h. The complete recovery of JCLin and partial recovery of JNain may have been related to a fourfold greater branchial chloride cell (CC) fractional surface area observed in rainbow trout exposed to pH 9·5 for 72 h. Ammonia excretion (JAmm) was about 170 μmol N kg?1 h?1 at pH 8·0 but was initially reduced by 90% over the first hour of high pH exposure. JAmm rapidly recovered and by 24 h it had returned to pre-exposure levels. This recovery tended to parallel the partial recovery of JNain. However, subsequent addition of amiloride (10?4M) to the water at 75 h led to no change in JAmm, despite a 50% reduction in JNain. Thus, it does not appear that there is a linkage between Na+ influx and the recovery of ammonia excretion under highly alkaline conditions.  相似文献   

4.
In order to study lethal and sublethal effects of ammonia to the estuarine crab Chasmagnathus granulata in the presence of an additional stress factor such as salinity, we determined the LC50 (96 h) of ammonia at 20‰ and in response to osmotic stress (5–40‰) and evaluated ammonia accumulation in the haemolymph of C. granulata and ammonia effects on osmo- and ion-regulation of this species through determinations of the haemolymph Na+, Ca2+, Cl and osmotic concentration. The LC50 values (96 h) of total ammonia (NH3+NH4+) were 10.10, 17.85 and 14.0 mM for crabs maintained at 5, 20 or 40‰ salinity, respectively, suggesting that this crab is fairly resistant to ammonia. The haemolymph ammonia concentration augmented with ambient ammonia during a 6-h exposure to sublethal ammonia concentrations which were not enough to reach equilibrium between external and haemolymph ammonia. At 20‰ salinity, following a 96-h exposure to sublethal concentrations, a significant decrease (P<0.05) of haemolymphatic chloride concentration was registered at 3.3 and 5.5 mM of total ammonia. At 40‰ salinity, a significant increase (P<0.05) of the haemolymph osmotic pressure was apparent at 5.5 mM total ammonia. We postulate that C. granulata gives priority to NH3 formation as a mechanism to eliminate it by simple diffusion. The differential Na+ and Cl regulation of crabs maintained at 20‰ salinity could modify the strong ion difference, augmenting pH, which in turn should lead the NH4+/NH3 equilibrium towards NH3.  相似文献   

5.
Rat gastric mucosa was shown to contain a Mg2+-dependent ATPase which is stimulated by HCO3 at pH 8–9.Triton X-100 solubilizes this HCO3-stimulated, Mg2+-dependent ATPase (ATP phosphohydrolase, EC 3.6.1.3).The gastric mucosa was resolved into five subcellular fractions by differential centrifugation. A large granule fraction (Fraction M), 28 000 g · min, was characterized by cytochrome c oxidase (marker enzyme for mitochondria). A microsomal fraction (Fraction P), 2 760 000 g · min, was characterized by 5′-nucleotidase(5′-ribonucleotide phosphohydrolase, EC 3.1.3.5) (plasma membrane).The Mg2+-dependent ATPase was demonstrated to have a bimodal mitochondrial membranous localization: 24% of its activity is associated with cytochrome c oxidase, and 75% with 5′-nucleotidase(5′-ribonucleotide phosphohydrolase, EC 3.1.3.5) at pH 8.The HCO3 addition resulted in two opposite effects: (1) a strong stimulation (84%) in Fraction M; (2) a slight inhibition (12%) in Fraction P.Fraction M was subfractionated by equilibration on a sucrose gradient. It gave rise to a homogeneous mitochondrial (d, 1.17–1.21) Mg2+-dependent ATPase, closely associated with cytochrome c oxidase. This ATPase is strongly stimulated (×2) by HCO3. The subfractionation of Fraction P gave rise to two distinct ATPases: (1) the major one is associated with membranous (d, 1.10–1.15) material marked by 5′-nucleotidase and is slightly inhibited by HCO3; (2) the other is associated with denser (d, 1.17–1.21) material and is stimulated by HCO3.The bicarbonate-stimulated fraction of the Mg2+-dependent ATPase activity found in the gastric microsomal fraction is assumed to arise from mitochondrial cross-contamination. Further support comes from the optimal HCO3 concentration. In addition, SCN is shown to specifically inhibit the ATPase of Fraction M.From these results it appears that the implication of HCO3-stimulated ATPase in the gastric secretion of H+ is not as clear as had been suggested. However, in the view of an ATPase-supported model for H+ secretion, attention can be directed towards the Mg2+-dependent ATPase found to be associated with microsomes.  相似文献   

6.
Pathways for HCO3 transport across the basolateral membrane were investigated using membrane vesicles isolated from rat renal cortex. The presence of Cl---HCO3 exchange was assessed directly by 36Cl tracer flux measurements and indirectly by determinants of acridine orange absorbance changes. Under 10% CO2/90% N2 the imposition of an outwardly directed HCO3 concentration gradient (pHo 6/pHi 7.5) stimulated Cl uptake compared to Cl uptake under 100% N2 in the presence of a pH gradient alone. Mediated exchange of Cl for HCO3 was suggested by the HCO3 gradient-induced concentrative accumulation of intravesicular Cl. Maneuvers designed to offset the development of ion-gradient-induced diffusion potentials had no significant effect on the magnitude of HCO3 gradient-driven Cl uptake further suggesting chemical as opposed to electrical Cl−HCO3 exchange coupling. Although basolateral membrane vesicle Cl uptake was observed to be voltage sensitive, the DIDS insensitivity of the Cl conductive pathway served to distinguish this mode of Cl translocation from HCO3 gradient-driven Cl uptake. No evidence for cotransport was obtained. As determined by acridine orange absorbance measurements in the presence of an imposed pH gradient (pHo 7.5/pHi 6), a HCO3 dependent increase in the rate of intravesicular alkalinization was observed in response to an outwardly directed Cl concentration gradient. The basolateral membrane vesicle origin of the observed Cl−HCO3 exchange activity was verified by experiments performed with purified brush-border membrane vesicles. In contrast to our previous observations of the effect of Cl on HCO3 gradient-driven Na+ uptake suggesting a basolateral membrane Na+−HCO3 for Cl exchange mechanism, no effect of Na+ on Cl−HCO3 exchange was observed in the present study.  相似文献   

7.
8.
C127 cell lines transfected with wtCFTR, ΔF508CFTR or vector were employed to determine HCO3 fluxes in the presence or absence of functional CFTR, using the pH-sensitive dye BCECF. Both cytosolic alkalinization and acidification were due to activity of anion exchanger and were similar in the three cell lines, indicating that expression of CFTR did not influence anion exchanger activity. In C127wt cells only, cAMP elevating agents significantly stimulated HCO3 fluxes, insensitive to the inhibitor of anion exchanger 4,4′-diisothiocyanate dihydrostilbene-2,2′-disulfonic acid, suggesting that activated CFTR directly mediates both HCO3 influx and efflux and therefore can contribute to intracellular and extracellular pH regulation.  相似文献   

9.
The plainfin midshipman (Porichthys notatus) possesses an aglomerular kidney and like other marine teleosts, secretes base into the intestine to aid water absorption. Each of these features could potentially influence acid–base regulation during respiratory acidosis either by facilitating or constraining HCO3 accumulation, respectively. Thus, in the present study, we evaluated the capacity of P. notatus to regulate blood acid–base status during exposure to increasing levels of hypercapnia (nominally 1–5% CO2). Fish exhibited a well-developed ability to increase plasma HCO3 levels with values of 39.8 ± 2.8 mmol l−1 being achieved at the most severe stage of hypercapnic exposure (arterial blood PCO2 = 21.9 ± 1.7 mmHg). Consequently, blood pH, while lowered by 0.15 units (pH = 7.63 ± 0.06) during the final step of hypercapnia, was regulated far above values predicted by chemical buffering (predicted pH = 7.0). The accumulation of plasma HCO3 during hypercapnia was associated with marked increases in branchial net acid excretion (J NETH+) owing exclusively to increases in the titratable alkalinity component; total ammonia excretion was actually reduced during hypercapnia. The increase in J NETH+ was accompanied by increases in branchial carbonic anhydrase (CA) enzymatic activity (2.8×) and CA protein levels (1.6×); branchial Na+/K+-ATPase activity was unaffected. Rectal fluids sampled from control fish contained on average HCO3 concentrations of 92.2 ± 4.8 mmol l−1. At the highest level of hypercapnia, rectal fluid HCO3 levels were increased significantly to 141.8 ± 7.4 mmol l−1 but returned to control levels during post-hypercapnia recovery (96.0 ± 13.2 mmol l−1). Thus, the impressive accumulation of plasma HCO3 to compensate for hypercapnic acidosis occurred against a backdrop of increasing intestinal HCO3 excretion. Based on in vitro measurements of intestinal base secretion in Ussing chambers, it would appear that P. notatus did not respond by minimizing base loss during hypercapnia; the increases in base flux across the intestinal epithelium in response to alterations in serosal HCO3 concentration were similar in preparations obtained from control or hypercapnic fish. Fish returned to normocapnia developed profound metabolic alkalosis owing to unusually slow clearance of the accumulated plasma HCO3 . The apparent inability of P. notatus to effectively excrete HCO3 following hypercapnia may reflect its aglomerular (i.e., non-filtering) kidney coupled with the normally low rates of urine production in marine teleosts.  相似文献   

10.
Summary Freshwater eel gills are notorious for their limited ability to pump chloride. As a result there is a considerable discrepancy between the Na+ and Cl plasma levels, and plasma HCO3 and blood pH are relatively high in this species.When eels are kept in tanks aerated with pure oxygen, significant alterations in blood acid-base balance, an increase in plasma pCO2 and a decrease in blood pH, are observed. In fish studied after 3 weeks hyperoxia, the decrease in blood pH is compensated by an increase in plasma HCO3 . Such fish exhibit a Cl influx 5 times higher than that observed in normoxic fish. This Cl influx is readily inhibited by addition of SCN to the external medium.An anion-stimulated ATPase activated by HCO3 and by Cl and inhibited by SCN was recently described in membrane fractions of the gills ofCarassius auratus, a fish noted for its high Cl pumping rate. This enzyme is also found in the gills of the eel. While the maximal rates of enzyme activation by HCO3 and by Cl are similar inCarassius andAnguilla, the affinity of the enzyme for Cl is 25 times higher inCarassius. In the microsomal fraction of the hyperoxic eel gills, the maximal anionstimulated ATPase activity remains unchanged but HCO3 affinity decreases by 50%, while Cl affinity increases 5 times. Thus some characteristics of this ATPase seem to be closely related to the Cl pump activity exhibited by the gill in fresh water.  相似文献   

11.
1. 1. The present experiments measure net fluxes of fluid, Cl and HCO3 across de-epithelialised rabbit corneas clamped between half chambers and bathed in Ringer solutions.
2. 2. Net fluxes of HCO3 and fluid occurred together across the cornea from stroma to aqueous when HCO3 and CO2 were present in the bathing solution.
3. 3. No net trans-corneal Cl flux was found
4. 4. The initiation of fluid flow in the presence of HCO3 and CO2 cannot be accounted for by bulk-phase osmotic flow across the cornea.
Keywords: Osmotic coupling; Bicarbonate flux; Fluid flux; Cl flux; (Cornea)  相似文献   

12.
Experiments were carried out on rats to evaluate the possible regulatory roles of renal glutaminase activity, mitochondrial permeability to glutamine, phosphoenolpyruvate carboxykinase activity and systemic acid–base changes in the control of renal ammonia (NH3 plus NH4+) production. Acidosis was induced by drinking NH4Cl solution ad libitum. A pronounced metabolic acidosis without respiratory compensation [pH=7.25; HCO3=16.9mequiv./litre; pCO2=40.7mmHg (5.41kPa)] was evident for the first 2 days, but thereafter acid–base status returned towards normal. This improvement in acid–base status was accompanied by the attainment of maximal rates of ammonia excretion (onset phase) after about 2 days. A steady rate of ammonia excretion was then maintained (plateau phase) until the rats were supplied with tap water in place of the NH4Cl solution, whereupon pCO2 and HCO3 became elevated [55.4mmHg (7.37kPa) and 35.5mequiv./litre] and renal ammonia excretion returned to control values within 1 day (recovery phase). Renal arteriovenous differences for glutamine always paralleled rates of ammonia excretion. Phosphate-dependent glutaminase and phosphoenolpyruvate carboxykinase activities and the rate of glutamine metabolism (NH3 production and O2 consumption) by isolated kidney mitochondria all increased during the onset phase. The increases in glutaminase and in mitochondrial metabolism continued into the plateau phase, whereas the increase in the carboxykinase reached a plateau at the same time as did ammonia excretion. During the recovery phase a rapid decrease in carboxykinase activity accompanied the decrease in ammonia excretion, whereas glutaminase and mitochondrial glutamine metabolism in vitro remained elevated. The metabolism of glutamine by kidney-cortex slices (ammonia, glutamate and glucose production) paralleled the metabolism of glutamine in vivo during recovery, i.e. it returned to control values. The results indicate that the adaptations in mitochondrial glutamine metabolism must be regulated by extra-mitochondrial factors, since glutamine metabolism in vivo and in slices returns to control values during recovery, whereas the mitochondrial metabolism of glutamine remains elevated.  相似文献   

13.
Crude subcellular fractions from rat uterus contain a HCO3-stimulated Mg2+-ATPase with properties analogous to those previously reported for the enzyme in gastric mucosa, pancreas, salivary gland and liver lysosome. Estradiol-17β treatment of ovariectomized rats resulted in an increase in uterine mitochondrial (HCO3 + Mg2+)-ATPase and Mg2+-ATPase activity. In an early response (105 min) to estradiol-17β treatment of ovariectomized rats, the lysosomal enzyme, β-N-acetylglucosaminidase increased in the nuclear and mitochondrial fractions and decreased in the microsomal and supernatant fractions.  相似文献   

14.
Chalcalburnus tarichi is an anadromous cyprinid fish that has adapted to extreme conditions (salinity 22 ‰, pH 9.8 and alkalinity 153 mEq × l?1) in Lake Van in eastern Turkey. Changes in immunoreactivity of Na+/K+-ATPase in gill tissue and osmolarity and ion levels in plasma were investigated in C. tarichi during reproductive migration. Physicochemical characteristics and ion levels in Lake Van were high compared freshwater. Plasma osmolality and plasma ion concentrations ([Na+], [K+] and [Cl?]) increased after transfer from freshwater to Lake Van. The mitochondria-rich (MR) cells of the gill were stained in both filament and lamellar epithelia of C. tarichi by immunocytochemistry with a specific antiserum for Na+/K+-ATPase in river fish samples. Density and area of MR cells were decreased in lake-adapted fishes. These results indicated that freshwater acclimation capacity is correlated with the size and distribution of MR cells in C. tarichi, in contrast to many teleost fishes.  相似文献   

15.
Summary The effect of bicarbonate (HCO3) on fluid absorption by guinea pig gallbladder was investigatedin vitro. Stimulation of fluid absorption was concentration dependent resulting in a fourfold increase in transport over the range 1 to 50mm. Phosphate, Tris, glycodiazine and glutamine buffers failed to substitutte for HCO3 in stimulating absorption. Unidirectional22Na fluxes were measured across short-circuited sheets of guinea pig and rabbit gallbladders mounted in Ussing-type chambers. In both species the net Na flux was unaffected by serosal HCO3 alone but was stimulated by addition of HCO3 to the mucosal bathing solution. Transepithelial electrical potential difference in rabbit gallbladder was about 1.4 mV (lumen positive) when HCO3 was present in the mucosal or in both compartments. This fell to 0.2 mV under HCO3-free conditions or when HCO3 was present only in the serosal solution. The respective values for guinea pig gallbladder were –1.6 and –0.6 mV (lumen negative). HCO3 stimulation of Na absorption by guinea pig gallbladder was abolished by increasing the bathing pH from 7.4 to 7.8, an effect resulting mainly from a reduction inJ mis Na . Tris buffer (25mm) inhibited HCO3-dependent fluid absorption in this species completely at pH 8.5 and partially at 7.5. These results indicate that HCO3 stimulates gallbladder transport in both species by an action from the mucosal side. This effect cannot be attributed to simple buffering of H+ but may be explained by the participation of HCO3 in the maintenance of intracellular H+ for a Na/H-exchange.  相似文献   

16.
Summary The novel application of a two-substrate model (Florini and Vestling 1957) from enzymology to transport kinetics at the gills of freshwater trout indicated that Na+/acidic equivalent and Cl-/basic equivalent flux rates are normally limited by the availability of the internal acidic and basic counterions, as well as by external Na+ and Cl- levels. Adult rainbow trout fitted with dorsal aortic and bladder catheters were chronically infused (10–16 h) with isosmotic HCl to induce a persistent metabolic acidosis. Acid-base neutral infusions of isosmotic NaCl and non-infused controls were also performed. Results were compared to previous data on metabolic alkalosis in trout induced by either isosmotic NaHCO3 infusion or recovery from environmental hyperoxia (Goss and Wood 1990a, b). Metabolic acidosis resulted in a marked stimulation of Na+ influx, no change in Cl- influx, positive Na+ balance, negative Cl- balance, and net H+ excretion at the gills. Metabolic alkalosis caused a marked inhibition of Na+ influx and stimulation of Cl- influx, negative Na+ balance, positive Cl- balance, and net H+ uptake (=base excretion). Mean gill intracellular pH qualitatively followed extracellular pH. Classical one-substrate Michaelis-Menten analysis of kinetic data indicated that changes in Na+ and Cl- transport during acid-base disturbance are achieved by large increases and decreases in Jmax, and by increases in Km. However, one-substrate analysis considers only external substrate concentration and cannot account for transport limitations by the internal substrate. The kinetic data were fitted successfully to a two-substrate model, using extracellular acid-base data as a measure of internal HCO 3 - and H+ availability. This analysis indicated that true Jmax values for Na+/acidic equivalent and Cl-/basic equivalent transport are 4–5 times higher than apparent Jmax values by one-substrate analysis. Flux rates are limited by the availability of the internal counterions; transport Km values for HCO 3 - and H+ are far above their normal internal concentrations. Therefore, small changes in acid-base status will have large effects on transport rates, and on apparent Jmax values, without alterations in the number of transport sites. This system provides an automatic, negative feedback control for clearance or retention of acidic/basic equivalents when acid-base status is changing.Abbreviations Amm total ammonia in water - DMO 55-dimethyl-24-oxyzolidine-dione - Jin unidirectional inward ion movement across the gill - Jout unidirectional outward ion movement across the gill - Jnet net transfer of ions (sum of Jin and Jout) across the gill - Jmax maximal transport rate for ion - Km inverse of affinity of transporter for ion - PIO2 partial pressure of oxygen in inspired water - PaCO2 partial pressure of carbon dixide in arterial blood - TAlk titratable alkalinity of the water - PEG polyethylene glycol - NEN New England Nuclear  相似文献   

17.
Split lamellae of posterior gills of Eriocheir sinensis adapted to fresh water, brackish waters (9 or 18‰) or seawater (36‰) were mounted in Ussing chambers, and transepithelial short-circuit currents and conductances were measured with salines, containing approximately in vivo-like NaCl concentrations. Active sodium and chloride absorption (INa and ICl), the transcellular conductances and the leak conductance were identified with external amiloride and/or DIDS. Split gill lamellae of crabs adapted to fresh water displayed similar magnitudes of INa and ICl with 10 mmol l−1 NaCl in the external medium (internally haemolymph-like NaCl saline). Augmenting external NaCl (50 mmol l−1) resulted in an increase of ICl, whereas INa decreased. Split gill lamellae of crabs adapted to brackish waters (external NaCl of 125 and 225 mmol l−1, respectively) showed lower currents than preparations of freshwater crabs (50 mmol l−1 external NaCl). With split gill lamellae of seawater crabs no currents were detected (450 mmol l−1 NaCl on both sides). The transcellular conductances showed similar changes as the currents. The leak conductance of split gill lamellae of crabs adapted to fresh or brackish waters was low (0.3–0.8 mS cm−2), whereas it was much higher (7 mS cm−2) with preparations of seawater crabs.  相似文献   

18.
The purpose of this study was to investigate the characteristics of carbonic anhydrase (CA) and the Cl/HCO3 exchanger (Band 3; AE1) in the erythrocytes of bowfin (Amia calva), a primitive air-breathing fish, in order to further understand the strategies of blood CO2 transport in lower vertebrates and gain insights into the evolution of the vertebrate erythrocyte proteins, CA and Band 3. A significant amount of CA activity was measured in the erythrocytes of bowfin (70 mmol CO2 min−1 ml−1), although it appeared to be lower than that in the erythrocytes of teleost fish. The turnover number (Kcat) of bowfin erythrocyte CA was intermediate between that of the slow type I CA isozyme in agnathans and elasmobranchs and the fast type II CA in the erythrocytes of the more recent teleost fishes, but the inhibition properties of bowfin erythrocyte CA were similar to the fast mammalian CA isozyme, CA II. In contrast to previous findings, a plasma CA inhibitor was found to be present in the blood of bowfin. Bowfin erythrocytes were also found to possess a high rate of Cl/HCO3 exchange (6 nmol HCO3 s−1 cm−2) that was sensitive to DIDS. Visualization of erythrocyte membrane proteins by SDS-PAGE revealed a major band in the 100 kDa range for the trout, which would be consistent with the anion exchanger. In contrast, the closest major band for the membranes of bowfin erythrocytes was around the 140 kDa range. Taken together, these results suggest that the strategy for blood CO2 transport in bowfin is probably similar to that in most other vertebrates despite several unique characteristics of erythrocyte CA and Band 3 in these primitive fish.  相似文献   

19.
A decrease in nutrient Cl results in an increased negativity of the nutrient relative to the secretory side. The possibility emerged that Cl transport could be attributed to a neutral mechanism involving Cl in the nutrient membrane coupled to a simple Cl conductance pathway in the secretory membrane. The decrease in PD (potential difference) with a decrease in nutrient Cl could arise from a decrease in cellular Cl so that the ratio of Cl in cell to Cl in secretory solution was decreased. Experiments were designed to determine whether there was a need to assume a simple Cl conductance pathway. A 10-fold decrease in Cl gave in HCO3-containing nutrient solutions a PD decrease of 20 mV, in HCO3-free nutrient solutions, a PD decrease of 13.5 mV, and in HCO3-free and Na+-free solutions, a PD decrease of 6.7 mV. The decrease of 6.7 mV could not be attributed to a neutral ClHCO3 exchanger or a NaCl symport. Also there was no evidence for a KCl symport from changes in Cl in presence and absence of K+. It followed that the decrease of 6.7 mV provided evidence for a simple Cl conductance pathway in the nutrient membrane.  相似文献   

20.
Mechanisms of Na+ uptake, ammonia excretion, and their potential linkage were investigated in three characids (cardinal, hemigrammus, moenkhausia tetras), using radiotracer flux techniques to study the unidirectional influx (J in), efflux (J out), and net flux rates (J net) of Na+ and Cl?, and the net excretion rate of ammonia (J Amm). The fish were collected directly from the Rio Negro, and studied in their native “blackwater” which is acidic (pH 4.5), ion-poor (Na+, Cl? ~20 µM), and rich in dissolved organic matter (DOM 11.5 mg C l?1). J in Na , J in Cl , and J Amm were higher than in previous reports on tetras obtained from the North America aquarium trade and/or studied in low DOM water. In all three species, J in Na was unaffected by amiloride (10?4 M, NHE and Na+ channel blocker), but both J in Na and J in Cl were virtually eliminated (85–99 % blockade) by AgNO3 (10?7 M). A time course study on cardinal tetras demonstrated that J in Na blockade by AgNO3 was very rapid (<5 min), suggesting inhibition of branchial carbonic anhydrase (CA), and exposure to the CA-blocker acetazolamide (10?4 M) caused a 50 % reduction in J in Na .. Additionally, J in Na was unaffected by phenamil (10?5 M, Na+ channel blocker), bumetanide (10?4 M, NKCC blocker), hydrochlorothiazide (5 × 10?3 M, NCC blocker), and exposure to an acute 3 unit increase in water pH. None of these treatments, including partial or complete elimination of J in Na (by acetazolamide and AgNO3 respectively), had any inhibitory effect on J Amm. Therefore, Na+ uptake in Rio Negro tetras depends on an internal supply of H+ from CA, but does not fit any of the currently accepted H+-dependent models (NHE, Na+ channel/V-type H+-ATPase), or co-transport schemes (NCC, NKCC), and ammonia excretion does not fit the current “Na+/NH4 + exchange metabolon” paradigm. Na+, K+-ATPase and V-type H+-ATPase activities were present at similar levels in gill homogenates, Acute exposure to high environmental ammonia (NH4Cl, 10?3 M) significantly increased J in Na , and NH4 + was equally or more effective than K+ in activating branchial Na+,(K+) ATPase activity in vitro. We propose that ammonia excretion does not depend on Na+ uptake, but that Na+ uptake (by an as yet unknown H+-dependent apical mechanism) depends on ammonia excretion, driven by active NH4 + entry via basolateral Na+,(K+)-ATPase.  相似文献   

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