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E Kinne-Saffran

Publications and source records attributed to E Kinne-Saffran.

At least 37 records · Page 2Linked to original sources

Membrane traffic and sorbitol release during osmo- and volume regulation in isolated rat renal inner medullary collecting duct cells.

In response to hypotonic stress, cells of the inner medullary collecting duct (IMCD) undergo swelling followed by a regulatory volume decrease (RVD) and a transient release of organic osmolytes such as sorbitol. In this study, we tested the hypothesis whether membrane recycling is involved in the latter process. Therefore, the state of submembranal actin and the cellular uptake or release of the fluid-phase marker fluorescein isothiocyanate (FITC)-dextran (FD) were investigated as related to changes in membrane permeability for sorbitol. After exposure to hypotonic medium the submembranal actin web rapidly disaggregated but it started to reorganize after 5 min of incubation. The basal-lateral pole of IMCD cells showed a significant uptake of extracellular FD after 100 sec. After 5 min, part of this fluorescence intensity had moved towards the cell center but the main part remained submembranal. Disintegration of the actin network by cytochalasin D diminished the uptake of FD during hypotonicity as did a permanent increase in intracellular calcium induced by ionomycin treatment. During a second osmotic stimulation of IMCD cells preloaded with FD, FD was released in a linear time course reaching a plateau after 1 min. Isotonic ionomycin treatment of preloaded cells also generated a rapid FD release during the first minute but induced a further 2-fold increase during the next 4 min. Under both conditions initial FD release was highly correlated with the simultaneously determined increase in sorbitol permeability. A similar strong correlation was found when different incubation temperatures were used (0 degree C, 15 degrees C, 37 degrees C). These results suggest that during exposure of IMCD cells to hypotonicity the submembranal actin web rapidly disintegrates, and "reserve" vesicles, probably containing sorbitol transporter, move to and fuse with the basal-lateral plasma membrane. The fusion causes a rapid increase in sorbitol permeability. These membrane areas are recovered by internalization, and the transport systems for sorbitol are concomitantly retrieved. In parallel to this internalization the submembranal actin filament network is rearranged. This process seems to be regulated by changes in intracellular calcium.

Actins↗

Control of sorbitol metabolism in renal inner medulla of diabetic rats: regulation by substrate, cosubstrate and products of the aldose reductase reaction.

Streptozotocin diabetes induces a 4-fold increase in the maximal velocity of inner medullary aldose reductase as determined in vitro but increases sorbitol synthesis in intact inner medullary collecting duct (IMCD) cells only 1.3-fold. In order to resolve this discrepancy we investigated the importance of intracellular factors in controlling the role of cellular sorbitol synthesis. These factors include glucose concentration, sorbitol concentration, the activity of the NADPH-regenerating pentose phosphate pathway, intracellular NADP and NADPH content, and intracellular reduced (GSH) and oxidized glutathione (GSSG). It was found that the apparent Km of cellular sorbitol production for glucose was identical in control and diabetic rats (56 +/- 18 vs. 59 +/- 14 mmol/l D-glucose), whereas Vmax increased by 31% in diabetes. In inner medullary collecting duct cells of diabetic rats containing 146 +/- 5 mumol sorbitol/g protein, sorbitol synthesis was slightly lower (-15%), compared to cells which had been sorbitol-depleted prior to the experiment (87 +/- 4 mumol sorbitol/g protein). However, no inhibitory effect of sorbitol (up to 200 mmol/l) was observed on aldose reductase activity in vitro. In diabetic rats the content of NADPH was about 32% lower than in the control rats (3.8 +/- 0.3 vs. 5.6 +/- 0.4 mumol/g protein) and the ratio of NADPH/NADP was decreased from 25.6 +/- 5.1 to 8.6 +/- 1.7. In homogenates of the inner medulla the activity of 6-phospho-gluconate dehydrogenase (EC 1.1.1.43) was identical in both experimental groups, so the pentose phosphate shunt seems to be unaltered. GSH content in diabetic rats was also diminished (4.02 +/- 0.67 mumol/g protein vs. 7.41 +/- 0.5 mumol/g protein) and the GSH/GSSG ratio fell from 92.6 to 57.4. In enzyme tests in vitro an apparent Km of 7.3 +/- 1.9 mumol/l of the aldose reductase for NADPH was found; NADP acted as competitive inhibitor with an apparent K(i) of 183 +/- 31 mumol/l. Aldose reductase activity was also found to be strongly inhibited by the SH-group reagent p-chloromercurybenzoesulfonate (apparent K(i) = 0.85 x 10(-6) mol/l). Combining the results obtained on the properties of the aldose reductase in vitro and the observation made in the intact cells, the investigators suggest that the decrease in NADPH/NADP ratio, as well as changes in the redox state in the cells of diabetic animals, can play a significant role in the control of sorbitol synthesis.

Aldehyde Reductase↗

Inhibition of Na,K-ATPase by cadmium: different mechanisms in different species.

The mechanism of action of Cd on Na,K-ATPase was investigated in two "classical" model systems, the shark rectal gland and rabbit kidney outer medulla. In lyophilized plasma membranes from dogfish rectal gland Cd inhibited Na,K-ATPase activity after 30 min of preincubation with an I50 of 1.3 x 10(-5) M. K-Dependent p-nitrophenylphosphatase (pNPPase) activity was inhibited 50% by Cd at 9.4 x 10(-6) M. Neither Na nor K altered the interaction of the enzyme with Cd. Decreasing the ATP concentration, however, lowered the apparent sensitivity of Na,K-ATPase to Cd. The inhibitory effect was also significantly reduced when the Mg concentration present during the preincubation was increased from 0.5 to 6.0 mM. The apparent Cd sensitivity of the K-dependent pNPPase is lower at 10 mM Mg than at 1 mM Mg. In initial rate experiments 4 x 10(-5) M Cd increased the apparent Km of the enzyme for Mg significantly from 0.88 +/- 0.29 mM to 1.73 +/- 0.3 mM whereas the Vmax (167 +/- 32 mumol/min x mg protein compared to 140 +/- 16 mumol/min x mg protein) remained essentially unchanged. In lyophilized rabbit kidney outer medulla, Cd was found to inhibit Na,K-ATPase activity with an I50 of 1.9 x 10(-5) M. K-Dependent pNPPase was inhibited 50% under identical conditions by Cd at a nominal concentration of 2.1 x 10(-4) M. Increasing K concentrations protected the enzyme from the inhibitory action of Cd as indicated by a 10-fold decrease in sensitivity of pNPPase when the K concentration was increased from 1 to 20 mM. K, 20 mM, delayed also the onset of inhibition by about 15 min at 37 degrees C. These studies suggest that the mode of action of Cd on Na,K-ATPase varies in different species. In rectal gland Cd competes with a Mg site (or sites) critically involved in ATP and pNPP hydrolysis, whereas in rabbit renal medulla Cd interacts with a potassium-binding site. Differences in the protein sequence, protein conformation, and/or in the kind of protein membrane-lipid interaction might contribute to this diversity observed in the inhibitory mechanisms.

4-Nitrophenylphosphatase↗

Epithelial transport of magnesium in the kidney of fish.

That the kidneys of marine fish have powerful renal mechanisms for the excretion of magnesium (Mg) from the body has been known since the early 1930s, but it took another 40 years before the first renal Mg transport model was suggested by Natochin and Gusev. Since rates of net renal sodium (Na) reabsorption were closely correlated with rates of net renal Mg secretion in scorpion fish, Natochin and Gusev proposed tubular Na/Mg exchange transport. However, confirmation of Na/Mg exchange in other fish kidneys has been elusive. Detailed renal clearance studies in sea water rainbow trout have shown that bladder reabsorption of Na and water, the process which concentrates Mg in the bladder, accounts for much of Natochin's original observation. Nevertheless, studies of isolated perfused proximal tubules of the flounder and killifish do show inverse relationships between the concentrations of Na and Mg in the tubule lumen, consistent with Na/Mg exchange. Unfortunately, large paracellular Na permeabilities in renal proximal tubules do not clarify whether paracellular Na fluxes of Na/Mg exchange transport across the brush border membrane are responsible for generating inverse concentrations of Na and Mg in the tubule lumen. These uncertainties have led the authors to their present use of brush border membrane vesicles to look for evidence of Na/Mg exchange transport.

Adaptation, Physiological↗

Localization and activity of renal carbonic anhydrase (CA) in CA-II deficient mice.

A null allele at the mouse Car 2 locus was induced by ethylnitrosurea; mice homozygous for the new allele lack the carbonic anhydrase (CA)-II isoenzyme. The expression of this genetic lesion was investigated by: (1) using tissue fractionation techniques to determine localization and activity of CA in the kidney, and (2) examining renal response to CA inhibition in CA-II deficient mice (CAD), in normal (N) mice and in heterozygous litter mates (LM). N and LM mice had CA activity in proximal tubule brush border membranes and cytosol. CA activity was also localized to membranes and cytosol of the outer medullary region. CAD mice lacked cytosolic activity but had normal CA activity in all membranes examined. All membrane associated CA had 2-8-fold lower sulfonamide sensitivity than cytosolic CA. These inhibition characteristics suggest that the membrane enzyme is CA-IV. Baseline urinary excretion of Na+, K+, and HCO3- was similar in all groups. Urine pH and Cl- excretion were higher and titratable acid output was lower in CAD mice. Inhibition of CA (methazolamide, 25 mg/kg) led in all groups to equivalent increments of urine pH, urine flow, and HCO3-, Na+, and K+ excretion. Cl- excretion was unchanged. Thus the extent of the genetic deficiency of CA-II mice extends to the kidney cytosol but does not alter membrane localization or levels of CA, probably CA-IV. The similar response to CA inhibition in CAD mice suggests that CA-IV, the membrane bound isoenzyme is the important isoenzyme in proximal tubule HCO3- reabsorption.

Animals↗

Cadmium inhibition of L-alanine transport into renal brush border membrane vesicles isolated from the winter flounder (Pseudopleuronectes americanus).

Using isolated brush border membrane vesicles from the kidney of the winter flounder (Pseudopleuronectes americanus), we have studied the effect of cadmium on L-alanine transport. Pretreatment of vesicles with 0.1 mM Cd2+ resulted in inhibition of L-alanine uptake in the presence of a NaCl (but not KCl) gradient. Inhibition was due to a specific interaction with the sodium-alanine cotransport system and not a change in the driving forces for alanine transport, since Cd2+ did not affect sodium-dependent D-glucose uptake. The effect of Cd2+ on Na+-alanine cotransport showed mixed-type inhibition which is only partially reversible by EDTA. Cd2+ uptake itself was shown to be time and temperature dependent, resulting in binding to both sides of the membrane. No direct correlation was possible between inhibition of L-alanine transport and the amount of Cd2+ taken up by the membranes. Nevertheless, the striking time dependence of the effect of Cd2+ on sodium-dependent L-alanine uptake and the inability of EDTA to reverse the inhibitory action of Cd2+ suggest that Cd2+ inhibits Na+-alanine cotransport at the cytoplasmic side of the membrane.

Alanine↗

Renal H+ ATPases.

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Adenosine Triphosphate↗

A Na/H exchange mechanism in apical membrane vesicles of the retinal pigment epithelium.

The retinal pigment epithelium (RPE) interposed between the vascular system of the choroid and the neural retina performs a variety of functions essential for vision. In order to further elucidate the transport functions of the RPE, apical membranes were isolated from the RPE of the dogfish (Squalus acanthias) by differential precipitation with calcium. Na-K-ATPase, an apical marker enzyme in this tissue, was enriched 15-fold in the final membrane fraction. About 50% of the membranes form right-side-out vesicles in which the membrane has retained its in vivo orientation. Sodium uptake into these vesicles as determined by a rapid filtration method was stimulated 37% by the presence of a proton gradient across the membrane (pHi = 6.1, pHo = 8.1). The stimulation was also observed in membrane vesicles "short-circuited" with valinomycin and K. The pH gradient-dependent sodium uptake but not the uptake in the absence of a pH gradient was completely inhibited by 5 X 10(-4) M amiloride, and 56% inhibition was found at 10(-5) M amiloride. The uptake of 22Na was also strongly decreased in the presence of nonradioactively labelled sodium and lithium; potassium was without effect. pH gradient dependence, amiloride sensitivity, saturability and cation specificity of the sodium flux indicate the presence of a Na/H exchanger in the apical membrane of the retinal pigment epithelium. The presence of the Na/H exchange process might have important implications for the control of pH in the subretinal space, optimum intracellular pH of the RPE and the triggering of other functions of the RPE.

Amiloride↗

The anion specificity of the sodium-potassium-chloride cotransporter in rabbit kidney outer medulla: studies on medullary plasma membranes.

Plasma membrane vesicles were isolated from rabbit kidney outer medulla and employed in sodium, rubidium, and chloride flux studies. Chloride dependence and bumetanide sensitivity of (part of) the sodium and rubidium flux indicate that this plasma membrane fraction can be used to study the properties of Na-K-2Cl cotransport system present in the luminal membrane of the medullary thick ascending limb. The anion specificity of the cotransporter was investigated by determining the effect of anion replacement on sodium fluxes. When chloride was completely replaced by bromide, iodide, nitrate, or thiocyanate only bromide could effectively substitute for chloride (90% activity), whereas sodium uptake in the presence of iodide, nitrate, and thiocyanate amounted to only 25% of the sodium uptake observed in the presence of chloride. When similar replacement experiments were performed in the presence of 10 mmol/l chloride, bromide could substitute for chloride by 110%, iodide and nitrate by 60%, and thiocyanate by 70%. In the presence of 10 mmol/l bromide iodide, nitrate, and thiocyanate were similarly effective. The effect of nitrate and chloride on sodium flux was additive. Bumetanide-sensitive chloride uptake was inhibited by nitrate, the inhibition was however only partly, amounting to 60%. The results obtained are compatible with the view that the two anion binding sites of the Na-K-2Cl cotransporter can exhibit a different substrate specificity and that the transporter in addition to a 2Cl mode can also operate in a 2Br, Cl-, A- and Br-, A- mode, A- representing iodide, nitrate, or thiocyanate.

Animals↗

Proton pump activity and Mg-ATPase activity in rat kidney cortex brushborder membranes: effect of 'proton ATPase' inhibitors.

In order to further characterize the ATP driven proton pump present in the luminal membrane of the renal proximal tubule, brushborder membranes were isolated from rat kidney cortex and the effect of various proton ATPase inhibitors on intravesicular ATP hydrolysis in sealed brushborder membrane vesicles and on Mg-ATPase activity in permeabilized brushborder membranes was investigated. The protonophor induced intravesicular ATP hydrolysis (ATP driven proton pump) was inhibited by DCCD and filipin but not by diethylstilbestrol and duramycin. All four compounds decreased Mg-ATPase activity, the two former inhibited the ATPase activity with a lower potency than the proton pump. NEM--up to 10 mM--and orthovanadate did not affect intravesicular ATP hydrolysis nor Mg-ATPase activity. From the relative sensitivity of the proton pump and the Mg-ATPase activity to the inhibitors it is concluded that about 35% of the Mg-ATPase activity found in the brushborder membrane can be attributed to the ATP-driven proton pump. Furthermore, the results obtained with NEM and duramycin suggest that the brushborder membrane proton pump has different properties than the proton pump in clathrin-coated vesicles or endosomes. The results presented above raise the possibility that the brushborder membrane proton pump is predominantly involved in acid secretion by the proximal convoluted tubule whereas the proton pump in clathrin-coated vesicles may be predominantly involved in the endocytosis of larger peptides and proteins.

Animals↗

Ammonium transport in medullary thick ascending limb of rabbit kidney: involvement of the Na+,K+,Cl(-)-cotransporter.

In order to investigate the question whether ammonium reabsorption in the thick ascending limb of Henle's loop (TALH) proceeds via the Na+,K+,Cl(-)-cotransporter, plasma membrane vesicles were prepared from TALH cells isolated from rabbit kidney outer medulla and the effect of NH+4 on their transport properties was investigated. It was found that, in the presence of a 78-mmol/liter NaCl gradient, 5 mmol/liter NH+4 inhibited bumetanide-sensitive rubidium flux by 86%; a similar decrease was observed for 5 mmol/liter, K+. Inhibition of bumetanide-sensitive rubidium uptake by NH+4 was competitive and an apparent Ki of 1.9 mmol/liter was found. Bumetanide-sensitive sodium uptake measured in the presence of a 83 mmol/liter KCl gradient was not inhibited by 5 mmol/liter NH+4. A 100-mmol/liter NH4Cl gradient was, however, capable of stimulating bumetanide-sensitive sodium uptake to the same extent as a KCl gradient. These data suggest that NH+4 is accepted by the K+ site of the Na+,K+,Cl-cotransport system and that the transporter can function in a Na+,NH+4,2Cl mode. Since the affinity of the transporter for NH+4 lies in the concentration range found in the TALH lumen in vivo, it is concluded that Na+,NH+4,2Cl-cotransport can contribute to the NH+4 reabsorption in this tubular segment.

Ammonia↗

The use of membrane vesicles to study the NaCl/KCl cotransporter involved in active transepithelial chloride transport.

Properties of the NaCl/KCl cotransport system were investigated in isolated membranes by flux measurements and binding studies. Chloride competes with "furosemide-like loop diuretics" for its two binding sites at the cotransporter as evidenced by the decrease in piretanide sensitivity of sodium flux and inhibition of high affinity N-methylfurosemide binding by chloride in rectal gland plasma membranes. In the rectal gland lithium inhibits sodium flux but is not translocated whereas in the renal thick ascending limb (TALH) it is also transported. Ammonium is a substrate for the sodium and potassium site in the rectal gland but only for the potassium site in the TALH. The latter finding raises the possibility that part of the ammonium reabsorption in the TALH is mediated by the cotransport system as NaCl/NH4Cl cotransport.

Animals↗

Regulation of volume reabsorption by thyroid hormones in the proximal tubule of rat: minor role of luminal sodium permeability.

In order to investigate whether changes in luminal membrane sodium permeability can explain the increase in isotonic fluid reabsorption (Jv) found in proximal tubules of thyroidectomized rats (TX) treated with tri-iodothyronine (T3), experiments were carried out on TX rats and TX rats treated for 3 days (TX + T3) with physiological doses (10 micrograms/kg body wt) of T3. Two sets of experiments were performed: 1) in vivo, using the micropuncture technique for the measurements of Jv; 2) in vitro, using isolated brush border membrane vesicles for the direct measurement of Na+ permeability. In micropuncture studies a 65% increase in Jv of TX rats was observed after treatment with T3. Luminal perfusion of proximal tubules of TX rats with Amphotericin B (10 micrograms/ml), to increase luminal sodium permeability, enhanced Jv only by 15%. Brush border membrane vesicles isolated from TX and TX + T3 rats showed the same sodium permeability in uptake or efflux experiments. These results were confirmed by the fact that sodium gradient dependent histidine transport into brush border membrane vesicles did not change after T3 treatment. Finally, measuring the amiloride sensitive sodium uptake, it was also found that Na+-H+ exchange was also only slightly affected by T3. These micropuncture and vesicle data indicate that the large effect of T3 on the trans-cellular sodium transport and volume reabsorption in the proximal tubule, cannot be explained by an action of T3 on the sodium entry step across the brush border membrane.

Absorption↗

Presence of a sodium-potassium chloride cotransport system in the rectal gland of Squalus acanthias.

In order to investigate whether the loop diuretic sensitive, sodium-chloride cotransport system described previously in shark rectal gland is in fact a sodium-potassium chloride cotransport system, plasma membrane vesicles were isolated from rectal glands of Squalus acanthias and sodium and rubidium uptake were measured by a rapid filtration technique. In addition, the binding of N-methylfurosemide to the membranes was investigated. Sodium uptake into the vesicles in the presence of a 170 mM KCl gradient was initially about five-fold higher than in the presence of a 170 mM KNO3 gradient. In the presence of chloride, sodium uptake was inhibited 56% by 0.4 mM bumetanide and 40% by 0.8 mM N-methylfurosemide. When potassium chloride was replaced by choline chloride or lithium chloride, sodium uptake decreased to the values observed in the presence of potassium nitrate. Replacement of potassium chloride by rubidium chloride, however, did not change sodium uptake. Initial rubidium uptake into the membrane vesicles was about 2.5-fold higher in the presence of a 170 mM NaCl gradient than in the presence of a 170 mM NaNO3 gradient. The effect of chloride was completely abolished by 0.4 mM bumetanide. Replacement of the sodium chloride gradient by a lithium chloride gradient decreased rubidium uptake by about 40%; replacement by a choline chloride gradient reduced the uptake even further. Rubidium uptake was also strongly inhibited by potassium. Sodium chloride dependence and bumetanide inhibition of rubidium flux were also found in tracer exchange experiments in the absence of salt gradients. The isolated plasma membranes bound 3[H]-N-methylfurosemide in a dose-dependent manner. In Scatchard plots, one saturable component could be detected with an apparent KD of 3.5 x 10(-6) M and a number of sites n of 104 pmol/mg protein. At 0.8 microM, N-methylfurosemide binding decreased 51% when sodium-free or low-potassium media were used. The same decrease was observed when the chloride concentration was increased from 200 to 600 mM or when 600 1 mM bumetanide or furosemide was added to the incubation medium. These studies indicate that the sodium-chloride cotransport system described previously in the rectal gland is in fact a sodium-potassium chloride cotransport system. It is postulated that this transport system plays an essential role in the secondary active chloride secretion of the rectal gland.

Animals↗

An ATP-driven proton pump in brush-border membranes from rat renal cortex.

The rate of ATP hydrolysis in ATP-preloaded plasma membrane vesicles derived from the luminal membrane of renal cortical tubules, and the rate of H+ secretion out of the same vesicles were investigated. Both were inhibited at low temperature, by the action of filipin, an antibiotic that complexes with cholesterol in plasma membranes, and by the action of blockers of mitochondrial Fo hydrogen channels, dicyclohexylcarbodiimide and Dio-9. Valinomycin in the presence of K+ showed a stimulatory effect, the protonophor carbonyl-cyanid-p-trifluormethoxy-phenylhydrazone stimulated the intravesicular ATP hydrolysis and apparently abolished acidification of the extravesicular medium. Lowering of the pH of the extravesicular medium retarded ATP hydrolysis, while readjustment of extra- and intravesicular pH accelerated ATP hydrolysis again. These findings strongly support the assumption that an ATP-driven proton pump is located in the luminal membrane of renal cortical tubules.

Adenosine Triphosphatases↗