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1.
Summary Treatment of red cell membranes with pure phospholipase C inactivates (Na++K+)-ATPase activity and Na+-dependent phosphorylation but increases K+-dependent phosphatase activity. When phospholipase A2 replaces phospholipase C, all activities are lost. Activation of K+-dependent phosphatase by treatment with phospholipase C is caused by an increase in the maximum rate of hydrolysis ofp-nitrophenylphosphate and in the maximum activating effect of K+, the apparent affinities for substrate and cofactors being little affected. After phospholipase C treatment K+-dependent phosphatase is no longer sensitive to ouabain but becomes more sensitive to N-ethylmaleimide. In treated membranes Na+ partially replaces K+ as an activator of the phosphatase. Although ATP still inhibits phosphatase activity, neither ATP nor ATP+Na+ are able to modify the apparent affinity for K+ of K+-dependent phosphatase in these membranes.  相似文献   

2.
An automated fluorescence method for the determination of K+-dependent umbelliferone phosphatase activity is described. This activity is associated with a (Na+ + K+)-dependent ATPase in brain and kidney microsomal preparations. The ratio of phosphatase activity/ATPase activity is greater in kindney.  相似文献   

3.
A highly sensitive fluorimetric assay using 3-O-methylfluorescein phosphate as substrate was used in the determination of K+-dependent phosphatase activity in preparations of rat skeletal muscle. The gastrocnemius muscle was chosen because of mixed fibre composition. Crude, detergent treated homogenate was used so as to avoid loss of activity during purification. K+-dependent phosphatase activities in the range 0.19–0.37 μmol · (g wet weight)−1 · min−1 were obtained, the value decreasing with age and K+-deficiency. Complete inhibition of the K+-dependent phosphatase was obtained with 10−3 M ouabain. Using a KSCN-extracted muscle enzyme the intimate relation between K+-dependent phosphatase activity and (Na+ + K+)-activated ATP hydrolysis could be demonstrated. A molecular activity of 620 min−1 was estimated from simultaneous determination of K+-dependent phosphatase activity and [3H]ouabain binding capacity using the partially purified enzyme preparation. The corresponding enzyme concentration in the crude homogenates was calculated and corresponded well with the number of [3H]ouabain binding sites measured in intact muscles or biopsies hereof.  相似文献   

4.
Data are presented which prove that 3-O-methylfluorescein phosphate is a substrate for the K+-dependent phosphatase that is associated with Na+,K+-ATPase. Conditions for the continuous fluorimetric assay of 3-O-methylfluorescein phosphatase are described. Enzyme preparations from three different tissues with widely different specific activities exhibit similar Km values for 3-O-methylfluorescein phosphate. Correlation between Na+,K+-ATPase activity and K+-dependent 3-O-methylfluorescein phosphatase activity is demonstrated in several partially purified enzyme preparations and crude tissue fractions. When the K+-dependent 3-O-methylfluorescein phosphatase of a crude rat-brain homogenate is assayed, the activity is a linear function of the amount of homogenate added to the assay mixture. The equivalent of 10 μg of brain tissue may be assayed under the conditions used. The potential value of this highly sensitive fluorimetric method for the assay of enzyme in small samples of various tissues is suggested.  相似文献   

5.
Summary (i) In human red cell membranes the sensitivity to N-ethylmaleimide of Ca2+-dependent ATPase and phosphatase activities is at least ten times larger than the sensitivity to N-ethylmaleimide of (Na++K+)-ATPase and K+-activated phosphatase activities. All activities are partially protected against N-ethylmaleimide by ATP but not by inorganic phosphate or byp-nitrophenylphosphate. (ii) Protection by ATP of (Na++K+)-ATPase is impeded by either Na+ or K+ whereas only K+ impedes protection by ATP of K+-activated phosphatase. On the other hand, Na+ or K+ slightly protects Ca2+-dependent activities against N-ethylmaleimide, this effect being independent of ATP. (iii) The sensitivity to N-ethylmaleimide of Ca2+-dependent ATPase and phosphatase activities is markedly enhanced by low concentrations of Ca2+. This effect is half-maximal at less than 1 m Ca2+ and does not require ATP, which suggests that sites with high affinity for Ca2+ exist in the Ca2+-ATPase in the absence of ATP. (iv) Under all conditions tested the response to N-ethylmaleimide of the ATPase and phosphatase activites stimulated by K+ or Na+ in the presence of Ca2+ parallels that of the Ca2+-dependent activities, suggesting that the Ca2+-ATPase system possesses sites at which monovalent cations bind to increase its activity.  相似文献   

6.
Ca2+ inhibited the Mg2+-dependent and K+-stimulated p-nitrophenylphosphatase activity of a highly purified preparation of dog kidney (Na+ + K+)-ATPase. In the absence of K+, however, a Mg2+-dependent and Ca2+-stimulated phosphatase was observed, the maximal velocity of which, at pH 7.2, was about 20% of that of the K+-stimulated phosphatase. The Ca2+-stimulated phosphatase, like the K+-stimulated activity, was inhibited by either ouabain or Na+ or ATP. Ouabain sensitivity was decreased with increase in Ca2+, but the K0.5 values of the inhibitory effects of Na+ and ATP were independent of Ca2+ concentration. Optimal pH was 7.0 for Ca2+-stimulated activity, and 7.8–8.2 for the K+-stimulated activity. The ratio of the two activities was the same in several enzyme preparations in different states of purity. The data indicate that (a) Ca2+-stimulated phosphatase is catalyzed by (Na+ + K+)-ATPase; (b) there is a site of Ca2+ action different from the site at which Ca2+ inhibits in competition with Mg2+; and (c) Ca2+ stimulation can not be explained easily by the action of Ca2+ at either the Na+ site or the K+ site.  相似文献   

7.
Summary Treatment of human red cell membranes with pure phospholipase A2 results in a progressive inactivation of both Ca2+-dependent and (Ca2++K+)-dependent ATPase and phosphatase activities. When phospholipase C replaces phospholipase A2, Ca2+-dependent ATPase activity and Ca2+-dependent phosphorylation of red cell membranes are lost, while Ca2+-dependent phosphatase activity is enhanced and its apparent affinity for Ca2+ is increased about 20-fold. Activation of Ca2+-dependent phosphatase following phospholipase C treatment was not observed in sarcoplasmic reticulum preparation. Phospholipase C increases the sensitivity of the phosphatase to N-ethylmaleimide but has little effect on the kinetic parameters relating the phosphatase activity to substrate and cofactors, suggesting that no extensive structural disarrangement of the Ca2+-ATPase system has occurred after incubation with phospholipase C.  相似文献   

8.
9.
The K+-stimulated phosphatase activity of microsomes from rat kidney was not inhibited by l-phenylalanine, but the HCO3?-stimulated phosphatase activity was markedly inhibited by l-phenylalanine. Valinomycin enhanced the HCO3?-stimulated phosphatase activity, but did not enhance the K+-stimulated phosphatase activity. Ouabain did not inhibit the HCO3?-stimulated phosphatase activity, but inhibited the K+-stimulated phosphatase activity.The renal K+-stimulated phosphatase activity was suppressed to 40% of the control values by adrenalectomy, but the renal HCO3?-stimulated phosphatase activity was little suppressed by adrenalectomy. The renal K+-stimulated phosphatase activity in intact and adrenalectomized rats was found to be significantly elevated, in a manner similar to the elevation of the renal (Na+ + K+)-ATPase activity by aldosterone treatment (P < 0.02).  相似文献   

10.
(Na+ + K+)-dependent ATPase preparations from rat brain, dog kidney, and human red blood cells also catalyze a K+-dependent phosphatase reaction. K+ activation and Na+ inhibition of this reaction are described quantitatively by a model featuring isomerization between E1 and E2 enzyme conformations with activity proportional to E2K concentration:
Differences between the three preparations in K0.5 for K+ activation can then be accounted for by differences in equilibria between E1K and E2K with dissociation constants identical. Similarly, reductions in K0.5 produced by dimethyl sulfoxide are attributable to shifts in equilibria toward E2 conformations. Na+ stimulation of K+-dependent phosphatase activity of brain and red blood cell preparations, demonstrable with KCl under 1 mM, can be accounted for by including a supplementary pathway proportional to E1Na but dependent also on K+ activation through high-affinity sites. With inside-out red blood cell vesicles, K+ activation in the absence of Na+ is mediated through sites oriented toward the cytoplasm, while in the presence of Na+ high-affinity K+-sites are oriented extracellularly, as are those of the (Na+ + K+)-dependent ATPase reaction. Dimethyl sulfoxide accentuated Na+-stimulated K+-dependent phosphatase activity in all three preparations, attributable to shifts from the E1P to E2P conformation, with the latter bearing the high-affinity, extracellularly oriented K+-sites of the Na+-stimulated pathway.  相似文献   

11.
Microsomal fractions from wheat tissues exhibit a higher level of ATP hydrolytic activity in the presence of Ca2+ than Mg2+. Here we characterise the Ca2+-dependent activity from roots of Triticum aestivum lev. Troy) and investigate its possible function. Ca2+-dependent ATP hydrolysis in the microsomal fraction occurs over a wide pH range with two slight optima at pH 5.5 and 7.5. At these pHs the activity co-migrates with the major peak of nitrate-inhibited Mg2+. Cl-ATPase on continuous sucrose gradients indicating that it is associated with the vacuolar membrane. Ca2+-dependent ATP hydrolysis can be distinguished from an inhibitory effect of Ca2+ on the plasma membrane K+, Mg2+-ATPase following microsomal membrane separation using aqueous polymer two phase partitioning. The Ca2+-dependent activity is stimulated by free Ca2+ with a Km of 8.1 μM in the absence of Mg2+ ([CaATP] = 0.8 mM). Vacuoiar membrane vacuolar preparations contain a higher Ca2+-dependent than Mg2+-dependent ATP hydrolysis, although the two activities are not directly additive. The nucleotide specificity of the divalent ion-dependent activities in vacuolar membrane-enriched fractions was low. hydrolysis of CTP and UTP being greater than ATP hydrolysis with both Ca2+ and Mg2+ The Ca2+-dependent activity did discriminate against dinucleotides, and mononucleotides. and failed to hydrolyse phosphatase substrates. Despite low nucleotide specificity the Mg2+-dependent activity functioned as a bafilomycin sensitive H+-pump in vacuolar membrane vesicles. Ca2+-dependent ATP hydrolysis was not inhibited by the V-, P-, or F-type ATPase inhibitors bafilomycin. vanadate and azide, respectively. nor by the phosphatase inhibitor molybdate, but was inhibited 20% at pH 7.5 by K+. Possible functions of Ca2+-dependent hydrolysis as a H+-pump or a Ca2+-pump was investigated using vacuolar membrane vesicles. No H+ or Ca2+ translocating activity was observed under conditions when the Ca2+-dependent ATP hydrolysis was active.  相似文献   

12.
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   

13.
Amino acids stimulated the (Na+ + K+)-dependent ATPase activity of a rabbit kidney preparation without affecting the Mg2+-ATPase activity; the most effective was histidine, producing a 2-fold increase in activity. Similar stimulation was produced by the well-known chelators EDTA, EGTA, and 8-hydroxyquinoline, and by the chelating phospholipid phosphatidylserine. In the presence of maximally effective concentrations of one agent, the other agents were unable to produce additional stimulation. It is suggested that the amino acids, phosphatidylserine, and the conventional chelators all stimulate the ATPase by a common mechanism: the removal of inhibitory trace metal (s). From measurements of the metal content of the enzyme preparation and experiments with extracted reagents it was concluded that the chelatable inhibitor was in the reagents used in the incubation medium rather than being endogenous to the enzyme; attempts to identify the inhibitor (s) were unsuccessful. The chelators also stimulated the K+-dependent phosphatase activity in the preparation but had no major effect on Na+-dependent incorporation of 32P from [32P]ATP. On monovalent cation activation the chelators appeared to relieve an uncompetitive inhibition of Na32 activation and a noncompetitive inhibition of K32 activation, also suggesting an action of the chelatable inhibitor on the later stages of the ATPase reaction sequence.  相似文献   

14.
Inhibition of the (Na+ + K+)-dependent ATPase by inorganic phosphate, Pi, was examined in terms of product inhibition of the various activities catalyzed by an enzyme preparation from rat brain, and considered in terms of the specific transport processes of the membrane Na+,K+-pump that these activities reflect. The K+-dependent phosphatase activity of the enzyme was most sensitive to Pi, and inhibition was competitive toward the substrate, nitrophenyl phosphate, as would be expected if Pi were released from the same enzyme form that bound substrate. However, this enzymatic activity does not seem to represent a transport process, and thus a cyclical discharge of K+ may not be involved. The Na+-dependent exchange activity was unaffected by Pi, in accord with the absence of Pi release in the reaction sequence. For the corresponding Na+/Na+ exchange function of the pump, which reportedly does not involve ATP hydrolysis either, prior release of Pi obviously cannot be required for Na+ discharge. With the Na+-dependent ATPase activity, measured using micromolar concentrations of ATP, Pi inhibited, but far less than with the phosphatase activity, and inhibition was not competitive toward ATP. Moreover, inhibition decreased as the Na+ concentration was raised from 10 to 100 mM. This elevated concentration of Na+ also led to substrate inhibition. For this ATPase activity, and the corresponding transport process, uncoupled Na+ efflux, the findings suggest that Na+ discharge follows Pi release, in contrast to Na+/Na+ exchange. The (Na+ + K+)-dependent ATPase activity, measured with millimolar concentrations of ATP and reflecting the coupled Na+,K+-transport function, was similarly sensitive to Pi, and again inhibition was not competitive toward ATP. However, in this case inhibition did not increase as the Na+ concentration was lowered. For this activity, and the associated transport process, the site of Na+ discharge in the overall reaction sequence remains unresolved.  相似文献   

15.
External treatment of human erythrocytes with the diazonium salt of sulfanilic acid does not inhibit the Mg2+-dependent ATPase but does markedly inhibit the Ca2+-stimulated ATPase activity. Inhibition of the (Na+ + K+)-dependent activity is dependent upon the concentration of diazonium salt used. Treatment of membrane fragments does not irreversibly inhibit the (Na+ + K+)-dependent ATPase even though the diazonium salt binds covalently to membrane components. However, the Mg2+-dependent and Ca2+-stimulated ATPase activities are irreversibly inhibited. ATP and Mg-ATP will completely protect the (Na+ + K+)-dependent ATPase when present during treatment of membrane fragments with the diazonium salt, but only Mg-ATP will protect the Mg2+-dependent ATPase from inhibition. The Ca2+-stimulated ATPase activity is not protected.  相似文献   

16.
Summary The cell membrane K+-activated phosphatase activity was measured in reconstituted ghosts of human red cells having different ionic contents and incubated in solutions of varying ionic composition. When K+-free ghosts are suspended in K+-rich media, full activation of the phosphatase is obtained. Conversely, very little ouabainsensitive activity is detected in K+-rich ghosts suspended in K+-free media. These results, together with the fact that Na+ competitively inhibits the effects of K+ only when present externally, show that the K+ site of the membrane phosphatase is located at the outer surface of the cell membrane. The Mg++ requirements for K+ activation of the membrane phosphatase are fulfilled by internal Mg++. Addition of intracellular Na+ to ATP-containing ghosts raises the apparent affinity of the enzyme for K+, suggesting that the sites where ATP and Na+ produce this effect are located at the inner surface of the cell membrane. The asymmetrical features of the membrane phosphatase are those expected from the proposed role of this enzyme in the Na+–K+-ATPase system.The authors are established investigators of the Consejo Nacional de Investigaciones Científicas y Técnicas, Argentina.  相似文献   

17.
These experiments examined effects of several ligands on the K+ p-nitrophenylphosphatase activity of the (Na+,K+)-ATPase in membranes of a rat brain cortex synaptosomal preparation. K+-independent hydrolysis of this substrate by the synaptosomal preparation was studied in parallel; the rate of hydrolysis in the absence of K+ was approximately 75% less than that observed when K+ was included in the incubation medium. The response to the H+ concentrations was different: K+-independent activity showed a pH optimum around 6.5–7.0, while the K+-dependent activity was relatively low at this pH range. Ouabain (0.1 mM) inhibited K+-dependent activity 50%; a concentration 10 times higher did not produce any appreciable effect on the K+-independent activity. Na+ did not affect K+-independent activity at all, while the same ligand concentration inhibited sharply the K+-dependent activity; this inhibition was not competitive with the substrate,p-nitrophenyl phosphate. K+-dependent activity was stimulated by Mg2+ with low affinity (millimolar range), and 3 mM Mg2+ produced a slight stimulation of the activity in absence of K+, which could be interpreted as Mg2+ occupying the K+ sites. Ca2+ had no appreciable effect on the activity in the absence of K+. However, in the presence of K+ a sharp inhibition was found with all Ca2+ concentrations studied. ATP (0.5 mM) did not affect the K+-independent activity, but this nucleotide behaved as a competitive inhibitor top-nitrophenylphosphate. Pi inhibited activity in the presence of K+, competively to the substrate, so it could be considered as the second product of the reaction sequence.Abbreviations used p-NPP p-nitrophenylphosphate - p-NPPase rho-nitrophenylphosphatase activity  相似文献   

18.
Summary The original lead-trapping method for demonstrating Na+–K+-ATPase activity was discredited because of the effect that lead ions can have on the substrate and on the enzyme. Current methods, that measure this activity by the related K+-dependent phosphatase activity, do not appear to measure activity that is known, from microchemistry, to occur in proximal convoluted tubules. The disadvantages of using lead appear to have been overcome by the use of a new reagent in which the lead is complexed with ammonium citrate ions; phosphate, liberated enzymatically, successfully competes with these ions. The activities of total ATPase and of the ouabain sensitive Na+–K+-ATPase have been measured in three regions of the nephron in the guinea-pig and in the rat. The relative activities found, by this method, in the different regions of the latter, appear to be comparable with results found by others, using microchemical methods applied to isolated regions of the nephron.  相似文献   

19.
Ouabain activation of the phosphatase associated with Na+,K+-ATPase is a time-dependent process which is stimulated by ATP and other nucleotides. Further stimulation by Na+ is observed under certain conditions. The stimulatory effect of ATP was found to be due to an increase in the affinity of the enzyme for ouabain. The time required for maximal ouabain activation to be achieved was decreased by ATP and further decreased by ATP + Na+.These conditions for maximal activation by ouabain are similar to those required for maximal ouabain binding and suggest that the same ouabain site is responsible for activation of Mg2+-dependent phosphatase and for inhibition of Na+,K+-ATPase and K+-phosphatase.  相似文献   

20.
The subcellular distribution of NADP+ and NAD+-dependent glucose-6-phosphate and galactose-6-phosphate dehydrogenases were studied in rat liver, heart, brain, and chick brain. Only liver particulate fractions oxidized glucose-6-phosphate and galactose-6-phosphate with either NADP+ or NAD+ as cofactor. While all of the tissues examined had NADP+-dependent glucose-6-phosphate dehydrogenase activity, only rat liver and rat brain soluble fractions had NADP+-dependent galactose-6-phosphate dehydrogenase activity. Rat liver microsomal and rat brain soluble galactose-6-phosphate dehydrogenase activities were kinetically different (Km's 0.5 mm and 10 mm, respectively, for galactose-6-phosphate), although their reaction products were both 6-phosphogalactonate. Rat brain subcellular fractions did not oxidize 6-phosphogalactonate with either NADP+ or NAD+ cofactors but phosphatase activities hydrolyzing 6-phosphogalactonate, galactose-6-phosphate and galactose-1-phosphate were found in crude brain homogenates. In addition, galactose-6-phosphate and 6-phosphogalactonate were tested as inhibitors of various enzymes, with largely negative results, except that 6-phosphogalactonate was a competitive inhibitor (Ki = 0.5 mM) of rat brain 6-phosphogluconate dehydrogenase.  相似文献   

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