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1.
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   

2.
  • 1.1. Homogenates of gills from the freshwater shrimp M. amazonicum exhibit the following ATPase activities: (i) a basal, Mg2+-dependent ATPase; (ii) an ouabain-sensitive, Na+ + K+-stimulated ATPase; (iii) an ouabain-insensitive, Na+-stimulated ATPase; and (iv) an ouabain-insensitive, K+-stimulated ATPase.
  • 2.2. K+ suppresses the Na+-stimulated ATPase activity in a mixed-type kind of inhibition, whereas Na+ does not exert any noticeable effect on the K+-stimulated ATPase activity.
  • 3.3. The Na+- and the K+-stimulated ATPase activities are totally inhibited by 5 mM ethacrynic acid in the incubation medium.
  • 4.4. The Na+- and the K+-stimulated ATPase activities are not expressions of the activation of a Ca-ATPase.
  • 5.5. The possible localization and roles of the described ATPases within the gill epithelium are briefly discussed and evaluated.
  相似文献   

3.
Differential centrifugation of oxyntic cell homogenates yielded microsomal fractions which contained large amounts of mitochondrial membrane. The presence of marker enzymes (succinate dehydrogenase and cytochrome c oxidase) indicated that mitochondrial contamination of crude microsomes ranged from 20 to 60% in different preparations. A discontinuous sucrose density gradient procedure was developed for the routine preparation of purified oxyntic cell microsomes. A K+-stimulated, Mg2+-requiring ATPase was localized in these purified membranes and coincided with the presence of a K+-stimulated p-nitrophenylphosphatase. Na+ and ouabain had no effect on the K+ stimulation of the microsomal ATPase. The apparent activation constant for K+ was approximately 1 mM at pH 7.5, the optimal pH for stimulation.An anion-sensitive ATPase has been widely studied in gastric microsomal preparations. We found that the basal microsomal ATPase (i.e. without K+) and the mitochondrial ATPase were inhibited by SCN? and enhanced by HCO3?, however, the K+-stimulated component of the microsomal ATPase was virtually unaffected by these anions.  相似文献   

4.
Endogenous phospholipids of a purified (NaK)-ATPase were displaced by exogenous phosphatidyl choline. If vesicles were made from phosphatidyl choline and enzyme containing only phosphatidyl choline, coupled Na+K+ transport could be demonstrated. This transport was inhibitable by ouabain. Therefore, the number of components necessary for Na+K+ transport has been reduced to the purified (NaK)-ATPase and one phospholipid.  相似文献   

5.
A Na+-specific and Na+-stimulated active α-aminoisobutyric acid transport system was reconstituted from plasma membranes isolated from mouse fibroblast BALB/c 3T3 cells transformed by simian virus 40. The plasma membranes were treated with dimethylmaleic anhydride and then extracted with 2% cholate. The cholate-solubilized supernatant proteins were combined with exogenous phospholipids and eluted through a Sephadex G-50 column. This yielded reconstituted vesicles which in the presence of Na+ could actively transport α-aminoisobutyric acid as shown by the transient accumulation above the equilibrium level (overshoot). The overshoot was not obtained with other monovalent cations such as K+, Li+, and choline+. The electrochemical effect of the lipophilic anion, SCN?, led to greater α-aminoisobutyric acid uptake as compared to that observed with Cl? or SO42?. The Na+-stimulated transport of a-aminoisobutyric acid was a saturable process with an apparent Km of 2 mm. Studies of the inhibition of α-aminoisobutyric acid transport by other amino acids showed that methylaminoisobutyric acid [specifically transported by A system (alanine preferring)]had a pronounced inhibitory effect on a-aminoisobutyric acid uptake in contrast to the slight inhibitory effect produced by phenylalanine [primarily transported by L system (leucine preferring)]. The results show that the reconstituted vesicles, prepared from partially purified membrane proteins and exogenous phospholipids, regained the same important transport properties of native membrane vesicles, i.e., Na+-specific and Na+-stimulated concentrative α-aminoisobutyric acid uptake.  相似文献   

6.
The (Na+ + K+)-stimulated ATPase activity decreases with increasing pressure and a plot of the logarithm of the activity versus pressure shows a change in slope at a defined breakpoint pressure (Pb). The value of Pb increases linearly with increasing temperature. A dTdP value of 27.7 ± 0.4 (S.D.) K/1000 atm is obtained. This is in very good agreement with the pressure shift for the melting transitions in phospholipids and aliphatic chains. This strongly indicates that an aliphatic chain melting process is involved in the breakpoint in the Arrhenius plot and pressure dependence of (Na+ + K+)-ATPase. The p-nitrophenyl phosphatase activity of this enzyme also decreases with pressure. In this case the plot of the logarithm of the activity versus pressure is linear without a break-point. The temperature dependence for (Na+ + K+)-ATPase was also studied in the presence of fluidizing drugs: desipramine and benzylalcohol. The presence of these drugs had no effect on the inflection point in the Arrhenius plot.  相似文献   

7.
The involvement of membrane (Na+ + K+)-ATPase (Mg2+-dependent, (Na+ + K+)-activated ATP phosphohydrolase, E.C. 3.6.1.3) in the oxygen consumption of rat brain cortical slices was studied in order to determine whether (Na+ + K+)-ATPase activity in intact cells can be estimated from oxygen consumption. The stimulation of brain slice respiration with K+ required the simultaneous presence of Na+. Ouabain, a specific inhibitor of (Na+ + K+)-ATPase, significantly inhibited the (Na+ + K+)-stimulation of respiration. These observations suggest that the (Na+ + K+)-stimulation of brain slice respiration is related to ADP production as a result of (Na+ + K+)-ATPase activity. However, ouabain also inhibited non-K+-stimulated respiration. Additionally, ouabain markedly reduced the stimulation of respiration by 2,4-dinitrophenol in a high (Na+ + K+)-medium. Thus, ouabain depresses brain slice respiration by reducing the availability of ADP through (Na+ + K+)-ATPase inhibition and acts additionally by increasing the intracellular Na+ concentration. These studies indicate that the use of ouabain results in an over-estimation of the respiration related to (Na+ + K+)-ATPase activity. This fraction of the respiration can be estimated more precisely from the difference between slice respiration in high Na+ and K+ media and that in choline, K+ media. Studies were performed with two (Na+ + K+)-ATPase inhibitors to determine whether administration of these agents to intact rats would produce changes in brain respiration and (Na+ + K+)-ATPase activity. The intraperitoneal injection of digitoxin in rats caused an inhibition of brain (Na+ + K+)-ATPase and related respiration, but chlorpromazine failed to alter either (Na+ + K+)-ATPase activity or related respiration.  相似文献   

8.
Liposomes containing either purified or microsomal (Na+,K+)-ATPase preparations from lamb kidney medulla catalyzed ATP-dependent transport of Na+ and K+ with a ratio of approximately 3Na+ to 2K+, which was inhibited by ouabain. Similar results were obtained with liposomes containing a partially purified (Na+,K+-ATPase from cardiac muscle. This contrasts with an earlier report by Goldin and Tong (J. Biol. Chem. 249, 5907–5915, 1974), in which liposomes containing purified dog kidney (Na+,K+)-ATPase did not transport K+ but catalyzed ATP-dependent symport of Na+ and Cl?. When purified by our procedure, dog kidney (Na+,K+)-ATPase showed some ability to transport K+ but the ratio of Na+ : K+ was 5 : 1.  相似文献   

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.
Treatment of a purified (Na+ + K+)-ATPase preparation from dog kidney with digitonin reduced enzymatic activity, with the (Na+ + K+)-ATPase reaction inhibited more than the K+-phosphatase reaction that is also catalyzed by this enzyme. Under the usual assay conditions oligomycin inhibits the (Na+ + K+)-ATPase reaction but not the K+-phosphatase reaction; however, treatment with digitonin made the K+-phosphatase reaction almost as sensitive to oligomycin as the (Na+ + K+)-ATPase reaction. The non-ionic detergents, Triton X-100, Lubrol WX and Tween 20, also conferred sensitivity to oligomycin on the K+-phosphatase reaction (in the absence of oligomycin all these detergents, unlike digitonin, inhibited the K+-phosphatase reaction more than the (Na+ + K+)-ATPase reaction). Both digitonin and Triton markedly increased the K0.5 for K+ as activator of the K+-phosphatase reaction, with little effect on the K0.5 for K+ as activator of the (Na+ + K+)-ATPase reaction. In contrast, increasing the K0.5 for K+ in the K+-phosphatase reaction by treatment of the enzyme with acetic anhydride did not confer sensitivity to oligomycin. Both digitonin and Triton also increased the inhibition of the K+-phosphatase reaction by ATP and decreased the inhibition by inorganic phosphate and vanadate. These observations are interpreted as digitonin and Triton favoring the E1 conformational state of the enzyme (manifested by sensitivity to oligomycin and a greater affinity for ATP at the low-affinity substrate sites), as opposed to the E2 state (manifested by insensitivity to oligomycin, greater sensitivity to phosphate and vanadate, and a lower K0.5 for K+ in the K+-phosphatase reaction). In addition, digitonin blocked activation of the phosphatase reaction by Na+ plus CTP. This effect is consistent with digitonin dissociating the catalytic subunits of the enzyme, the interaction of which may be essential for activation by Na+ plus nucleotide.  相似文献   

11.
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   

12.
Treatment of hog gastric microsomes with the sulfhydryl reagent, thimerosal (ethylmercurithiosalicylate), produced differential effects on the K+-ATPase and the K+-stimulated p-nitrophenylphosphatase activities. For example, exposure to 2 mM thimerosal for 3 min severely reduced the activity of K+-stimulated ATPase, while K+-p-nitrophenylphosphatase activity was enhanced 2- to 3-fold. Higher concentration of thimerosal, or longer incubation times, also led to inhibition of K+-p-nitrophenylphosphatase. The activated state of p-nitrophenylphosphatase could be sustained by a 20-fold, or greater, dilution of treated membranes, and could be reversed by reduction of membrane SH groups by exogenous thiols. Significant activation of K+-p-nitrophenylphosphatase was not produced by p-chloromercuribenzene sulfonate, p-chloromercuribenzoate or mersalyl; however, ethyl mercuric chloride had qualitatively similar activity effects as thimerosal. Kinetics of K+-p-nitrophenylphosphatase for thimerosal-treated membranes were altered as follows: V increased; Km for p-nitrophenylphosphate unchanged for Ka for K+ increased. ATP, which is a potent inhibitor of K+-p-nitrophenylphosphatase activity in native membranes (KI ≈ 200 μM). These data suggest that there are multiple SH groups which differentially influence the gastric K+-stimulated ATPase activity. Defined treatments with thimerosal are interpreted as an uncoupling of the K+-stimulated phosphatase component of the enzyme (for which p-nitrophenylphosphatase is a presumed model reaction). Such differential modifications can be usefully applied to the study of partial reactions of the enzyme and their specific role in the related H+-transport reaction.  相似文献   

13.
J. Barber  Y. J. Shieh 《Planta》1973,111(1):13-22
Summary The rate of Na+/Na+ exchange as measured with 24Na+ in Na+-rich cells of Chlorella pyrenoidosa is governed by a single rate constant and saturates with increasing external Na+ concentration. The K mvalue for this process is 0.8 mM Na+ and the maximum rate of exchange in illuminated cells is about 5 pmoles cm-2 sec-1. These values contrast with a K mof 0.18 mM K+ and maximum rate of about 17 pmoles K+·cm-2·sec-1 for net K+ influx. Although the Na+/Na+ exchange was only slightly sensitive to light it was inhibited by the uncouplers CCCP and DNP and by the energy transfer inhibitor DCCD. This inhibition of the rate of Na+/Na+ exchange was not accompanied by a loss of internal Na+. Both the effect of external K+ on 24Na+ influx into Na+-rich cells and the inhibition of net K+ uptake by the presence of external Na+ indicates that Na+/Na+ and K+/Na+ exchanges share the same carrier and that the external site of this carrier has a three to four times higher affinity for K+ over Na+.  相似文献   

14.
T Akera  K Takeda  S Yamamoto  T M Brody 《Life sciences》1979,25(21):1803-1811
Vanadate has been shown to be a potent inhibitor of isolated Na+,K+-ATPase. Since the inhibition of this enzyme system has been implicated in a mechanism for the positive inotropic action of cardiac glycosides, the cardiac actions of vanadate were examined in connection with its action on Na+,K+-ATPase. Vanadate inhibited isolated Na+,K+-ATPase obtained from various tissues. The differences in the vanadate sensitivity due to enzyme source were relatively small. K+-stimulated phosphatase activity was more sensitive than Na+,K+-stimulated ATP hydrolysis. The compounds was more potent than phosphate in supporting [3H] oubain binding in the presence of Mg2+, indicating a higher affinity of the enzyme for vanadate. It, however, failed to inhibit oubain sensitive 86Rb uptake in electrically stimulated atrial muscle of guinea-pig hearts in concentrations which would inhibit isolated Na+,K+-ATPase. These latter concentrations of vanadate also failed to produce positive inotropic effects in electrically stimulated left atrial preparations of guinea-pig hearts. Higher concentrations produced marked negative inotropic effects associated with a shortening of the action potential duration. These results indicate that vanadate is a potent inhibitor of isolated Na+,K+-ATPase, but cannot inhibit the enzyme in intact myocardial cells or produce positive inotropic effects when applied extracellularly. Inhibitory sites on the enzyme are probably located at the internal surface of the cell membrane which are normally inaccessible to vanadate in intact tissue.  相似文献   

15.
The importance of astrocytic K+ uptake for extracellular K+ ([K+]e) clearance during neuronal stimulation or pathophysiological conditions is increasingly acknowledged. It occurs by preferential stimulation of the astrocytic Na+,K+-ATPase, which has higher Km and Vmax values than its neuronal counterpart, at more highly increased [K+]e with additional support of the cotransporter NKCC1. Triggered by a recent DiNuzzo et al. paper, we used administration of the glycogenolysis inhibitor DAB to primary cultures of mouse astrocytes to determine whether K+ uptake required K+-stimulated glycogenolysis. KCl was increased by either 5 mM (stimulating only the Na+,K+-ATPase) or 10 mM (stimulating both transporters) in glucose-containing saline media prepared to become iso-osmotic after the addition. DAB completely inhibited both uptakes, the Na+,K+-ATPase-mediated by preventing Na+ uptake for stimulation of its intracellular Na+-activated site, and the NKCC1-mediated uptake by inhibition of depolarization- and L-channel-mediated Ca2+ uptake. Drugs inhibiting the signaling pathways involved in either of these processes also abolished K+ uptake. Assuming similar in vivo characteristics, partly supported by literature data, K+-stimulated astrocytic K+ uptake must discontinue after normalization of extracellular K+. This will allow Kir1.4-mediated release and reuptake by the less powerful neuronal Na+,K+-ATPase.  相似文献   

16.
(H+ + K+)-ATPase-enriched membranes were prepared from hog gastric mucosa by sucrose gradient centrifugation. These membranes contained Mg2+-ATPase and p-nitrophenylphosphatase activities (68 ± 9 μmol Pi and 2.9 ± 0.6 μmol p-nitrophenol/mg protein per h) which were insensitive to ouabain and markedly stimulated by 20 mM KCl (respectively, 2.2- and 14.8-fold). Furthermore, the membranes autophosphorylated in the absence of K+ (up to 0.69 ± 0.09 nmol Pi incorporated/mg protein) and dephosphorylated by 85% in the presence of this ion. Membrane proteins were extracted by 1–2% (w/v) n-octylglucoside into a soluble form, i.e., which did not sediment in a 100 000 × g × 1 h centrifugation. This soluble form precipitated upon further dilution in detergent-free buffer. Extracted ATPase represented 32% (soluble form) and 68% (precipitated) of native enzyme and it displayed the same characteristic properties in terms of K+-stimulated ATPase and p-nitrophenylphosphatase activities and K+-sensitive phosphorylation: Mg2+-ATPase (μmol Pi/mg protein per h) 32 ± 9 (basal) and 86 ± 20 (K+-stimulated); Mg2+-p-nitrophenylphosphatase (μmol p-nitrophenol/mg protein per h) 2.6 ± 0.5 (basal) and 22.2 ± 3.2 (K+-stimulated); Mg2+-phosphorylation (nmol Pi/mg protein) 0.214 ± 0.041 (basal) and 0.057 ± 0.004 (in the presence of K+). In glycerol gradient centrifugation, extracted enzyme equilibrated as a single peak corresponding to an apparent 390 000 molecular weight. These findings provide the first evidence for the solubilization of (H+ + K+)-ATPase in a still active structure.  相似文献   

17.
18.
Sugar beet leaf homogenate contains Mg2+-stimulated ATPase activity with the highest specific activity in the 25,000–30,000 ×g-fraction. This fraction also has (Na++ K+)-activated ATPase activity. Both activities have two pH optima, one stable at pH 7.9 and one variable at lower pH. When optimal conditions of Na+ and K+ were tested with 64 combinations of these ions, at least two mountains of activity were revealed. The (Na++ K+)-ATPase had a high specificity for ATP. It had lost about 50% of its original activity after 56 days of storage at ?85°C. The activity drop was most pronounced at high ionic concentrations in the test medium. The (Na++ K+)-ATPase shows four peaks of activity when tested at constant ionic strength. The idea is put forward that the four peaks reflect two ATPases, one in the tonoplast and one in the plasmalemma, which undergo conformational changes in relation to the ionic milieu.  相似文献   

19.
Reducing Na+ accumulation and maintaining K+ stability in plant is one of the key strategies for improving salt tolerance. AtHKT1;1 and AtSOS1 are not only the salt tolerance determinants themselves, but also mediate K+ uptake and transport indirectly. To assess the contribution of AtHKT1;1 and AtSOS1 to Na+ homeostasis and K+ nutrition in plant, net Na+ and K+ uptake rate, Na+ and K+ distributions in Arabidopsis thaliana wild type (WT), hkt1;1 mutant (athkt1;1) and sos1 mutant (atsos1) were investigated. Results showed that under 2.5 mM K+ plus 25 or 100 mM NaCl, athkt1;1 shoot concurrently accumulated more Na+ and less K+ than did WT shoot, suggesting that AtHKT1;1 was critical for controlling Na+ and K+ distribution in plant; while atsos1 root accumulated more Na+ and absorbed lower K+ than did WT root, implying that AtSOS1 was determiner of Na+ excretion and K+ acquisition. Under 0.01 mM K+, athkt1;1 absorbed lower Na+ than did WT with 100 mM NaCl, suggesting that AtHKT1;1 is involved in Na+ uptake in roots; while atsos1 shoot accumulated less Na+ than did WT shoot no matter with 25 or 100 mM NaCl, implying that AtSOS1 played a key role in controlling long-distance Na+ transport from root to shoot. We present a model in which coordination of AtHKT1;1 and AtSOS1 facilitates Na+ and K+ homeostasis in A. thaliana under salt stress: under the normal K+, the major function of AtHKT1;1 is Na+ unloading and AtSOS1 is mainly involved in Na+ exclusion, whereas under the low K+, AtHKT1;1 may play a dominant role in Na+ uptake and AtSOS1 may be mainly involved in Na+ loading into the xylem.  相似文献   

20.
《Insect Biochemistry》1991,21(7):749-758
The present study confirms previous reports of the presence of (Na+ + K+)-ATPase and anion-stimulated ATPase activity in Malpighian tubules of Locusta. In addition, the presence of a K+-stimulated, ouabain-insensitive ATPase activity has been identified in microsomal fractions. Differential and sucrose density-gradient centrifugation of homogenates has been used to separate membrane fractions which are rich in mitochondria, apical membranes and basolateral membranes; as indicated by the presence of succinate dehydrogenase and the presence or absence of non-specific alkaline phosphatase activity, respectively. Relatively high specific (Na+ + K+)-ATPase activity was associated with the basolateral membrane-rich fractions with only low levels of this activity being associated with the apical membrane-rich preparation. K+-stimulated ATPase activity was also associated, predominantly, with the basolateral membrane-rich fractions. However, comparison of the distribution of this activity with that of the (Na+ + K+)-ATPase suggests that the two enzymes did not co-separate. The possibility that the K+-stimulated ATPase was not associated with the basolateral plasma membrane is discussed.Anion-stimulated ATPase activity was found in the apical and basolateral membrane-rich fractions and in the fraction contaning mainly mitochondria. Nevertheless, the fact that this bicarbonate-stimulated activity did not co-separate with succinate dehydrogenase activity suggests that it was not exclusively mitochondrial in origin. These results are consistent with physiological studies indicating a basolateral (Na+ + K+)-ATPase but do not support the K+-stimulated ATPase as a candidate for the apical electrogenic pump. The possible role of the bicarbonate-stimulated ATPase activity in ion transport across both the basolateral and apical cell membranes is discussed.  相似文献   

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