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1.
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   

2.
3.
Crude subcellular fractions from rat uterus contain a HCO-3 -stimulated Mg2+ -ATPase with properties analogous to those previously reported for the enzyme in gastric mucosa, pancreas, salivary gland and liver lyosome. Estradiol-17 beta treatment of ovariectomized rats resulted in an increase in uterine mitochondrial (HCO-3 +Mg2+)-ATPase and Mg2+ -ATPase activity. In an early response (105 min) to estradiol-17 beta treatment of ovariectomized rats, the lysosomal enzyme, beta-N-acetylglucosaminidase increased in the nuclear and mitochondrial fractions and decreased in the microsomal and supernatant fractions.  相似文献   

4.
Membrane Ca2+-ATPase activity was stimulated in vitro separately by T4 (10−10 M) and by epinephrine (10−6 M). In the presence of a fixed concentration of T4, additions of 10−8 and 10−6 M epinephrine reduced the T4 effect on the enzyme. β-Adrenergic blockade with propranolol (10−6 M) prevented stimulation by epinephrine of Ca2+-ATPase activity, but did not prevent the suppressive action of epinephrine on T4-stimulable Ca2+-ATPase. In contrast α1-adrenergic blockade with unlabelled prazosin restored the effect of T4 on Ca2+-ATPase activity in the presence of epinephrine. Like propranolol, prazosin prevented enhancement of enzyme activity by epinephrine in the absence of thyroid hormone. Neither prazosin nor propranolol had any effect on the stimulations by T4 of red cell Ca2+-ATPase in the absence of epinephrine. Analysis of radiolabelled prazosin binding to human red cell membranes revealed the presence of a single class of high-affinity binding sites (Kd, 1.2 × 10−8 M; Bmax, 847 fmol/mg membrane protein). Thus, the human erythrocyte membrane contains α1-radrenergic receptor sites that are capable of regulating Ca2+-ATPase activity.  相似文献   

5.
Properties of Cl-stimulated Mg2+-ATPase in the brain plasma membranes of the bream Abramis brama L. were studied; this enzyme is composed of basal Mg2+-ATPase activity that can be stimulated by 40–80% by Cl ions (Cl-ATPase). These anions stimulate the basal Mg2+-ATPase starting with 8 mM concentration, their maximal effect being observed at a concentration of 30–100 mM. The Cl-ATPase activity was found at a low molarity of HEPES-Tris buffer (< 30 mM) but was not revealed at a high molarity (> 30 mM). The basal Mg2+-ATPase activity was detected in the whole studied pH range (5.5–9.0), with maximum at pH 7.2–7.8 values, whereas optimum to reveal Cl-ATPase was at high and low H+ concentrations (pH 6.0 and 8.5, respectively). At physiological pH values (7.2–7.5) the Cl-ATPase activity was not revealed, but was detected after preincubation of the enzyme with 10 µM GABA. The basal Mg2+-ATPase, like Cl-ATPase, hydrolyzed ATP with a maximal rate, while CTP, ITP, and ADP only slightly, and did not hydrolyze GTP and AMP. The Cl-ATPase activity decreased in the presence of divalent cations in the following order: Mg2+ > Co2+ > Mn2+ = Cd2+ > Al3+ = Cu2+, and it was not found in the presence of Ca2+ and Zn2+. Anions of halogen series activated the basal Mg2+-ATPase in the descending order: Cl > Br > J > F. Among other monovalent anions, HCO3 activated the enzyme, NO3 practically had no effect, and SCN inhibited its activity. Blockers of Cl transport (ethacrinic acid, furosemide, and SITS) and GABA-receptor ligands (pentobarbital, diazepam, and picrotoxin) suppressed the enzyme activity. Out of SH-reagents, PCMB inhibited the enzyme, while NEM did not affect it. The H+-ATPase blocker oligomycin inhibited the enzyme, while the blocker of Na+,K+-ATPase ouabain and the blocker of Ca2+,Mg2+-ATPase ruthenium red had no effect. The properties of the Cl-stimulated Mg2+-ATPase of fish brain are discussed in comparison with those of the rat brain Cl-ATPase. The conclusion is made that the bream brain enzyme differs markedly from Cl-ATPase (the ATP-dependent Cl-pump) of mammalian brain.  相似文献   

6.
Action of Cl? + HCO3 ?1 ions on Mg2+-ATPase from brain plasma membranes of fish and rats has been studied. Maximal effect of the anions on the “basal” Mg2+-ATPase activity is revealed in the presence of 10 mM Cl? and 3 mM HCO3 ?1 at physiological values of pH of incubation medium. The studied Cl?, HCO3 ?-activated Mg2+-ATPases of both animal species, by their sensitivity to SH-reagents (5,5-dithio-bis-nitrobenzoic acid, N-ethylmaleimide), oligomycin, and orthovanadate, are similar to transport ATPase of the P-type, but differ from them by molecular properties and by sensitivity to ligands of GABAA-receptors. It has been established that the sensitive to GABAA-ergic ligands, Cl?, HCO3 ?-activated Mg2+-ATPase from brain of the both animal species is protein of molecular mass around 300 kDa and of Stock’s radius 5.4 nm. In fish the enzyme is composed of one major unit of molecular mass approximately 56 kDa, while in rats-of three subunits of molecular masses about 57, 53, and 45 kDa. A functional and structural coupling of the ATP-hydrolyzing areas of the studied enzyme to sites of binding of GABAA-receptor ligands is suggested.  相似文献   

7.
1. (1) VO3 combines with high affinity to the Ca2+-ATPase and fully inhibits Ca2+-ATPase and Ca2+-phosphatase activities. Inhibition is associated with a parallel decrease in the steady-state level of the Ca2+-dependent phosphoenzyme.
2. (2) VO3 blocks hydrolysis of ATP at the catalytic site. The sites for VO3 also exhibit negative interactions in affinity with the regulatory sites for ATP of the Ca2+-ATPase.
3. (3) The sites for VO3 show positive interactions in affinity with sites for Mg2+ and K+. This accounts for the dependence on Mg2+ and K+ of the inhibition by VO3. Although, with less effectiveness, Na+ substitutes for K+ whereas Li+ does not. The apparent affinities for Mg2+ and K+ for inhibition by VO3 seem to be less than those for activation of the Ca2+-ATPase.
4. (4) Inhibition by VO3 is independent of Ca2+ at concentrations up to 50 μM. Higher concentrations of Ca2+ lead to a progressive release of the inhibitory effect of VO3.
Keywords: Ca2+-ATPase; Vanadate inhibition; K+; Li+; (Red cell membrane)  相似文献   

8.
Effects of γ-aminobutyric acid (GABA) and ethanol on Mg2+-ATPase from mitochondrial and microsomal fractions of the fish brain were studied. GABA (10-8–10-4 M) activates microsomal Mg2+-ATPase, but has no effect on the mitochondrial enzyme activity. This effect of GABA on the microsomal Mg2+-ATPase was absent in the presence of 8% ethanol. Ethanol at 1– 10% concentrations inhibits the basal microsomal Mg2+-ATPase and has no effect on the mitochondria enzyme. Using cytochemical technique, Mg2+-ATPase was revealed both in neurons and in glial cells. The ethanol-sensitive Mg2+-ATPase is located in the area of synaptic junctions and is bound to plasma, vesicular, and smooth endoplasmic reticulum membranes.  相似文献   

9.
ATPases of cardiac cells are known to be among the most important enzymes to maintain the fluxes of vital cations by hydrolysis of the terminal high-energy phosphate of ATP. Biochemically the activities of Ca2+-pump ATPase, Ca2+/Mg2+-ecto ATPase, Na+,K+-ATPase and Mg2+-ATPase are determined in homogenates and isolated membranes as well as in myofibrillar and mitochondrial fractions of various purities. Such techniques permit estimation of enzyme activitiesin vitro under optimal conditions without precise enzyme topography. On the other hand, cytochemical methods demonstrate enzyme activityin situ, but not under optimal conditions. Until recently several cytochemical methods have been employed for each enzyme in order to protect its specific activity and precise localization but the results are difficult to interpret. To obtain more consistent data from biochemical and cytochemical point of view, we modified cytochemical methods in which unified conditions for each ATPase were used. The fixative solution (1% paraformaldehyde –0.2% glutaraldehyde in 0.1 M Tris Base buffer, pH 7.4), the same cationic concentrations of basic components in the incubation medium (0.1 M Tris Base, 2mM Pb(NO2)3, 5 mM MgSO4, 5 mM ATP) and selective stimulators or inhibitors were employed. The results reveal improved localization of Ca2+-pump ATPase, Na+–K+ ATPase and Ca2+/Mg2+-ecto ATPase in the cardiac membrane.  相似文献   

10.
ATP and adenylylimidodiphosphate (AdoPP[NH]P) bind to (Na+ + K+)-ATPase in the absence of Mg2+ (EDTA present) with a homogeneous but 15-fold different affinity, the Kd values being 0.13 μM and 1.9 μM, respectively. The binding capacities of the two nucleotides are nearly equal and amount to 3.9 and 4 nmol/mg protein or 1.7 and 1.8 mol/mol (Na+ + K+)-ATPase, respectively. The Kd value for ATP is equal to the Km for phosphorylation by ATP (0.05–0.25 μM) and the binding capacity is equivalent to the phosphorylation capacity of 1.8 mol/mol (Na+ + K+)-ATPase. Hence, the enzyme contains two high-affinity nucleotide binding and phosphorylating sites per molecule, or one per α-subunit. Additional low-affinity nucleotide binding sites are elicited in the presence of Mg2+, as shown by binding studies with the non-phosphorylating (AdoPP[NH]P). The Kd and binding capacity for AdoPP[NH]P at these sites is dependent on the Mg2+ concentration. The Kd increases from 0.06 mM at 0.5 mM Mg2+ to a maximum of 0.26 mM at 2 mM Mg2+ and the binding capacity from 1.5 nmol/mg protein at 0.5 mM Mg2+ to 3.3 nmol/mg protein at 4 mM Mg2+. Extrapolation of a double reciprocal plot of binding capacity vs. total Mg2+ concentration yields a maximal binding capacity at infinite Mg2+ concentration of 3.8 nmol/mg protein or 1.7 mol/mol (Na+ + K+)-ATPase. The Kd for Mg2+ at the sites, where it exerts this effect, is 0.8 mM. The Kd for the high-affinity sites increases from 1.5–1.9 μM in the absence of Mg2+ to a maximum of 4.2 μM at 2 mM Mg2+ concentration. The binding capacity of these sites (1.8 mol/mol enzyme) is independent of the Mg2+ concentration. Hence, Mg2+ induces two low-affinity non-phosphorylating nucleotide binding sites per molecule (Na+ + K+)-ATPase in addition to the two high-affinity, phosphorylating nucleotide binding sites.  相似文献   

11.
Summary To determine whether kidney membrane fractions contain an extramitochondrial anion-stimulated ATPase, we compared the pharmacological and kinetic properties of HCO3-ATPase activities in mitochondrial and microsomal fractions prepared from rabbit kidney cortex and outer medulla. The results indicated that this activity differed markedly in each type of fraction. Microsomal HCO3-ATPase was less sensitive than mitochondrial ATPase to azide, oligomycin, DCCD and thiocyanate, but was more sensitive to filipin and displayed different dependency towards ATP, magnesium and pH. Microsomal ATPase activity was stimulated by sulfite much more strongly than by bicarbonate, whereas mitochondrial activity was stimulated by both these anions to a similar extent. These results demonstrate the presence of an extramitochondrial HCO3-ATPase in kidney membrane fractions. HCO3-ATPase was also measured in single microdissected segments of the rabbit nephron using a radiochemical microassay previously developed for tubular Na, K-ATPase activity. An enzyme with the pharmacological and kinetic properties of the microsomal enzyme was detected in both proximal tubule, distal convoluted tubule and collecting duct, but the thick ascending limb was devoid of any detectable activity. Long-term DOCA administration markedly increased HCO3-ATPase activity in the distal convoluted and collecting tubule. The insensitivity of microsomal HCO3-ATPase to vanadate indicates that it belongs to the F0–F1 class of ATPases, and might therefore be involved in proton transport. This hypothesis is also supported by the localization of tubular HCO3-ATPase activity at the sites of urinary acidification.  相似文献   

12.
α-Ketobutyrate decarboxylase encoded in the -methionine catabolism operon of Pseudomonas putida is homologous with the E1 component of pyruvate dehydrogenase complex from gram-negative bacteria. The enzyme was purified to homogeneity from the cell extract of an Escherichia coli transformant. The purified enzyme was homodimeric with a subunit of Mr 93,000 on SDS-PAGE. The enzyme activity was activated by the addition of both thiamine pyrophosphate (TPP) and a divalent cation, such as Mg2+, Mn2+, and Co2+. The enzyme showed high activity for α-ketobutyrate and α-keto-n-valerate rather than pyruvate, but the α-keto acids with increasing length of the side chain as well as branching, such as α-keto-n-caproate and α-keto-3-methylvalerate, were not used by the enzyme. The Km values for α-ketobutyrate and pyruvate were 0.016 and 0.147 mM, respectively, and the kcat/Km value (10.69 s−1 mM−1) for α-ketobutyrate was 29-fold greater than that for pyruvate. Thus, α-ketobutyrate decarboxylase is distinguished from the pyruvate dehydrogenase E1 component with respect to the substrate specificity, although their structural and enzymological properties were similar. These results suggest that the unique substrate specificity of α-ketobutyrate decarboxylase is due to a slight difference in the highly conserved active sites of both enzymes.  相似文献   

13.
The effect of glycine and strychnine on Mg2+-ATPase from the microsomal fraction of the bream (Abramis bramaL.) brain was studied. The glycine in the concentration range 10–7–10–4M activates the enzyme. The effect of glycine on Mg2+-ATPase is obviated by 100 M strychnine. The strychnine in the concentration range 5–90 M activates the basal Mg2+-ATPase but decreases the effect of the enzyme activation by 10–4M glycine. The effect of Clon Mg2+-ATPase depends on the substrate concentration (Mg2+-ATP) and is not observed in the presence of 100 M strychnine. A receptor-dependent pathway of glycine and strychnine action on Cl-activated Mg2+-ATPase from bream brain microsomes is proposed.  相似文献   

14.
The present experiments report the effects of estradiol or of progesterone on the activity of 15-prostaglandin-dehydrogenase (PGDH) in the uterus of spayed rats. When the substrate was PGF the treatment with progesterone (4 mg.day−1, two days) or with estradiol-17-beta (0.5 ug + 1 ug) did not show any effect on the activity of the enzyme. On the contrary, uteri from ovariectomized rats injected with a higher dose of estradiol- 17-beta (0.5 ug + 50 ug) exhibited a significant increment. When the substrate was PGE2, progesterone failed again to modify the enzyme activity, whereas estradiol, both at a low and at a high doses, enhanced significantly the uterine PGDH activity. The possibility of two different PGDHs for each PG and the role of estradiol in enhancing PGE2 catabolism into 15-keto- PGE2 as a mechanism subserving the effect of estrogens on the output of this PG in the rat uterus, are discussed.  相似文献   

15.
C J Duncan 《Life sciences》1975,16(6):955-965
A Mg2+Na+K+ATPase was found in a ghost preparation from rabbit erythrocytes, a finding in conflict with previous reports, but in agreement with the known kinetics of cation movements in these cells. However the Mg2+Na+K+ATPase was not inhibited by 10−4M ouabain, nor by 10−4M Ca2+. The physiological status of this enzyme is discussed. The basic Mg2+-ATPase activity in this preparation is also stimulated by HCO3; it is suggested that the HCO3-stimulated ATPases reported in a variety of other preparations are not necessarily due to mitochondrial contamination but could well originate from the plasma membrane.  相似文献   

16.
ATPase was purified from an alkalophilic Bacillus. The enzyme has a molecular weight of 410,000 and consists of five types of subunits of molecular weights of 60,000 (α), 58,000 (β), 34,000 (γ), 14,000 (δ), and 11,000 (?). The subunit structure is suggested to be α3β3γδ?. The enzyme is activated by Mg2+ and Ca2+. The pH optima of the enzyme with 0.1 and 2.0 mm Mg2+ are 9 and 6, and those with 1 and 10 mm Ca2+ are 8–9 and 7, respectively. Ca2+-ATPase hydrolyzes only ATP, whereas Mg2+-ATPase hydrolyzes GTP and, to a lesser extent, ATP. The values of V and Km of the enzyme with ATP in the presence of 10 mm Ca2+ or 0.6 mm Mg2+ at pH 7.2 are 17 or 0.5 units/mg protein and 1.2 or 0.3 mm, respectively. The enzyme with Mg2+ is appreciably activated by HCO?3. Relationship of the ATPase to the active transport system in the bacterium is suggested.  相似文献   

17.
Formation of {3H}-PGF and {3H}-13,14,dihydro-15-keto-PGF from {3H}-PGE2 by the supernatant of uterine homogenates from estrous and ovariectomized rats, was studied, using the reaction system PGE2 + NADPH + {3H}-PGE2 + supernatant. Enzymatic conversion was lower in uterine supernatants from spayed rats than in uterine homogenates of rats at natural estrus.Spayed animals were injected with progesterone (P) or with estradiol-17-β (E0) at a dose of 1.0 or 50.0 ug. Conversion of {3H}-PGF to {3H}-PGE2 or to {3H}-13,14,dihydro-15-keto-PGF did not differ in control ovariectomized or ovariectomized rats receiving P or 1.0 ug E0. However, 50.0 ug E0 induced a significant oversion after 30 (P < 0.01) and 60 (P < 0.001) min of incubation.It is concluded that E0, at the 50.0 ug dose, but not the 1.0 ug dose of E0, nor progesterone, stimulated conversion of {3H}-PGE2 into {3H}-PGF or {3H}-13, 14,dihydro-15-keto-PGF, presumably through the activity of the enzyme PGE2-9-keto-reductase.  相似文献   

18.
Abstract— A 20–30 per cent stimulation of ATPase activity by added NaHCO3 was found in homogenates of a variety of mammalian tissues. The subcellular distribution of this (HCO3-)—stimulated activity was examined in detail using rat cerebral cortex. The stimulation was specific for the HCO3- ion and was predominantly localized in the mitochondrial subcellular fraction, in which a 2-fold stimulation by HCO3- was found. The effect of inhibitors supported the identification as the mitochondrial ATPase. Both sodium azide and thiocyanate were inhibitory. The effects of varying the Mg2+ concentration, HCO3- concentration, and pH were also studied. In the presence of HCO3- the Km for ATP was reduced approximately 3-fold. There was no effect of HCO3- on the ma + K) ATPase or Mg2+ ATPase from the microsomal fraction of rat cerebral cortex. Our findings have been discussed in relation to previous work on HCO3- stimulation of ATPae activity in subcellular fractions from other tissues, as well as its possible relevance to the known effects of HCO3- and carbonic anhydrase on active ion transport.  相似文献   

19.
The Mg2+-dependency of Ca2+-induced ATP hydrolysis is studied in basolateral plasma membrane vesicles from rat kidney cortex in the presence of CDTA and EGTA as Mg2+- and Ca2+-buffering ligands. ATP hydrolysis is strongly stimulated by Mg2+ with a Km of 13 μ M in the absence or presence of 1 μ M free Ca2+. At free Mg2+ concentrations of 1 μ M and lower, ATP hydrolysis is Mg2+ -independent, but is strongly stimulated by submicromolar Ca2+ concentrations Km = 0.25 μM, Vmax = 24 μmol Pi/h per mg protein). The Ca2+-stimulated ATP hydrolysis strongly decreases at higher Mg2+ concentrations. The Ca2+-stimulated Mg2+-independent ATP hydrolysis is not affected by calmodulin or trifluoperazine and shows no specificity for ATP over ADP, ITP and GTP. In contrast, at high Mg2+ concentrations calmodulin and trifluoperazine affect the high affinity Ca2+-ATPase activity significantly and ATP is the preferred substrate. Control studies on ATP-dependent Ca2+-pumping in renal basolaterals and on Ca2+-ATPase in erythrocyte ghosts suggest that the Ca2+-pumping enzyme requires Mg2+. In contrast, a role of the Ca2+-stimulated Mg2+-independent ATP hydrolysis in active Ca2+ transport across basolateral membranes is rather unlikely.  相似文献   

20.
A fluorescent ATP analog, β-naphthyl triphosphate, was hydrolyzed to β-naphthyl diphosphate and orthophosphate by heavy meromyosin ATPase. In the process of hydrolysis the fluorescence intensity of β-naphthyl triphosphate changed remarkably. Thus, the rate of β-naphthyl triphosphate hydrolysis is evaluated directly and continuously by measuring the time course of fluorescence intensity.In the presence of Ca2+, the Michaelis constant (Km) of β-naphthyl triphosphate hydrolysis by heavy meromyosin was similar to that of ATP hydrolysis. While, in the presence of Mg2+ the Km of β-napthyl triphosphate hydrolysis was 9.0·10−6 M, much larger than the value of ATP hydrolysis, indicating that the apparent affinity of the enzyme for β-naphthyl triphosphate is less than that for ATP.The pH dependence of β-naphthyl triphosphatase activity resembled that of ATPase activity, suggesting a similarity in the mechanism of hydrolysis of the two substrates.  相似文献   

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