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1.
Incubation of F1 in the presence of Mg2+ results in a pronounced lag in its ATPase activity measured with the ATP-regenerating system. A decrease of the initial rate of ATPase induced by Mg2+ is also observed when free nucleotides were separated from the enzyme by Sephadex gel filtration. No inhibition is observed when F1 treated to remove tightly bound nucleotides was preincubated in the presence of Mg2+. Mg2+-induced inhibition of ATPase activity of nucleotide-depleted F1 can be restored by an addition of low concentrations of ADP. In all cases the inhibited ATPase can be activated by the ADP-removing system /phosphoenol pyruvate + pyruvate kinase/. It is concluded that i/ Mg2+-induced inhibition of the ATPase activity of F1 is due to the formation of an inactive F1. ADP complex; and ii/ unusual inhibition of oligomycin-sensitive ATPase by ADP /Fitin et al., Biochem. Biophys. Res. Communs. 1979, 86, 434/ is directed to F1 component of the complete mitochondrial ATPase system.  相似文献   

2.
Microsomal membranes isolated from red beet (Beta vulgaris L.) storage tissue were found to contain high levels of ionophore-stimulated ATPase activity. The distribution of this ATPase activity on a continuous sucrose gradient showed a low density peak (1.09 grams per cubic centimeter) that was stimulated over 400% by gramicidin and coincided with a peak of NO3-sensitive ATPase activity. At higher densities (1.16-1.18 grams per cubic centimeter) a shoulder of gramicidin-stimulated ATPase that coincided with a peak of vanadate-sensitive ATPase was apparent. A discontinuous sucrose gradient of 16/26/34/40% sucrose (w/w) was effective in routinely separating the NO3-sensitive ATPase (16/26% interface) from the vanadate-sensitive ATPase (34/40% interface). Both membrane fractions were shown to catalyze ATP-dependent H+ transport, with the transport process showing the same differential sensitivity to NO3 and vanadate as the ATPase activity.

Characterization of the lower density ATPase (16/26% interface) indicated that it was highly stimulated by gramicidin, inhibited by KNO3, stimulated by anions (Cl > Br > acetate > HCO3 > SO42−), and largely insensitive to monovalent cations. These characteristics are very similar to those reported for tonoplast ATPase activity and a tonoplast origin for the low density membrane vesicles was supported by comparison with isolated red beet vacuoles. The membranes isolated from the vacuole preparation were found to possess an ATPase with characteristics identical to those of the low density membrane vesicles, and were shown to have a peak density of 1.09 grams per cubic centimeter. Furthermore, following osmotic lysis the vacuolar membranes apparently resealed and ATP-dependent H+ transport could be demonstrated in these vacuole-derived membrane vesicles. This report, thus, strongly supports a tonoplast origin for the low density, anion-sensitive H+-ATPase and further indicates the presence of a higher density, vanadate-sensitive, H+-ATPase in the red beet microsomal membrane fraction, which is presumably of plasma membrane origin.

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3.
Brush border membranes of the rabbit renal tubule have an ATPase which was stimulated 60% by 50 mm HCO3?. The Ka for HCO3? was 36 mm. Kinetic studies of the “HCO3?-ATPase” indicate that HCO3? had no effect on the Km for ATP and ATP did not alter the Ka for HCO3?. Several anions, notably SO32?, also accelerated the rate of dephosphorylation of ATP. The V for “SO32?-ATPase” was fivefold greater than that for “HCO3?-ATPase.” The Ka for SO32? was 0.78 mm. Other anions including Cl? and phosphates, did not enhance ATPase activity. Thus, of the anions present in the glomerular filtrate in appreciable concentrations only HCO3? stimulated the luminal membrane enzyme. The anion-stimulated ATPase activity increased sharply from pH 6.1 to 7.1 and moderately with higher pH. The renal ATPase was not inhibited by SCN? nor methyl sulfonyl chloride and was relatively insensitive to oligomycin and quercetin. Carbonyl cyanide p-trifluoromethoxy phenylhydrazone increased the basal rate of the membranal ATPase, suggesting that the ATPase activity is limited by transmembrane H+ flux. Carbonic anhydrase significantly increased the HCO3?-stimulated ATPase activity. This increment was blocked by Diamox. These findings provide evidence consistent with the hypothesis that the brush border membrane ATPase is involved in the extrusion of H+ from tubular cell to lumen and support suggested interrelationships between HCO3?-stimulated ATPase, H+ secretion, and bicarbonate transport in the kidney.  相似文献   

4.
The effect of morphine on ATPase of synaptic plasma membranes (SPM) and synaptic vesicles isolated from the mouse brain was studied. The activity of synaptic vesicle Mg++-dependent ATPase from mice rendered morphine tolerant and dependent by pellet implantation was 40% higher than that from placebo implanted mice. However, the activities of Mg++-dependent ATPase and Na+, K+ activated ATPase of SPM of tolerant and nontolerant mice were not significantly different. The activity of synaptic vesicular Mg++-dependet ATPase was dependent on the concentration of Mg++ but not of Ca++; maximum activity was obtained with 2 mM MgCl2. On the other hand, Mg++-dependent ATPase activity of SPM was dependent on both Mg++ and Ca++, activity being maximum using 2 mM MgCl2 and 10?5 M CaCl2. It is suggested that this stimulation of ATPase activity may alter synaptic transmission and may thus be involved in some aspects of morphine tolerance and dependence.  相似文献   

5.
Abstract— Differential and sucrose-density-gradient centrifugation techniques were used for studies on the separation of subcellular particles from rabbit brain and olfactory tissue. Comparisons were made among various fractions from the two types of tissue. These comparisons included protein concentration and enzyme activities of the individual fractions as well as their distribution in subfractions from density gradient separations. In tissue whole homogenates, the percentage of total ATPase activity as ouabain sensitive Na+-K+ ATPase activity was about 4 times greater in brain cortex (63 per cent) than in olfactory tissue (17 per cent). Cytochrome oxidase and Na+-K+ ATPase activities were used to indicate the presence and the concentration of mitochondria and of the plasma membranes. A fraction with properties similar to the mitochondria plus nerve ending fraction from brain homogenates (fraction B) was obtained from olfactory tissue. Nerve ending concentration subfractions (B2) were prepared from the B primary fractions. Plasma membrane subfractions were obtained by osmotic shock treatment of B2, In the fraction of plasma membrane from olfactory tissue (E2), 56 per cent of the total ATPase activity was Na+-K+ ATPase activity. In E2 from brain 71 per cent was Na+-K+ ATPase activity. Deoxycholate (DOC)-treated fractions containing nerve endings from brain preparations showed much greater increase in cytochrome oxidase activity than did similar fractions from olfactory tissue. DOC treatment increased the NADH cytochrome c reductase activity of all fractions and subfractions from brain, while it decreased activity in all but one fraction from olfactory tissue. DOC treatment decreased both the Mg2+ and Na+-K+ ATPase activities in both types of tissue. Electron photomicrographs of olfactory B2, B3, E2 and E3 show clear morphological differences among these subfractions. The presence of possible cilia and basal bodies on vesicles in B2 gives morphological evidence for the presence of terminal swellings in this subtraction in agreement with enzyme marker activity results.  相似文献   

6.
Incubation of sarcoplasmic reticulum membranes (SR) with pyridoxal-5′-phosphate (PLP) followed by NaBH4 reduction results in a progressive loss of calcium-dependent ATPase activity. The rate constants and extents of inactivation are not linear functions of the PLP concentration; rather, saturation behavior is implied. The data are consistent with the scheme
where K1 is the dissociation constant of the SR·PLP complex and k2 and k?2 are the rate constants for the formation and breakdown of the Schiff base SR = PLP, which can be irreversibly reduced to SR-PLP with NaBH4. K1, k2, and k?2 are, respectively, 1.5 mm, 1.8 min?1, and 0.37 min?1. In the presence of Ca-ATP, no decrease in activity occurs in 60 min; Mg-ATP exerts a similar but less pronounced protective effect. Pyridoxal is considerably less effective than PLP. The number of PLP/ATPase incorporated at early stages of the reaction is proportional to the loss of ATPase activity and extrapolates to about one at zero activity. Variation in the difference between the presence and absence of ATP is similar, also extrapolating to one PLP/ATPase. (The data also show that slower reaction at nonessential sites occurs.) That this single residue is a lysine is indicated by paper chromatography of acid hydrolysates. Tryptic digestion of PLP-NaB3H4-reacted SR followed by gel electrophoresis indicates that this lysyl residue is located in the ATPase fragment of 30,000 molecular weight.  相似文献   

7.
Fluorescamine labeling of rat liver mitochondria enhances the ATPase activity. It reached maximum stimulation when mitochondria were treated with 30–34 nmol fluorescamine per mg of mitochondrial protein. This stimulation is inhibited by N,N′-dicyclohexylcarbodiimide. The maximum stimulation caused by labeling is the same as that obtained from uncoupler with optimum concentration. The chemiosmotic potential (ΔμH+) decreases as the labeling increased. However, ΔμH+ is not abolished completely even when ATPase activity reaches a maximum. The results suggest that primary amino groups may be involved in controlling mitochondrial ATPase activity.  相似文献   

8.
Two distinct membrane fractions containing H+-ATPase activity were prepared from red beet. One fraction contained a H+-ATPase activity that was inhibited by NO3 while the other contained a H+-ATPase inhibited by vanadate. We have previously proposed that these H+-ATPases are associated with tonoplast (NO3-sensitive) and plasma membrane (vanadate-sensitive), respectively. Both ATPase were examined to determine to what extent their activity was influenced by variations in the concentration of ATPase substrates and products. The substrate for both ATPase was MgATP2−, and Mg2+ concentrations in excess of ATP had only a slight inhibitory effect on either ATPase. Both ATPases were inhibited by free ATP (i.e. ATP concentrations in excess of Mg2+) and ADP but not by AMP. The plasma membrane ATPase was more sensitive than the tonoplast ATPase to free ATP and the tonoplast ATPase was more sensitive than the plasma membrane ATPase to ADP.

Inhibition of both ATPases by free ATP was complex. Inhibition of the plasma membrane ATPase by ADP was competitive whereas the tonoplast ATPase demonstrated a sigmoidal dependence on MgATP2− in the presence of ADP. Inorganic phosphate moderately inhibited both ATPases in a noncompetitive manner.

Calcium inhibited the plasma membrane but not the tonoplast ATPase, apparently by a direct interaction with the ATPase rather than by disrupting the MgATP2− complex.

The sensitivity of both ATPases to ADP suggests that under conditions of restricted energy supply H+-ATPase activity may be reduced by increases in ADP levels rather than by decreases in ATP levels per se. The sensitivity of both ATPases to ADP and free ATP suggests that modulation of cytoplasmic Mg2+ could modulate ATPase activity at both the tonoplast and plasma membrane.

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9.
Severe aortic constriction in rats produced cardiac hypertrophy and a chronic decrease in cardiac actomyosin ATPase activity during a six week postoperative period. Two weeks following aortic constriction, Ca2+ stimulated cardiac myosin ATPase activity was also depressed; the Km and Vmax were decreased by 86.2% (p < 0.0025) and 84.4% (p < 0.0025), respectively, when compared to sham operated controls. Administration of thyroxine (100 μg/kg/day for 14 days), which was initiated on the same day as aortic constriction, prevented, to a large extent, the decrease in cardiac myosin ATPase activity. The Km and Vmax of myosin from animals with aortic constriction showed substantially smaller decreases as a result of concomitant thyroxine administration (p < 0.0025 for the change from aortic constriction without thyroxine treatment). Thyroxine treatment in rats with aortic stenosis resulted in an additional increment of cardiomegaly when compared to animals with aortic constriction alone. The results of this study indicate that thyroxine, which normally has no effect on Ca2+ activated cardiac myosin ATPase in the rat, can prevent the decrease in myosin ATPase activity which results from severe aortic stenosis.  相似文献   

10.
Dicyclohexylcarbodiimide (DCCD), a potent inhibitor of the F0F1-type H+-translocating ATPase, was employed to determine the possible involvement of such an ATPase in urinary acidification. Two methods were used in this approach: (1) the reaction of [14C]DCCD with tissues involved in urinary acidification and (2) the inhibition of ATPase activity by DCCD. Membrane components from epithelial cells of toad and turtle urinary bladder and brush borders of rabbit kidney were reacted with [14C]DCCD and analyzed by polyacrylamide gel electrophoresis both before and after extraction with organic solvents. Although a DCCD-binding component was extracted from toad and turtle bladder membranes by chloroform/methanol (2:1, vv), the binding was not saturable. Analysis of this DCCD-binding component by thin-layer chromatography indicated that there was no ninhydrin reactivity associated with the [14C]DCCD binding. Moreover, all attempts to precipitate a DCCD-binding protein were unsuccessful. This and other evidence suggested that the observed DCCD binding was to phospholipid. In the second type of experiments, the ATPase activity present in brush borders from rabbit kidney was partially inhibited by DCCD, but at a concentration that is over two orders of magnitude greater than that required for typical DCCD-sensitive ATPase. We conclude from our failure to find positive evidence of a DCCD-reactive protein and from the relative insensitivity of the ATPase to DCCD that either urinary acidification is not accomplished by a typical F0F1-type translocating ATPase, or the F0 has been modified so that the sensitivity to DCCD has been altered or lost.  相似文献   

11.
Exposure of bovine pulmonary artery smooth muscle plasma membrane suspension with the oxidant H2O2 (1 mM) stimulated Ca2+ATPase activity. We sought to determine the role of matrix metalloprotease-2 (MMP-2) in stimulating Ca2+ATPase activity by H2O2 in the smooth muscle plasma membrane. The smooth muscle membrane possesses a Ca2+-dependent protease activity in the gelatin containing zymogram having an apparent molecular mass of 72 kDa. The 72 kDa protease activity was found to be inhibited by EGTA, 1: 10-phenanthroline, a2-macroglobulin and tissue inhibitor of metalloprotease-2 (TIMP-2) indicating that the Ca2+-dependent 72 kDa protease is the MMP-2. Western immunoblot studies of the membrane suspension with polyclonal antibodies of MMP-2 and TIMP-2 revealed that MMP-2 and TIMP-2, respectively, are the ambient matrix metalloprotease and the corresponding tissue inhibitor of metalloprotease in the membrane. In addition to increasing the Ca2+ATPase activity, H2O2 also enhanced the activity of the smooth muscle plasma membrane associated protease activity as evidenced by its ability to degrade14C-gelatin. The protease activity and the Ca2+ATPase activity were prevented by the antioxidant, vitamin E, indicating that the effect produced by H2O2 was due to reactive oxidant species(es). Both basal and H2O2 stimulated MMP-2 activity and Ca2+ATPase activity were inhibited by the general inhibitors of matrix metalloproteases: EGTA, 1: 10-phenanthroline, α2-macroglobulin and also by TIMP-2 (the specific inhibitor of MMP-2) indicating that H2O2 increased MMP-2 activity and that subsequently stimulated Ca2+ATPase activity in the plasma membrane. This was further confirmed by the following observations: (i) adding low doses of MMP-2 or H2O2 to the smooth muscle membrane suspension caused submaximal increase in Ca2+ATPase activity, and pretreatment with TIMP-2 prevents the increase in Ca2+ATPase activity; (ii) combined treatment of the membrane with low doses of MMP-2 and H2O2 augments further the Ca2+ATPase activity caused by the respective low doses of either H2O2 or MMP-2; and (iii) pretreatment with TIMP-2 prevents the increase in Ca2+ATPase activity in the membrane caused by the combined treatment of MMP-2 and H2O2.  相似文献   

12.
Leishmania amazonensis is a protozoan parasite that occurs in many areas of Brazil and causes skin lesions. Using this parasite, our group showed the activation of Na+/K+ ATPase through a signaling cascade that involves the presence of heme and protein kinase C (PKC) activity. Heme is an important biomolecule that has pro-oxidant activity and signaling capacity. Reactive oxygen species (ROS) can act as second messengers, which are required in various signaling cascades. Our goal in this work is to investigate the role of hydrogen peroxide (H2O2) generated in the presence of heme in the Na+/K+ ATPase activity of L. amazonensis. Our results show that increasing concentrations of heme stimulates the production of H2O2 in a dose-dependent manner until a concentration of 2.5 μM heme. To confirm that the effect of heme on the Na+/K+ ATPase is through the generation of H2O2, we measured enzyme activity using increasing concentrations of H2O2 and, as expected, the activity increased in a dose-dependent manner until a concentration of 0.1 μM H2O2. To investigate the role of PKC in this signaling pathway, we observed the production of H2O2 in the presence of its activator phorbol 12-myristate 13-acetate (PMA) and its inhibitor calphostin C. Both showed no effect on the generation of H2O2. Furthermore, we found that PKC activity is increased in the presence of H2O2, and that in the presence of calphostin C, H2O2 is unable to activate the Na+/K+ ATPase. 100 μM of Mito-TEMPO was capable of abolishing the stimulatory effect of heme on Na+/K+ ATPase activity, indicating that mitochondria might be the source of the hydrogen peroxide production induced by heme. The modulation of L. amazonensis Na+/K+ ATPase by H2O2 opens new possibilities for understanding the signaling pathways of this parasite.  相似文献   

13.
Octylguanidine inhibits the adenosine triphosphatase (ATPase) activity of bovine heart submitochondrial particles and soluble F1. The characteristics of the inhibition as a function of octylguanidine and Mg2+ concentrations and pH are very similar in submitochondrial particles and soluble F1. Only those guanidines that possess an alkyl chain of more than six carbons inhibit the ATPase activity of submitochondrial particles and F1. The inhibiting action of octylguanidine on F1 is fully reversible. Octylguanidine prevents the cold-induced inactivation of F1 at concentrations similar to those that inhibit ATPase activity. Guanidines that inhibit ATPase activity also prevent the cold-induced inactivations of F1.  相似文献   

14.
The ATPase activity of the chloroplast coupling factor 1 (CF1) isolated from the green alga Dunaliella is completely latent. A brief heat treatment irreversibly induces a Ca2+ -dependent activity. The Ca2+ dependent ATPase activity can be reversibly inhibited by ethanol, which changes the divalent cation dependency from Ca2+ to Mg2+. Both the Ca2+ -dependent and Mg2+ -dependent ATPase activities of heat-treated Dunaliella CF1 are inhibited by monospecific antisera directed against Chlamydomonas reinhardi CF1. However, when assayed under identical conditions, the Ca2+ -dependent ATPase activity is significantly more sensitive to inhibition by the antisera than is the Mg2+ -dependent activity. These data are interpreted as indicating that soluble Dunaliella CF1 can exist in a variety of conformations, at least one of which catalyzes a Ca2+ -dependent ATPase and two or more of which catalyze an Mg2+ -dependent ATPase.  相似文献   

15.
In order to examine the role of phospholipids in the activation of membrane bound Ca2+/Mg2+ ATPase, the activities of Ca2+ ATPase and Mg2+ ATPase were studied in heart sarcolemma after treatments with phospholipases A, C and D. The Mg2+ ATPase activity was decreased upon treating the sarcolemmal membranes with phospholipases, A, C and D; phospholipase A produced the most dramatic effect. The reduction in Mg2, ATPase activity by each phospholipase treatment was associated with a decrease in the Vmax value without any changes in the Ka value. The depression of Mg2+ ATPase in the phospholipase treated preparations was not found to be due to release of fatty acids in the medium and was not restored upon reconstitution of these membranes by the addition of synthetic phospholipids such as lecithin, lysolecithin or phosphatidic acid. In contrast to the Mg2+ ATPase, the sarcolemmal Ca2+ ATPase was affected only slightly by phospholipase treatments. The greater sensitivity of Mg- ATPase to phospholipase treatments was also apparent when deoxycholate-treated preparations were employed. These results indicate that glycerophospholipids are required for the sarcolemmal Mg2+ ATPase activity to a greater extent in comparison to that for the Ca2+ ATPase activity and the phospholipids associated with Mg2+ ATPase are predominantly exposed at the outer surface of the membrane.  相似文献   

16.
Prostaglandin E2 (PGE2) is quantitatively one of the major prostaglandins synthesized in mammalian brain, and there is evidence that it facilitates seizures and neuronal death. However, little is known about the molecular mechanisms involved in such excitatory effects. Na+,K+‐ATPase is a membrane protein which plays a key role in electrolyte homeostasis maintenance and, therefore, regulates neuronal excitability. In this study, we tested the hypothesis that PGE2 decreases Na+,K+‐ATPase activity, in order to shed some light on the mechanisms underlying the excitatory action of PGE2. Na+,K+‐ATPase activity was determined by assessing ouabain‐sensitive ATP hydrolysis. We found that incubation of adult rat hippocampal slices with PGE2 (0.1–10 μM) for 30 min decreased Na+,K+‐ATPase activity in a concentration‐dependent manner. However, PGE2 did not alter Na+,K+‐ATPase activity if added to hippocampal homogenates. The inhibitory effect of PGE2 on Na+,K+‐ATPase activity was not related to a decrease in the total or plasma membrane immunocontent of the catalytic α subunit of Na+,K+‐ATPase. We found that the inhibitory effect of PGE2 (1 μM) on Na+,K+‐ATPase activity was receptor‐mediated, as incubation with selective antagonists for EP1 (SC‐19220, 10 μM), EP3 (L‐826266, 1 μM) or EP4 (L‐161982, 1 μM) receptors prevented the PGE2‐induced decrease of Na+,K+‐ATPase activity. On the other hand, incubation with the selective EP2 agonist (butaprost, 0.1–10 μM) increased enzyme activity per se in a concentration‐dependent manner, but did not prevent the inhibitory effect of PGE2. Incubation with a protein kinase A (PKA) inhibitor (H‐89, 1 μM) and a protein kinase C (PKC) inhibitor (GF‐109203X, 300 nM) also prevented PGE2‐induced decrease of Na+,K+‐ATPase activity. Accordingly, PGE2 increased phosphorylation of Ser943 at the α subunit, a critical residue for regulation of enzyme activity. Importantly, we also found that PGE2 decreases Na+,K+‐ATPase activity in vivo. The results presented here imply Na+,K+‐ATPase as a target for PGE2‐mediated signaling, which may underlie PGE2‐induced increase of brain excitability.  相似文献   

17.
The ATPase activity of purified mitochondrial ATPase (F1) of rat liver is inhibited less than 15% by sulfhydryl reagents when assayed in TrisCl buffer. In Trisbicarbonate buffer the ATPase activity of the enzyme is two- to three-fold higher than in TrisCl. Significantly, the ATPase activity stimulated by bicarbonate can be inhibited by mercurial agents such as p-chloromercuribenzoate. The number of sulfhydryl groups accessible to 14C-p-chloromercuribenzoate is the same in TrisCl and Trisbicarbonate buffers. These experiments suggest that mercurials most likely inhibit bicarbonate-stimulated ATPase activity by blocking a site associated with bicarbonate binding rather than by blocking distinct sulfhydryl-sensitive hydrolytic sites induced by bicarbonate.  相似文献   

18.
2,6-dibromothymoquinone (DBMIB) and other coenzyme Q analogs partially inhibit electron transport and the membrane-bound Mg++ stimulated ATPase of E. coli membranes. The inhibitions by DBMIB are fully reversed by coenzyme Q6, and other analogs show partial reversal by coenzyme Q6. Electron transport reactions inhibited are NADH and lactate oxidase, NADH menadione reductase, lactate phenazinemethosulfate reductase and duroquinol oxidase. The concentrations of DBMIB required are similar for electron transport and ATPase inhibition and inhibitions are all increased by uncouplers. Electron transport and ATPase are not inhibited in a DBMIB insensitive mutant. Soluble ATPase extracted from the membranes does not show DBMIB inhibition under either high or low Mg++ conditions. Lipophilic chelators show additional inhibition over DBMIB. It appears that coenzyme Q functions at three sites in E. coli electron transport where ATPase activity is controlled. Coenzyme Q deficient mutants also show decreased electron transport and ATPase activity which is restored by coenzyme Q.  相似文献   

19.
The ATPase activities of cardiac myosin from thyrotoxic and euthyroid rabbits have been compared. The Ca2+-ATPase activity of myosin from thyrotoxic animals was elevated by 200%, while the K+(EDTA)-ATPase activity was the same as in euthyroid animals. Modification by N-ethyl-maleimide of the most rapidly reacting class of sulfhydryls (SH1) in myosin from euthyroid animals increased Ca2+-ATPase activity about 177% over the unreacted value. Modification of the SH1 groups in myosin from thyrotoxic animals had no effect on CA2+-ATPase activity. We conclude that thyroxin may increase cardiac myosin ATPase activity by a conformational change in the same region as the SH1 thiols.  相似文献   

20.
The specific activity of (Na+ + Mg2+)-dependent ATPase is three times greater in the microsomes of sea-water eels than in freshwater eels; the specific activity is one quarter of that of (Na+ + K+ + Mg2+)-dependent ATPase in both cases.(Na+ + Mg2+)-dependent ATPase is optimally active in a medium containing 8 mM NaCl, 4 mM MgCI2, 4 mM ATP, pH 8.8 and at 30 °C; the enzyme is inhibited by ouabain, by NaCl concentrations > 100 mM and by treatment with urea.It is concluded that the (Na+ + Mg2+)-dependent ATPase activity of gills arises from the presence of a (Na+ + K+ + Mg2+)-dependent ATPase.  相似文献   

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