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1.
Magnesium is abundant in biological systems and an important divalent cation in the human body. Mg2+ helps mediate cellular energy metabolism, ribosomal and membrane integrity. Additionally Mg2+ modulates the activity of several membrane transport and signal transduction systems. Despite its importance however, little is known about the molecular mechanisms of Mg2+ transport and homeostasis in mammals. In mammals the amount of Mg2+ absorption is about the same as the amount of Mg2+ excretion in urine. Additionally, when total Mg2+ intake is deficient, the kidney is capable of reabsorbing all filtered Mg2+. This balance between intake and excretion indicates that the kidney plays a principal role in maintenance of total body Mg2+ homeostasis. Within the kidney, Mg2+ filtered by the glomerulus is handled in different ways along the nephron. About 10-20% of Mg2+ is reabsorbed by the proximal tubule. the bulk of Mg2+ (about 50-70%) is reabsorbed by the cortical thick ascending limb of the loop of Henle. In this region, Mg2+ moves across the epithelium through the paracellular pathway, driven by the positive lumenal transepithelial voltage. A recently cloned human gene, paracellin-1 was shown to encode a protein localized to the tight junctions of the cortical thick ascending limb and is thought to mediate Mg2+ transport via the paracellular space of this epithelium. The distal convoluted tubule reabsorbs the remaining 5-10% of filtered Mg2+. This segment seems to play an important role in determining final urinary excretion, since there is no evidence for significant Mg2+ absorption beyond the distal tubule. Although many renal Mg2+ transport activities have been characterized, no Mg2+ transporter cDNAs have been cloned from mammalian tissues. Recent research has certainly expanded our knowledge of Mg2+ transport in kidney; but details of the transport processes and the mechanisms by which they control Mg2+ excretion must await cloning of renal Mg2+ transporters and/or channels. Such information would provide new concepts in our understanding of renal Mg2+ handling.  相似文献   

2.
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   

3.
The interaction of various hormones and regucalcin on (Ca2+–Mg2+)-ATPase activity in rat liver plasma membranes was investigated. The presence of epinephrine (10–6–10–4 M), and insulin (10–8–10 M) in the reaction mixture produced a significant increase in (Ca2+–Mg2+)-ATPase activity, while the enzyme activity was decreased significantly by calcitonin, (3×10–8–3×10–6 M). These hormonal effects, except for calcitonin, were clearly inhibited by the presence of vanadate (10–4 M) which can inhibit the Ca2+-dependent phosphorylation of enzyme. Meanwhile, regucalcin (0.25 and 0.50 M), isolated from rat liver cytosol, elevated significantly (Ca2+–Mg2+)-ATPase activity in the plasma membranes, although this elevation was not inhibited by vanadate (10–4 M). the epinephrine (10–5 M) or phenylephrine (10–4 M)-induced increase in (Ca2+–Mg2+)-ATPase activity was disappeared in the presence of regucalcin; in this case the effect of regucalcin was also weakened. However, the inhibitory effect of calcitonin (3×10–6 M) was not weakened by the presence of regucalcin (0.5 M). Moreover, GTP (10–5 and 10–4 M)-induced increase in (Ca2+–Mg2+)-ATPase activity was not seen in the presence of regucalcin (0.25 M). The present finding suggests that the activating mechanism of regucalcin on (Ca2+–Mg2+)-ATPase is not involved on GTP-binding protein which modulates the receptor-mediated hormonal effect in rat liver plasma membranes.  相似文献   

4.
Summary The plasma membrane (Mg2+)-dependent adenosine triphosphatase ((Mg2+)-ATPase) from human erythrocytes has been tested for its ability to transport ions. Using a preparation of inside-out vesicles loaded with the pH-sensitive fluorescence probe 1-hydroxypyrene-3,6,8-trisulfonic acid (HPTS), we have demonstrated the absence of proton movement during (Mg2+)-ATPase activity. From the rate of ATP hydrolysis and the passive proton permeability of these vesicles, an upper limit of 0.03 H+ transported per ATP hydrolyzed was calculated. To verify that proton pumping could be detected in this system, the intravesicular pH was monitored during (Ca2+)-dependent adenosine triphosphatase ((Ca2+)-ATPase) activity. Proton efflux associated with (Ca2+)-ATPase activity was observed (in agreement with a recent report of proton pumping by a reconstituted erythrocyte (Ca2+)-ATPase (Niggli, V., Sigel, E., Carafoli, E. (1982)J. Biol. Chem. 257:2350–2356)) and was shown to be stimulated by calmodulin. The ability of the (Mg2+)-ATPase to pump28Mg2+,35SO 4 2– and86Rb+ was also tested, with the results leading to the conclusion that the human erythrocyte enzyme does not function as an ion transport system.  相似文献   

5.
Two membrane fractions, one enriched in sarcoplasmic reticulum and the other enriched in sarcolemma, were isolated from the myocardium of young (3–4-months-old) and aged (24–25-months old) rats. ATP-supported Ca2+ binding and accumulating activities as well as (Mg2+ + Ca2+)-ATPase activities of these membrane fractions were studied in an effort to determine the influence of age on the Ca2+ pump function of the two myocardial membrane systems. Sarcoplasmic reticulum from aged hearts showed significantly reduced (approx. 50%) rates of ATP-supported (oxalate-facilitated) Ca2+ accumulation compared to sarcoplasmic reticulum from young hearts; the amount of Ca2+ accumulated by this membrane of aged heart at steady state was also lower. On the other hand, sarcolemma from aged hearts displayed 2-fold higher rates of ATP-supported Ca2+ accumulation compared to sarcolemma from young hearts; at steady state, sarcolemma from aged hearts accumulated significantly higher amounts of Ca2+ than did sarcolemma from young hearts. Similar age-related differences were also observed in the ATP-dependent Ca2+ binding activities of the two membranes, determined in the absence of oxalate. The divergent age-associated changes in Ca2+ binding and accumulating activities of sarcoplasmic reticulum and sarcolemma were seen at varying Ca2+ concentrations (0.24–39.1 μM).With either membrane, kinetic analysis showed 2-fold age-related differences in the V values for ATP-supported Ca2+ accumulation (V (nmol Ca2+/mg protein per min): sarcoplasmic reticulum — young, 119 ± 8; aged, 59 ± 5; sarcolemma — young, 11 ± 2; aged, 21 ± 3); the concentrations of Ca2+ required for half-maximal velocities did not differ significantly with age (K0.5 for Ca2+ (μM): sarcoplasmic reticulum — young, 2.5 ± 0.20; aged, 2.9 ± 0.25; sarcolemma — yount, 2.7 ± 0.25; aged, 3.2 ± 0.30). Kinetic parameters of ATP-dependent Ca2+ binding also indicated that the velocity of Ca2+ binding but not the concentration of Ca2+ required for half-maximal binding was altered due to aging. At identical Ca2+ concentrations, the combined Ca2+ accumulating activity of sarcoplasmic reticulum and sarcolemma from aged hearts was significantly lower (38–47%) than the combined Ca2+ accumulating activity of the two membranes from young hearts. No significant age-related differences were observed in the ATP-independent (passive) Ca2+ binding (or accumulation) by sarcoplasmic reticulum and sarcolemma, the (Mg2+ + Ca2+)-ATPase activities of these membranes, their polypeptide composition or relative purity. These results indicate that differential alterations occur in the ATP-supported Ca2+ pump activities of sarcoplasmic reticulum and sarcolemma in aging myocardium and such alterations may be due to age-associated changes in the efficacy of coupling ATP hydrolysis to Ca2+ transport. Further, the age-related increment in the Ca2+ pump activity of sarcolemma is inadequate to fully compensate for the diminished Ca2+ pump activity of sarcoplasmic reticulum. It is, therefore, suggested that deterioration of the Ca2+ pump function of sarcoplasmic reticulum may contribute to the increased relaxation time observed in aging heart.  相似文献   

6.
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   

7.
(Ca2+ + Mg2+)-ATPase activator protein associated with human erythrocyte membranes could be extracted with EDTA under isotonic condition at pH 7.6. No activator was released, however, using isotonic buffer alone. Like calmodulin, the activator in the EDTA extract migrated as a fast moving band on polyacrylamide gel electrophoresis. It was also heat-stable, was capable of stimulating active calcium transport and could stimulate (Ca2+ + Mg2+)-ATPase to the same extent. When chromatographed on a Sephacryl S-200 column, it was eluted in the same position as calmodulin and a membrane associated (Ca2+ + Mg2+)-ATPase activator prepared according to Mauldin and Roufogalis (Mauldin, D. and Roufogalis, B.D. (1980) Biochem. J. 187, 507–513). Furthermore, both Mauldin and Roufogalis protein and the activator in the EDTA extract exhibited calcium-dependent binding to a fluphenazine-Sepharose affinity column. On the basis of these data, it is concluded that the activator protein released from erythrocyte membranes by EDTA is calmodulin. A further pool of the ATPase activator could be released by boiling but not by Triton X-100 treatment of the EDTA-extracted membranes. This pool amounted to 8.9% of the EDTA-extractable pool.  相似文献   

8.
The Ca2+/Mg2+ ATPase of the rat heart sarcolemmal particles was solublized with Triton X-100 after treating the membranes with trypsin and purified by high speed centrifugation, ammonium sulfate fractionation, hydrophobic chromatography and gel filtration. The purified enzyme was seen as a single protein band in nondenaturing polyacrylamide gel electrophoresis and its molecular weight by gel filtration was found to be about 240000. The enzyme utilized Ca-ATP or Mg-ATP as a substrate with high affinity sites (Km = 0.12 – 0.16 mM) and low affinity sites (Km = 1 mM). The enzyme also utilized CTP, GTP, ITP, UTP and ADP as substrates but at a lower rate in comparison to ATP. The enzyme was activated by Ca2+ (Ka = 0.4 mM) and Mg2+ (Ka = 0.2 mM) as well as by other cations in the order Ca2– > Mg2+ > Mn2+ > Sr2+ > Ba2+ > Ni2+ > Cu2+. The ATPase activity in the presence of Ca2+ was markedly inhibited by Mg2+, Mn2+, Ni2+ and Cu2+ whereas the monovalent cations such as Na+ and K+ were without effect. The enzyme did not exhibit Ca2+ stimulated Mg2+ dependent ATPase activity and was insensitive to calmodulin, ouabain, verapamil, D-600, oligomycin, azide and vanadate. Optimum pH for Ca2+ or Mg2+ ATPase activity was 8.5 – 9.0. In view of the possible ectoenzyme nature of the ATPase, its role in adenine nucleotide and Ca2+ metabolism in the myocardium is discussed.  相似文献   

9.
The activating mechanism of regucalcin, a calcium-binding protein isolated from rat liver cytosol, on (Ca2+–Mg2+)-ATPase in the plasma membranes of rat liver was investigated. (Ca2+–Mg2+)-ATPase activity was markedly increased by a sulfhydryl (SH) group protecting reagent dithiothreitol (DTT; 2.5 and 5 mM as a final concentration), while the enzyme activity was significantly decreased by a SH group modifying reagent N-ethylmaleimide (NEM; 0.5–5 mM). The effect of DTT (5 mM) to increase the enzyme activity was clearly blocked by NEM (5 mM). Regucalcin (0.25–1.0 M) significantly increased (Ca2+-Mg2+)-ATPase activity. This increase was completely blocked by NEM (5 mM). Meanwhile, digitonin (0.04%), which can solubilize the membranous lipids, significantly decreased (Ca2+–Mg2+)-ATPase activity. Digitonin did not have an effect on the DTT (5 mM)-increased enzyme activity. However, the effect of regucalcin (0.25 M) increasing (Ca2+–Mg2+)-ATPase activity was entirely blocked by the presence of digitonin. The present results suggest that regucalcin activates (Ca2+–Mg2+)-ATPase by the binding to liver plasma membrane lipids, and that the activation is involved in the SH groups which are an active site of the enzyme.  相似文献   

10.
Cardiac plasma membrane Ca2+/Mg2+ ecto-ATPase (myoglein) requires millimolar concentrations of either Ca2+ or Mg2+ for maximal activity. In this paper, we report its localization by employing an antiserum raised against the purified rat cardiac Ca2+/Mg2+ ATPase. As assessed by Western blot analysis, the antiserum and the purified immunoglobulin were specific for Ca2+/Mg2+ ecto-ATPase; no cross reaction was observed towards other membrane bound enzymes such as cardiac sarcoplasmic reticulum Ca2+-pump ATPase or sarcolemmal Ca2+-pump ATPase. On the other hand, the cardiac Ca2+/Mg2+ ecto-ATPase was not recognized by antibodies specific for either cardiac sarcoplasmic reticulum Ca2+-pump ATPase or plasma membrane Ca2+-pump ATPase. Furthermore, the immune serum inhibited the Ca2+/Mg2+ ecto-ATPase activity of the purified enzyme preparation. Immunofluorescence of cardiac tissue sections and neonatal cultured cardiomyocytes with the Ca2+/Mg2+ ecto-ATPase antibodies indicated the localization of Ca2+/Mg2+ ecto-ATPase in association with the plasma membrane of myocytes, in areas of cell-matrix or cell-cell contact. Staining for the Ca2+/Mg2+ ecto-ATPase was not cardiac specific since the antibodies detected the presence of membrane proteins in sections from skeletal muscle, brain, liver and kidney. The results indicate that Ca2+/Mg2+ ecto-ATPase is localized to the plasma membranes of cardiomyocytes as well as other tissues such as brain, liver, kidney and skeletal muscle.  相似文献   

11.
We reported previously that a Ca2+-ATPase in rat testes and goat spermatozoa could be activated by Ca2+ alone without Mg2+, though it has a lot of similarities with the well known Ca2+, Mg2+-ATPase. Recently, we were successful in isolating the phosphorylated intermediate of the former enzyme under control conditions i.e., in the presence of low concentration of Ca2+ and at low temperature. Increase of the concentration of Ca2+ and/or temperature lead to dephosphorylation. Based on our observations, we proposed a reaction scheme comparable to that of Ca2+, Mg2+-ATPase. The findings strengthened our previous report that Mg2+-independent Ca2+-ATPase is involved in Ca2+ transport and Ca2+ uptake like Ca2+, Mg2+-ATPase.  相似文献   

12.
Hepatic Na+-K+-ATPase and Mg2+-ATPase activities of male green lizards declined during the maturation phase (juvenile to 1-year-old) and stabilized thereafter. On the other hand, the Ca2+-ATPase activity of the liver declined during the later half of the life span (1-year-old to 2–4-year-old). Starvation stress induced a decline in hepatic Na+-K+-ATPase and Mg2+-ATPase activities of juvenile lizards and caused an increase in 1-year-old and 2–4-year-old counterparts. The Ca2+-ATPase activity declined only in starved 1-year-old lizards. Following cold stress, the hepatic Na+-K+-ATPase activity of juvenile lizards showed a higher degree of decline than 2–4-year-old counterparts. The Mg2+-ATPase activity declined in cold-stressed juvenile lizards, but the parameter was elevated in similarly treated 1-year-old lizards. On the other hand, the increase in Ca2+-ATPase activity in response to cold stress was confined only to 2–4-year-old lizards.  相似文献   

13.
Heart sarcolemma has been shown to contain an ATPase hydrolizing system which is activated by millimolar concentrations of divalent cations such as Ca2+ or Mg2+. Although Ca2+-dependent ATPase is released upon treating sarcolemma with trypsin, a considerable amount of the divalent cation dependent ATPase activity was retained in the membrane. This divalent cation dependent ATPase was solubilized by sonication of the trypsin-treated dog heart sarcolemma with 1% Triton X-100. The solubilized enzyme was subjected to column chromatography on a Sepharose-6B column, followed by ion-exchange chromatography on a DEAE cellulose column. The enzyme preparation was found to be rather labile and thus the purity of the sample could not be accurately assessed. The solubilized ATPase preparations did not show any cross-reactivity with dog heart myosin antiserum or with Na+ + K+ ATPase antiserum. The enzyme was found to be insensitive to inhibitors such as ouabain, verapamil, oligomycin and vanadate. The enzyme preparation did not exhibit any Ca2+-stimulated Mg2+ dependent ATPase activity. Furthermore, the low affinity of the enzyme for Ca2– (Ka = 0.3 mM) rules out the possibility of its involvement in the Ca2+ pump mechanism located in the plasma membrane of the cardiac cell.  相似文献   

14.
Previous evidence from this laboratory indicated that catecholamines and brain endogenous factors modulate Na+, K+-ATPase activity of the synaptosomal membranes. The filtration of a brain total soluble fraction through Sephadex G-50 permitted the separation of two fractions-peaks I and II-which stimulated and inhibited Na+, K+-ATPase, respectively (Rodríguez de Lores Arnaiz and Antonelli de Gomez de Lima, Neurochem. Res.11, 1986, 933). In order to study tissue specificity a rat kidney total soluble was fractionated in Sephadex G-50 and kidney peak I and II fractions were separated; as control, a total soluble fraction prepared from rat cerebral cortex was also processed. The UV absorbance profile of the kidney total soluble showed two zones and was similar to the profile of the brain total soluble. Synaptosomal membranes Na+, K+- and Mg2+-ATPases were stimulated 60–100% in the presence of kidney and cerebral cortex peak I; Na+, K+-ATPase was inhibited 35–65% by kidney peak II and 60–80% by brain peak II. Mg2+-ATPase activity was not modified by peak II fractions. ATPases activity of a kidney crude microsomal fraction was not modified by kidney peak I or brain peak II, and was slightly increased by kidney peak II or brain peak I. Kidney purified Na+, K+-ATPase was increased 16–20% by brain peak I and II fractions. These findings indicate that modulatory factors of ATPase activity are not exclusive to the brain. On the contrary, there might be tissue specificity with respect to the enzyme source.  相似文献   

15.
The chronic administration of disulfiram (DS) to rats resulted in significant decrease of synaptosomal Ca2+, Mg2+-ATPase activity. In vitro studies indicated that DS (ID50=20 M) produced a dose-dependent inhibition of Ca2+, Mg2+-ATPase. However, diethyldithio-carbamate, a metabolite of DS, failed to modify Ca2+, Mg2+-ATPase activity, implying that the decrease in ATPase activity in DS administered rats was due to the effect of parent compound. The DS-mediated inhibition (48%) of ATPase activity was comparable with a similar degree of inhibition (49%) achieved by treating the synaptosomal membranes with N-ethylmaleimide (ID50=20 M) in vitro. Furthermore, the inhibition by DS was neither altered by washing the membranes with EGTA nor reversed by treatment with sulfhydryl reagents such as GSH or dithiothreitol. About 74% and 68% decrease of synaptosomal Ca2+, Mg2+-ATPase specific activity was observed when treated with DS (30 M) and EGTA (100 M) respectively. The remaining 25–30% of total activity is suggested to be of Mg2+-dependent ATPase activity. This indicates that both these drugs may act on a common target, calmodulin component that represents 70–75% of total Ca2+, Mg2+-ATPase activity. Therefore, DS-mediated modulation of synaptosomal Ca2+, Mg2+-ATPase activity could affect its function of maintaining intracellular Ca2+ concentration. This could contribute to the deleterious effects on CNS.  相似文献   

16.
The membrane sector (F0) of H+-ATPase was prepared by trypsin and urea treatment of F1-F0 and reconstituted with purified F1. The oligomycin sensitivity of the reconstituted F1-F0 complex obtained by treating F1 or F0 with Mg2+ before binding is much higher than that obtained without Mg2+ treatment. The greater change in the intrinsic fluorescence of the reconstituted F1-F0 complex obtained by Mg2+ treatment suggests that conformational changes may occur during the reconstitution. We deduce that Mg2+ binds to membrane lipids, thus decreasing membrane fluidity and changing the physical state of the lipids to provide a suitable microenvironment for conformational changes in F0. The data also suggest that the conformational change in the F0 portion of the F1-F0 complex can be transmitted to the F1 portion, the conformation of which is in turn altered, resulting in the formation of an F1-F0 complex with high oligomycin sensitivity. On the other hand, Mg2+ may act on F1 directly to induce a suitable conformational change which is then trnsmitted to F0, resulting in the formation of an H+-ATPase with greater sensitivity to oligomycin.Abbreviations STED 0.25 M sucrose, 10 mM Tris-SO4, 0.2 mM EDTA, and 1 mM dithiothreitol, pH 8.0 - NADH nicotinamide adenine dinucleotide, reduced form - olig. oligomycin - OSCP oligomycin sensitivity conferring protein - F6 coupling factor 6 - F1 coupling factor one (or F1-ATPase) - F1 +Mg 2+ and F1 –Mg 2+ the F1 treated and untreated with 1 mM Mg2+ respectively - F0 the membrane sector proteins of the H+-ATPase - TUF0 trypsin-urea – F0 - EUF0 EDTA-urea – F0 - F0 +Mg 2+ and F0 –Mg 2+ the F0 treated and untreated with 1 mM Mg2+ respectively - (F1 · F0)+Mg 2+ and (F1 · F0)–Mg 2+ the reconstituted F1 · F0 complex containing Mg2+-treated F1 and F0 and untreated F1 and F0 respectively - F1 · F0 +Mg 2+ and F1 · F0 –Mg 2+ the reconstituted H+-ATPase complex derived from the binding of purified F1 to the F0 treated and untreated with Mg2+ respectively - F1 +Mg 2+ · F0 and F1 –Mg 2+ · F0 the reconstituted H+-ATPase derived from the binding of F0 to the purified F1 treated and untreated with Mg2+ respectively  相似文献   

17.
Summary The relationship between the external Ca2+ concentrations [Ca2+]0 and the electrical tolerance (breakdown) in theChara plasmalemma was investigated. When the membrane potential was negative beyond –350–400 mV (breakdown potential, BP), a marked inward current was observed, which corresponds to the so-called punch-through (H.G.L. Coster,Biophys. J. 5:669–686, 1965). The electrical tolerance of theChara plasmalemma depended highly on [Ca2+]0. Increasing [Ca2+]0 caused a more negative and decreasing it caused a more positive shift of BP. BP was at about –700 mV in 200 M La3+ solution. [Mg2+]0 depressed the membrane electrical tolerance which was supposed to be due to competition with Ca2+ at the Ca2+ binding site of the membrane. Such a depressive effect of Mg2+ was almost masked when the [Ca2+]0/[Mg2+]0 ratio was roughly beyond 2.  相似文献   

18.
Effects of intracellular Mg2+ on a native Ca2+-and voltage-sensitive large-conductance K+ channel in cultured human renal proximal tubule cells were examined with the patch-clamp technique in the inside-out mode. At an intracellular concentration of Ca2+ ([Ca2+]i) of 10−5–10−4 M, addition of 1–10 mM Mg2+ increased the open probability (Po) of the channel, which shifted the Po –membrane potential (Vm) relationship to the negative voltage direction without causing an appreciable change in the gating charge (Boltzmann constant). However, the Mg2+-induced increase in Po was suppressed at a relatively low [Ca2+]i (10−5.5–10−6 M). Dwell-time histograms have revealed that addition of Mg2+ mainly increased Po by extending open times at 10−5 M Ca2+ and extending both open and closed times simultaneously at 10−5.5 M Ca2+. Since our data showed that raising the [Ca2+]i from 10−5 to 10−4 M increased Po mainly by shortening the closed time, extension of the closed time at 10−5.5 M Ca2+ would result from the Mg2+-inhibited Ca2+-dependent activation. At a constant Vm, adding Mg2+ enhanced the sigmoidicity of the Po–[Ca2+]i relationship with an increase in the Hill coefficient. These results suggest that the major action of Mg2+ on this channel is to elevate Po by lengthening the open time, while extension of the closed time at a relatively low [Ca2+]i results from a lowering of the sensitivity to Ca2+ of the channel by Mg2+, which causes the increase in the Hill coefficient. M. Kubokawa and Y. Sohma contributed equally to this work.  相似文献   

19.
Single-photon timing with picosecond resolution is used to investigate the effect of Mg2+ on the room-temperature fluorescence decay kinetics in broken spinach chloroplasts. In agreement with an earlier paper (Haehnel, W., Nairn, J.A., Reisberg, P. and Sauer, K. (1982) Biochim. Biophys. Acta 680, 161–173), we find three components in the fluorescence decay both in the presence and in the absence of Mg2+. The behavior of these components is examined as a function of Mg2+ concentration at both the F0 and the Fmax fluorescence levels, and as a function of the excitation intensity for thylakoids from spinach chloroplasts isolated in the absence of added Mg2+. Analysis of the results indicates that the subsequent addition of Mg2+ has effects which occur at different levels of added cation. At low levels of Mg2+ (less than 0.75 mM), there appears to be a decrease in communication between Photosystem (PS) II and PS I, which amounts to a decrease in the spillover rate between PS II and PS I. At higher levels of Mg2+ (about 2 mM), there appears to be an increase in communication between PS II units and an increase in the effective absorption cross-section of PS II, probably both of these involving the chlorophyll light-harvesting antenna.  相似文献   

20.
Magnesium, the second most abundant cellular cation after potassium, is essential to regulate numerous cellular functions and enzymes, including ion channels, metabolic cycles, and signaling pathways, as attested by more than 1000 entries in the literature. Despite significant recent progress, however, our understanding of how cells regulate Mg2+ homeostasis and transport still remains incomplete. For example, the occurrence of major fluxes of Mg2+ in either direction across the plasma membrane of mammalian cells following metabolic or hormonal stimuli has been extensively documented. Yet, the mechanisms ultimately responsible for magnesium extrusion across the cell membrane have not been cloned. Even less is known about the regulation in cellular organelles. The present review is aimed at providing the reader with a comprehensive and up-to-date understanding of the mechanisms enacted by eukaryotic cells to regulate cellular Mg2+ homeostasis and how these mechanisms are altered under specific pathological conditions.  相似文献   

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