首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 31 毫秒
1.
Ruthenium red, a powerful inhibitor of Ca2+ transport by mitochondria, does not inhibit the active Ca2+ uptake by sarcoplasmic reticulum isolated from rabbit skeletal muscle promoted by 5 mM ATP-Mg in the presence or absence of potassium oxalate. Although concentrations of ruthenium red up to 100 μM do not affect the active uptake of Ca2+, 25 μM of the inorganic dye inhibit the passive binding of Ca2+ by about 50%. This inhibitory effect is observed in sarcoplasmic reticulum even after its lipid fraction is extracted with acetone.Although active Ca2+ uptake by sarcoplasmic reticulum is not inhibited by ruthenium red, in the absence of oxalate it inhibits significantly the Ca2+-dependent ATPase activity but not the Mg2+-ATPase. However, if potassium oxalate is present, the Ca2+-stimulated ATPase is not sensitive to the dye. It is not clear how oxalate functions to protect the Ca2+-ATPase against the inhibitor effect of ruthenium red.The high sensitivity to ruthenium red of the Ca2+ transport mechanism in mitochondria as compared to the Ca2+ transport in sarcoplasmic reticulum may be useful in determining the extent to which each organelle functions in the cell to regulate intracellular free Ca2+.  相似文献   

2.
The hydroperoxide-induced net release of Ca2+ from rat liver mitochondria is stimulated by the Ca2+ uptake inhibitor ruthenium red. At moderate Ca2+ loads the release takes place with preservation of a high mitochondrial membrane potential. During and after Ca2+ release mitochondria remain intact. The hydroperoxide-induced release of Ca2+ might therefore be a physiological relevance.  相似文献   

3.
The effect of the most hydrophobic bile acid–lithocholic–as an inducer of two different Ca2+-dependent inner membrane permeability systems was studied on isolated rat liver mitochondria. It is shown that the addition of lithocholic acid at a concentration of 20 μM to the Ca2+-loaded mitochondria leads to swelling of the organelles, rapid release of Ca2+ from the matrix and almost complete collapse of Δψ. Mitochondrial pore blocker cyclosporin A (CsA) eliminates mitochondrial swelling but has no effect on the process of Ca2+ release and Δψ collapse. In the absence of Ca2+ lithocholic acid causes only a transient decrease of Δψ with subsequent complete recovery. Ruthenium red, inhibitor of mitochondrial Ca2+ uniporter, which blocks Ca2+ influx into the matrix, prevents mitochondrial swelling induced by lithocholic acid. At the same time, ruthenium red, which is added before lithocholic acid to the Ca2+-preloaded mitochondria, does not affect the swelling of the organelles but reduces the CsA-insensitive drop in Δψ. It is concluded that lithocholic acid is able to induce two Ca2+-dependent energy dissipation systems in the inner membrane of liver mitochondria: CsA-sensitive mitochondrial pore and CsA-insensitive permeability, which exhibits sensitivity to ruthenium red. It is found that the effect of this bile acid as an inductor of CsA-sensitive mitochondrial pore is not associated with the modulation of Pi effects. It is assumed that CsA-insensitive action of lithocholic acid is associated with the induction of Ca2+ efflux from the matrix in exchange for protons. In this case, the energy-dependent Ca2+ transport in the opposite direction with the participation of mitochondrial calcium uniporter sensitive to ruthenium red leads to the formation of calcium cycle and thereby to energy dissipation.  相似文献   

4.
A transient Ca2+ release from preloaded mitochondria can be induced by a sudden decrease in the pH of the outer medium from 8.0 or 7.4 to 6.8. In the presence of inorganic phosphate the released Ca2+ is not taken up again. Upon Ca2+ addition to respiring mitochondria the mitochondrial membrane potential (Δ♀) decreases to a new resting level. A further decrease in Δ♀ occurs after the decrease in pH from 7.4 to 6.8, concomitant with the reuptake phase of the Ca2+ release. Phosphate, EGTA, and ruthenium red restore Δ♀ to its initial level. If phosphate is present initially, only transient changes in Δ♀ occur upon addition of Ca2+ or H+ ions. Only a small transient change in Δ♀ upon H+ ion addition is seen in the absence of accumulated Ca2+. La3+, a competitive inhibitor of Ca2+ transport, prevents the H+ ion-induced Ca2+ efflux, whereas this is not the case in the presence of the noncompetitive inhibitor ruthenium red. Ruthenium red, however, prevents the reuptake phase. Mg2+, an inhibitor of the surface binding of Ca2+, has no or only a slight effect on the H+ ion-induced Ca2+ release. Mitochondria preloaded with Ca2+ release a small fraction of Ca2+ during the subsequent uptake of another pulse of Ca2+. The results indicate that at least one pool of mitochondrial Ca2+ exists in a mobile state. The possible existence of a H+Ca2+ exchanger in the mitochondrial membrane is discussed.  相似文献   

5.
Bongkrekic acid and atractyloside, inhibitors of adenine nucleotide translocase, do not inhibit Ca2+ uptake and H+ production by pig heart mitochondria. However, bongkrekic acid, but not atractyloside, inhibits dinitrophenol-induced Ca2+ efflux and H+ uptake. Conversely, ruthenium red blocks Ca2+ uptake and H+ production but does not prevent dinitrophenol-induced Ca2+ efflux and H+ uptake by mitochondria. These results suggest that mitochondrial Ca2+ uptake and release exist as two independent pathways. The efflux of Ca2+ from mitochondria is mediated by a bongkrekic acid sensitive component which is apparently not identical to the ruthenium red sensitive Ca2+ uptake carrier.  相似文献   

6.
We have observed substantial changes in the resonance Raman spectrum of ruthenium red when it is added to calcium ion binding molecules and organelles, including proteins, phospholipids, chelating agents, and intact mitochondria. The addition of Ca2+ ions can reverse these observed spectral changes. In the case of cytochrome c, ruthenium red binding varies with oxidation state in a manner parallel to that for Ca2+ binding. The resonance Raman spectrum of a ruthenium red-phospholipid complex shows differences from that of a ruthenium red-protein complex, enabling us to distinguish between binding to these different classes of molecules. Our studies suggest that the primary constituent of the low-affinity Ca2+ binding sites in mitochondria is cardiolipin.  相似文献   

7.
Addition of Pb2+ to rat kidney mitochondria is followed by induction of several reactions: inhibition of Ca2+ uptake, collapse of the transmembrane potential, oxidation of pyridine nucleotides, and a fast release of accumulated Ca2+. When the incubation media are supplemented with ruthenium red, the effect of Pb2+ on NAD(P)H oxidation, membrane , and Ca2+ release are not prevented if malate-glutamate are the oxidizing substrates; however, the latter two lead-induced reactions are prevented by ruthenium red if succinate is the electron donor. It is proposed that in mitochondria oxidizing NAD-dependent substrates, Pb2+ induces Ca2+ release by promoting NAD(P)H oxidation and a parallel drop in due to its binding to thiol groups, located in the cytosol side of the inner membrane. In addition, it is proposed that with succinate as substrate, the Ca2+-releasing effect of lead is due to the collapse of the transmembrane potential as a consequence of the uptake of Pb2+ through the calcium uniporter, since such effect is ruthenium red sensitive.  相似文献   

8.
The effects of low temperature on uptake and release of 45Ca2+ were studied with sound, well-coupled mitochondria extracted at room temperature from avocado (Persea americana Mill, cv Fuerte) fruits. Low Ca2+ concentrations (10 micromolar) were employed to simulate physiological conditions. At 25°C, the rate of Ca2+ uptake decreased with time, whereas at 5°C the initial rate, though lower, remained linear. As a consequence total uptake at 5°C was substantially greater than at 25°C for periods greater than 5 min. Preincubation of mitochondria at 5°C enhanced subsequent Ca2+ uptake at 25°C. Ca2+ uptake was inhibited by carbonyl cyanide-m-chlorophenyl hydrazone (CCCP) and by ruthenium red, but neither KCN nor salicylhydroxamic acid separately or together had any major inhibitory effect. Preloaded mitochondria held for 60 min in a Ca-free medium lost little Ca2+ at 25°C and none at 5°C, except in the presence of ruthenium red or CCCP.  相似文献   

9.
Rat heart mitochondria are able to extract a large fraction of the Ca2+ tightly bound to rabbit skeletal muscle troponin, or to the 18.300 daltons, Ca2+ receptor fragment of the troponin molecule (TN-C). The amount of Ca2+ removed may reach 100% in the case of TN-C- but substantially less with intact troponin. The reaction is fairly rapid, often reaching completion in seconds, and is inhibited by uncouplers and by the classical inhibitor of Ca2+ transport in mitochondria, ruthenium red.  相似文献   

10.
The 40,000-dalton glycoprotein and 2000-dalton peptide inducing selective Ca2+-transport through bilayer lipid membranes were isolated from beef heart homogenate and mitochondria. Micromolar concentrations of these substances were found to increase the conductivity of membranes by 3–4 orders. Transmembrane Ca2+ gradient induces an electric potential difference whose magnitude is close to the theoretical for ideal Ca2+ selectivity. The inhibitor of mitochondrial Ca2+ transport, ruthenium red, abolishes both the glycoprotein-and peptide-induced Ca2+ transport in bilayer lipid membranes. Thiol groups essential for Ca2+ transport activity were revealed in the glycoprotein and peptide. Addition of these substances to rat liver mitochondria induces Ca2+-dependent inhibition of the state 3 respiration that can be released by uncouplers (oligomycin-like effect).  相似文献   

11.
Isolated, intact rat liver mitochondria, without extraneous substrates but loaded with Ca2+ (20 nmol/mg), can be observed to release Ca2+ when treated with ruthenium red. Such release can be inhibited by 0.33 mM dlisocitrate but not by 10 mM dl-β-hydroxybutyrate. Assays of NADP+, NADPH, NAD+, and NADH revealed that only the reduction of NADP+ can be linked with such inhibition of Ca2+ release, not that of NAD+. Since ruthenium redinsensitive Ca2+ release is a physiological (but normally masked) process, this experimental approach avoids some potential problems ascribed to strong pyridine nucleotide oxidation. It is suggested that specific NADP+:NADPH dependent reactions are part of a physiological mechanism regulating Ca2+ release/retention.  相似文献   

12.
THE EGTA — ruthenium red quench technique was used to obtain initial-velocity plots of Ca2+ uptake by skeletal-muscle mitochondria. The Km was 5 μM and the Hill coefficient 1.9 at both 0° and 10°C. Inorganic phosphate stimulated and Mg2+ inhibited initial rates of transport. In experiments on Ca2+ release, the Na+Ca2+ exchange was demonstrated. Factors influencing Ca2+ release during anaerobiosis include phosphate concentration and extent of Ca2+ loading. The results are discussed in relation to the possible participation of mitochondria in the calcium-ion regulation of muscle.  相似文献   

13.
Abstract

The seleno-organic compound ebselen mimics the glutathione-dependent, hydroperoxide reducing activity of glutathione peroxidase. The activity of glutathione peroxidase determines the rate of hydroperoxide-induced Ca2+ release from mitochondria. Ebselen stimulates Ca2+ release from mitochondria, accelerates mitochondrial respiration and uncoupling, and induces mitochondrial swelling, indicating a deterioration of mitochondrial function. These manifestations are abolished by cyclo-sporine A, a potent inhibitor of the mitochondrial permeability transition. However, when ebselen-induced Ca2+ cycling is prevented with ruthenium red, an inhibitor of the Ca2+ uniporter, or by chelation of extramitochondrial Ca2+ by EGTA, no detectable elevation of swelling or uncoupling is observed. The release of Ca2+ from mitochondria is delayed in the absence of rotenone, i.e. when pyridine nucleotides are maintained in the reduced state due to succinate-driven reversed electron flow. We suggest that ebselen induces Ca2+ release from intact mitochondria via an NAD+ hydrolysis-dependent mechanism.  相似文献   

14.
The effect of Ca2+ on the adenine nucleotide translocase activity of intact rat liver mitochondria has been studied. The results indicate that in mitochondria which have been allowed to accumulate Ca2+, the activity of the translocase is strongly diminished; half-maximal inhibition is attained when approximately 40 nmol of Ca2+ are accumulated/mg of mitochondrial protein. Inhibition of electron transport or uncoupling prevents the Ca2+-induced inhibition of translocase activity; inhibition of Ca2+ uptake by ruthenium red also prevents the inhibition of the exchange. These experiments indicate that internal, but not external Ca2+ is responsible for the inhibition of adenine nucleotide translocase activity. Inhibition of the exchange activity by Ca2+ occurs even in conditions in which external adenine nucleotide concentrations are rate-limiting.  相似文献   

15.
The effect of citrinin on Ca2+ transport was studied in isolated kidney cortex and liver mitochondria, and baby hamster kidney cultured cells. The mycotoxin significantly inhibited the activity of 2-oxoglutarate and pyruvate dehydrogenases in both kidney cortex and liver mitochondria. Citrinin promoted a decrease in the velocity and in the total capacity of Ca2+ uptake, in both mitochondria. Apparently, citrinin acts by a mechanism similar to ruthenium red. In intact cultured cells, citrinin also had a preferential effect on mitochondrial Ca2+ fluxes. Citrinin promoted a marked decrease in the Ca2+ level in the mitochondrial matrix, whereas that of the extramitochondiral fraction became less affected. All the observed effects were dependent on the citrinin concentration.  相似文献   

16.
The assembly of microtubules was found to decrease in proportion to the amount of added ruthenium red, indicating a high affinity of ruthenium red for the microtubule system. An equimolar amount of ruthenium red per tubulin dimer inhibited the microtubule assembly completely and disassembled existing microtubules. Binding of ruthenium red to tubulin is accompanied by a shift in the absorption maximum from 535 to 538 nm. The binding is very strong, as shown by the finding that ruthenium red could not be displaced from tubulin by gel chromatography on Sephadex, or by the addition of Ca2+ or Mg2+. The binding of ruthenium red to tubulin did not affect the single colchicine site, nor the Mg2+ site(s), as shown by use of Mn2+ as an EPR probe. Ruthenium red also interfered with microtubules in an intact cell system, as it inhibited rapid axonal transport in the frog sciatic nerve, measured by the accumulation of [3H]leucine-labelled proteins in front of a ligature.  相似文献   

17.
Despite extensive research, the regulation of mitochondrial function is still not understood completely. Ample evidence shows that cytosolic Ca2+ has a strategic task in co-ordinating the cellular work load and the regeneration of ATP by mitochondria. Currently, the paradigmatic view is that Cacyt2+ taken up by the Ca2+ uniporter activates the matrix enzymes pyruvate dehydrogenase, α-ketoglutarate dehydrogenase and isocitrate dehydrogenase. However, we have recently found that Ca2+ regulates the glutamate-dependent state 3 respiration by the supply of glutamate to mitochondria via aralar, a mitochondrial glutamate/aspartate carrier. Since this activation is not affected by ruthenium red, glutamate transport into mitochondria is controlled exclusively by extramitochondrial Ca2+. Therefore, this discovery shows that besides intramitochondrial also extramitochondrial Ca2+ regulates oxidative phosphorylation. This new mechanism acts as a mitochondrial “gas pedal”, supplying the OXPHOS with substrate on demand. These results are in line with recent findings of Satrustegui and Palmieri showing that aralar as part of the malate–aspartate shuttle is involved in the Ca2+-dependent transport of reducing hydrogen equivalents (from NADH) into mitochondria. This review summarises results and evidence as well as hypothetical interpretations of data supporting the view that at the surface of mitochondria different regulatory Ca2+-binding sites exist and can contribute to cellular energy homeostasis. Moreover, on the basis of our own data, we propose that these surface Ca2+-binding sites may act as targets for neurotoxic proteins such as mutated huntingtin and others. The binding of these proteins to Ca2+-binding sites can impair the regulation by Ca2+, causing energetic depression and neurodegeneration.  相似文献   

18.
Commercial ruthenium red is often purified by a single recrystallization as described by Luft, J.H. (1971) Anat Rec 171, 347–368, which yields small amounts of material having an apparent molar extinction coefficient of 67,400 at 533 nm. A simple modification to the procedure dramatically improves the yield, allowing crystallization to be repeated. Three times recrystallized ruthenium red has an apparent extinction coefficient of 85,900, the highest value reported to date. Both crude and highly purified ruthenium red can be shown to inhibit reverse activity of the mitochondrial Ca2+ uniporter (uncoupled mitochondria), provided that care is taken to minimize and account for Ca2+ release through the permeability transition pore. Crude ruthenium red is 7–10 fold more potent than the highly purified material in this regard, on an actual ruthenium red concentration basis. The same relative potency is seen against forward uniport (coupled mitochondria), however, the I50 values are 10 fold lower for both the crude and purified preparations. These data demonstrate unambiguously that the energy state of mitochondria affects the sensitivity of the Ca2+ uniporter to ruthenium red preparations, and that both the forward and reverse reactions are subject to complete inhibition. The data suggest, however, that the active inhibitor may not be ruthenium redper se, but one or more of the other ruthenium complexes which are present in ruthenium red preparations.Abbreviations CCP carbonyl cyanide p-chlorophenylhydrazone - CSA cyclosporin A - Hepes 4-(2-hydroxyethyl)-1-piperazine ethanesulfonic acid  相似文献   

19.
Isolated mussel mitochondria produced a less pronounced transient stimulation of respiration upon the addition of Ca2+ in a reaction medium containing Pi and a slower rate of Ca2+ transport compared to rat liver mitochondria. The initial rates of Ca2+ transport in the absence of Pi were more similar and both types of mitochondria possessed a sigmoidal relationship between the initial rate of Ca2+ transport and the free Ca2+ concentration (‘Km’ ? 5μM). Ruthenium red produced an equal maximal inhibition of the initial rate of Ca2+ transport in both types of mitochondria but mussel mitochondria were rather more resistant to the inhibitor. The major difference found was that approximately 15 nmoles La3+ mg protein?1 was required to produce maximal inhibition of the initial rate of Ca2+ transport in mussel mitochondria compared to approximately 1.0 nmole La3+ mg protein?1 in rat liver mitochondria. It is concluded that mussel mitochondria possess a comparable Ca2+ transporter to vertebrate mitochondria and possible reasons for resistance to La3+ are discussed.  相似文献   

20.
The rate of ruthenium-red-induced Ca2+ efflux depends on the time that the calcium interacts with the mitochondria prior to the addition of the inhibitor. This time-dependency is abolished in the presence of nupercaine; it does not occur in the case of Sr2+ efflux from mitochondria in which the endogenous Ca2+ has been substituted by strontium (strontium-treated mitochondria, STM). Ruthenium red inhibits the respiratory-inhibitor- or uncoupler-induced Sr2+ efflux from STM, but not the Ca2+ efilux from standard mitochondria. The influence of the calcium-induced mitochondrial damage upon the effect of ruthenium red is discussed.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号