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Fluorometric assessments of mitochondrial function and viability in cryopreserved bovine spermatozoa.

Mitochondrial function and sperm viability were quantified in samples of cryopreserved bovine spermatozoa from 12 bulls using fluorometric techniques. The active mitochondria of the spermatozoa were fluorescently stained using three different fluorophores: rhodamine 123 (R123), 5,5',6,6'-tetrachloro-1,1',3,3'-tetraethylbenzimidazolyl-carbocyan ine iodide (JC-1) or MitoTracker Green FM (MITO). The stained spermatozoa, and companion aliquots that had been stained with SYBR-14 (a living-cell nucleic acid stain) and propidium iodide to assess viability, were quantified using flow cytometry. The resulting fluorescent measurements of mitochondrial function were compared with microscopic assessments of progressive sperm motility immediately after thawing, with motility after 3-h incubation at 37 degrees C, and with the fluorescent assessment of sperm viability. Staining with either R123 or MITO resulted in a single green population. In contrast, the JC-1 staining of mitochondria produced both green and red-orange populations of spermatozoa and sometimes a progressive gradient between the two populations. The ability of JC-1 to discriminate between mitochondria exhibiting high membrane potential from those having low to medium membrane potential provided a more rigorous estimate of metabolic function than the other two fluorescent stains. Overall, the three fluorometric measurements of mitochondrial function were highly correlated with each other, with the SYBR-14 assessment of viability, and with the microscopic estimates of motility.

Animals↗

The effect of desferal on rat heart mitochondrial function, iron content, and xanthine dehydrogenase/oxidase conversion during ischemia-reperfusion.

Cardiac mitochondrial function as measured by oxidative phosphorylation is impaired by ischemia; and, this deteriorates even further on reperfusion of the heart. Free oxygen radicals, especially the formation of hydroxyl radicals via the iron-catalyzed Haber-Weiss and Fenton reactions have been implicated in the reperfusion injury. In this study, the effect of desferrioxamine (desferal) in the perfusate on mitochondrial function of isolated rat hearts during different periods of normothermic ischemic cardiac arrest (NICA), and subsequent reperfusion was investigated. Mitochondrial functions measured were the QO2 (state 3); ADP/O ratio and oxidative phosphorylation; the mitochondrial, loosely bound (chelateable) iron (LB-iron); the xanthine dehydrogenase and xanthine oxidase activities. Inclusion of desferal in the perfusion solution significantly improved mitochondrial function during the different NICA periods, and prevented the deterioration of mitochondrial function resulting from reperfusion. Desferal did not significantly affect the LB-iron content of the mitochondria or the ratio of xanthine dehydrogenase/xanthine oxidase activities in the mitochondria during NICA or reperfusion. Our experiments suggest that iron, which is free to be chelated by desferal, plays a role in this injury to the rat myocardium.

Animals↗

Effects of N-(2-mercaptopropionyl)-glycine on mitochondrial function in ischemic-reperfused heart.

OBJECTIVE: A possible mechanism for N-(2-mercaptopropionyl)-glycine (MPG) underlying the improvement of contractile function and mitochondrial activity of ischemic-reperfused rat hearts was examined. METHODS: Isolated, perfused hearts were subjected to 35 min ischemia-60 min reperfusion. At the end of ischemia or reperfusion, myocardial Na(+) content and mitochondrial oxygen consumption rate (OCR) were examined. The perfused heart was treated with 0.1-1 mM MPG for 30 min prior to ischemia or for the first 30 min of reperfusion. RESULTS: Ischemia increased myocardial Na(+) content (sodium overload) and decreased mitochondrial OCR. The left ventricular developed pressure (LVDP) of the untreated heart recovered to 19.8+/-3.8% of the preischemic value and the infarct area amounted to 23.3+/-1.7% of the left ventricle. The thiobarbiturate-reacting substance (TRS) was also increased in the reperfused, but not ischemic, myocardium. Pretreatment of the perfused heart with 0.3-1 mM MPG attenuated the ischemia-induced sodium overload and decrease in the OCR. Pretreatment with the agent also enhanced the postischemic recovery of LVDP, attenuated reperfusion-induced increase in TRS, and reduced the infarct area. Although the postischemic treatment with MPG suppressed the increase in TRS in the reperfused myocardium, a LVDP recovery of reperfused hearts was not observed. Cardiac mitochondria were isolated and examined for the direct effect of MPG on their function. Incubation with either 12.5 mM sodium lactate or 1 microM phenylarsine oxide neither altered the mitochondrial membrane potential nor induced mitochondrial swelling, whereas incubation with a combination of these agents elicited the membrane potential depolarization and swelling. Incubation of mitochondria with 1 mM MPG attenuated these events. CONCLUSION: These results suggest that both attenuation of sodium overload and preservation of the mitochondrial function may largely contribute to cardioprotection of MPG in the ischemic-reperfused heart.

Animals↗

Apoptosis-associated derangement of mitochondrial function in cells lacking mitochondrial DNA.

U937 cells lacking mitochondrial DNA (rho [symbol: see text] cells) are auxotrophic for uridine and pyruvate, hypersensitive to hypoglycemic conditions, and resistant to antimycin A-induced apoptosis. In spite of their obvious metabolic defects, rho [symbol: see text] cells possess a normal mitochondrial transmembrane potential, as well as near-normal capacity to generate superoxide anion after menadione treatment. Similarly to rho + controls, rho [symbol: see text] cells undergo apoptosis in response to tumor necrosis factor-alpha plus cycloheximide. Detailed comparison of the apoptotic process in rho + and rho [symbol: see text] cells reveals essentially the same sequence of events. In response to tumor necrosis factor/cycloheximide, cells first lose their mitochondrial transmembrane potential (delta psi m) and then manifest late apoptotic alterations, such as generation of reactive oxygen species and DNA fragmentation. Experiments involving isolated mitochondria from rho + and rho [symbol: see text] cells confirm that rho [symbol: see text] mitochondria can be induced to undergo permeability transition, a process thought to account for the pre-apoptotic delta psi m disruption in cells. Like rho + mitochondria, rho [symbol: see text] mitochondria contain a pre-formed soluble factor that is capable of inducing chromatin condensation in isolated nuclei in vitro. This factor is released from mitochondria upon induction of permeability transition by calcium or the specific ligand of the adenine nucleotide translocator atractyloside. In conclusion, it appears that all structures involved in the maintenance and pre-apoptotic disruption of the delta psi m, as well as a mitochondrial apoptotic factor(s), are present in rho [symbol: see text] cells and thus are controlled by the nuclear rather than by the mitochondrial genome. These findings underline the contribution of mitochondria to the apoptotic process.

Apoptosis↗

Normal muscle mitochondrial function in Ramsay-Hunt syndrome.

Mitochondrial encephalomyopathies may display clinical features similar to Ramsay-Hunt syndrome (RHS). We studied muscles mitochondrial function in 2 patients with RHS. Histochemical and ultrastructural studies of muscle biopsies and biochemical analysis of muscle mitochondrial enzymes were normal. There is no evidence for a disturbance of muscle mitochondrial function in RHS.

Adult↗

Altered mitochondrial function in fibroblasts containing MELAS or MERRF mitochondrial DNA mutations.

A number of human diseases are caused by inherited mitochondrial DNA mutations. Two of these diseases, MELAS (mitochondrial myopathy, encephalopathy, lactic acidosis and stroke-like episodes) and MERRF (myoclonic epilepsy and ragged-red fibres), are commonly caused by point mutations to tRNA genes encoded by mitochondrial DNA. Here we report on how these mutations affect mitochondrial function in primary fibroblast cultures established from a MELAS patient containing an A to G mutation at nucleotide 3243 in the tRNA(Leu(UUR) gene and a MERRF patient containing an A to G mutation at nucleotide 8344 in the tRNA(Lys) gene. Both mitochondrial membrane potential and respiration rate were significantly decreased in digitonin-permeabilized MELAS and MERRF fibroblasts respiring on glutamate/malate. A similar decrease in mitochondrial membrane potential was found in intact MELAS and MERRF fibroblasts. The mitochondrial content of these cells, estimated by stereological analysis of electron micrographs and from measurement of mitochondrial marker enzymes, was similar in control, MELAS and MERRF cells. Therefore, in cultured fibroblasts, mutation of mitochondrial tRNA genes leads to assembly of bioenergetically incompetent mitochondria, not to an alteration in their amount. However, the cell volume occupied by secondary lysosomes and residual bodies in the MELAS and MERRF cells was greater than in control cells, suggesting increased mitochondrial degradation in these cells. In addition, fibroblasts containing mitochondrial DNA mutations were 3-4-fold larger than control fibroblasts. The implications of these findings for the pathology of mitochondrial diseases are discussed.

Cells, Cultured↗

Involvement of oxygen and mitochondrial function in the metabolism of D-xylulose by Saccharomyces cerevisiae.

Mitochondrial function associated with oxygen was required for growth of Saccharomyces cerevisiae on D-xylulose. The requirement was shown by (i) the inhibition of growth of a wild-type strain under anaerobic conditions, (ii) the inhibition of aerobic growth after treatment with inhibitors of mitochondrial function, and (iii) the lack of aerobic and anaerobic growth of nuclear and cytoplasmic petites. The mitochondrial function was associated with the channeling of catabolites of D-xylulose to growth processes, since ethanol was formed even when growth was inhibited. Mitochondrial function was implicated as well in determining the extent of growth and the concentration of ethanol in aerobic cultures of the wild-type. In such cultures, the concentration of ethanol decreased and growth increased concomitantly as aeration rate increased. A factor in this relation was considered to be the relatively poor ability of D-xylulose to inhibit the oxidative utilization of ethanol.

Anaerobiosis↗

Significance of prednisolone administration for hepatic mitochondrial function of the rat with biliary obstruction.

Mitochondrial respiratory function of the liver is disturbed in biliary obstruction, especially in that caused by tumours in the hepatobiliary system. This study aimed to clarify whether a glucocorticoid, prednisolone succinate, is effective to improve the reduced mitochondrial function of the rat liver in obstructive jaundice. Five doses of 5 mg/kg or 25 mg/kg prednisolone succinate were administered at 5 consecutive days to the rats after 1, 3 or 6 weeks of biliary obstruction and to the rats without obstruction, and the hepatic mitochondrial function and contents of cytochromes of these rats were investigated. With 25 mg/kg prednisolone, hepatic mitochondrial function was improved in rats with biliary obstruction of 3- or 6-weeks duration as compared with the prednisolone-untreated group. Compensatory increase or recuperation of the once decreased cytochrome A(+a3) and/or turnover number of phosphorylation was also observed in 25 mg/kg group. Hepatic mitochondrial function of obstruction-free animals was rather impaired by treatment with 25 mg/kg prednisolone. In 5 mg/kg group, above mentioned effects were scarcely observed. It was concluded that the hepatic mitochondrial function in animals with prolonged biliary obstruction, as same as in animals with short-term obstruction, can be improved by the administration of adequately large amounts of prednisolone.

Adenosine Diphosphate↗

Role of oxidative stress in alterations of mitochondrial function in ischemic-reperfused hearts.

To study the mechanisms of mitochondrial dysfunction due to ischemia-reperfusion (I/R) injury, rat hearts were subjected to 20 or 30 min of global ischemia followed by 30 min of reperfusion. After recording both left ventricular developed pressure (LVDP) and end-diastolic pressure (LVEDP) to monitor the status of cardiac performance, mitochondria from these hearts were isolated to determine respiratory and oxidative phosphorylation activities. Although hearts subjected to 20 min of ischemia failed to generate LVDP and showed a marked increase in LVEDP, no changes in mitochondrial respiration and phosphorylation were observed. Reperfusion of 20-min ischemic hearts depressed mitochondrial function significantly but recovered LVDP completely and lowered the elevated LVEDP. On the other hand, depressed LVDP and elevated LVEDP in 30-min ischemic hearts were associated with depressions in both mitochondrial respiration and oxidative phosphorylation. Reperfusion of 30-min ischemic hearts elevated LVEDP, attenuated LVDP, and decreased mitochondrial state 3 and uncoupled respiration, respiratory control index, ADP-to-O ratio, as well as oxidative phosphorylation rate. Alterations of cardiac performance and mitochondrial function in I/R hearts were attenuated or prevented by pretreatment with oxyradical scavenging mixture (superoxide dismutase and catalase) or antioxidants [N-acetyl-L-cysteine or N-(2-mercaptopropionyl)-glycine]. Furthermore, alterations in cardiac performance and mitochondrial function due to I/R were simulated by an oxyradical-generating system (xanthine plus xanthine oxidase) and an oxidant (H(2)O(2)) either upon perfusing the heart or upon incubation with mitochondria. These results support the view that oxidative stress plays an important role in inducing changes in cardiac performance and mitochondrial function due to I/R.

Animals↗

Optimized mitochondrial function as a nutritional strategy in cancer immunotherapy.

Activated macrophages require effective mitochondrial function, but mitochondrial efficiency is jeopardized by the free radicals produced naturally in macrophage metabolism. This perspective rationalizes the well-documented immunostimulant effects of coenzyme Q and of antioxidant nutrients such as selenium, vitamin E, and manganese. More generally, the nutritional optimization of mitochondrial function is proposed as a "neo-Warburgian' approach to cancer immunotherapy.

Antioxidants↗

Impact of proliferative activity and tumorigenic conversion on mitochondrial function of fibroblasts in 2D and 3D culture.

The purpose of the present study was to examine mitochondrial function in differently transformed cells relative to their tumorigenic state and proliferative activity in vitro. An established two-step carcinogenesis model consisting of immortal and tumorigenic rat embryo fibroblasts that can be cultured as monolayers and multicellular spheroids was investigated. Flow cytometric measurements were carried out using the two mitochondrial-specific fluorochromes rhodamine 123 (Rh123) and 10-N-nonyl acridine orange (NAO), in combination with the DNA dye Hoechst 33342 for simultaneous cell cycle analysis. Since the accumulation of Rh123 depends on mitochondrial membrane potential, Rh123 fluorescence intensity gives an estimate of mitochondrial activity per cell, as determined by both overall mitochondrial function and mass. In contrast, NAO uptake reflects mitochondrial mass only, as it binds to cardiolipin in the inner mitochondrial membrane independently of membrane potential. Aliquots of cell suspensions derived from exponential monolayer, confluent monolayer, and a range of sizes of multicellular spheroids were stained with either Rh123 or NAO and Hoechst 33342, then mitochondrial mass and activity per unit cell volume and cellular DNA content were measured by flow cytometry. Differences in the average mitochondrial activity per cell in different cell lines and culture conditions were primarily due to alterations in cell volume. Importantly, tumorigenic conversion by ras-transfection did not consistently change mitochondrial activity per unit cell volume. The mitochondrial mass per unit cell volume increased for all cells when cellular quiescence was induced, either in monolayers or spheroids. However, mitochondrial function (activity/mass) decreased when cells became quiescent, resulting in a positive correlation between mitochondrial function and S-phase fraction, independent of transformation status or culture condition. We conclude that mitochondrial function reflects proliferative activity rather than tumorigenic conversion.

Acridine Orange↗

Ubiquinol and a coenzyme Q reducing system protect platelet mitochondrial function of transfusional buffy coats from oxidative stress.

The conditions under which Coenzyme Q (CoQ) may protect platelet mitochondrial function of transfusional buffy coats from aging and from induced oxidative stress were investigated. The Pasteur effect, i.e. the enhancement of lactate production after inhibition of mitochondrial respiratory chain, was exploited as a marker of mitochondrial function as it allows to calculate the ratio of mitochondrial ATP to glycolytic ATP. Reduced CoQ10 improves platelet mitochondrial function of transfusional buffy coats and protects the cells from induced oxidative stress. Oxidized CoQ is usually less effective, despite the presence, shown for the first time in this study, of quinone reductase activities in the platelet plasma membranes. The addition of a CoQ reducing system to platelets is effective in enhancing the protection of platelet mitochondrial function from the oxidative stress. The results support on one hand a possibility of protection of mitochondrial function in aging by exogenous CoQ intake, on the other a possible application in protection of transfusional buffy coats from storage conditions and oxidative deterioration.

Aging↗

Ultraviolet damages sperm mitochondrial function and membrane integrity in the sea urchin Anthocidaris crassispina.

Effects of ultraviolet A (UVA) and ultraviolet B (UVB) on mitochondrial function and membrane integrity of sea urchin sperm were investigated using flow cytometry and fluorescent probes. Both UVA and UVB impaired sperm mitochondrial function in a dose-dependent manner. Covariance analysis further showed that the slopes of change in mitochondrial function in relation to UVA and UVB were significantly different, suggesting that the modes of action were different. UVA did not affect membrane integrity, while membrane integrity showed a linear reduction with increasing UVB doses. Sperm mitochondria function showed significant positive correlations with sperm motility and subsequent fertilization success. Overall, our results showed that both UVA and UVB could decrease sperm motility and fertilization success through impairment of mitochondrial function, whereas UVB alone could cause additional damage through impairing the functional integrity of sperm membrane. Mitochondrial function of sperm may also offer a reliable ecotoxicological biomarker for predicting fertilization success in urchins.

Animals↗

Cadmium hepatotoxicity and alterations of the mitochondrial function.

OBJECTIVE: To examine the effect of low concentrations of cadmium on isolated liver mitochondrial function as related to hepatotoxicity. METHODS: Tetraphenyl phosphonium ion uptake and retention, estimated with a tetraphenyl phosphonium-sensitive electrode, was used to monitor changes in liver inner mitochondrial membrane potential. Ca2+ efflux was measured spectrophotometrically with the Ca2+ indicator Arsenazo III. Mitochondrial swelling was measured spectrophotometrically at 540 nm. Oxygen consumption was measured with a Clark-type oxygen microelectrode. RESULTS: Incubation of isolated liver mitochondria with cadmium (5-30 microM) altered mitochondrial function as indicated by swelling, inhibition of respiration, loss of inner mitochondrial membrane potential, and loss of preaccumulated Ca2+. The presence of dithiothreitol (2 mM) in the incubation medium restored mitochondrial function to almost the control level. Cyclosporin A (1 microM), however, did not provide any protection against cadmium toxicity. CONCLUSIONS: The findings point to a direct effect of cadmium on liver mitochondrial function. Cadmium toxicity may be due to loss of reduced glutathione rather than to increased mitochondrial inner membrane permeability. The effect of cadmium on liver mitochondria seems to be an early event in cadmium-induced hepatotoxicity.

Animals↗

Enhancement of mitochondrial function in sepsis.

Recent reports from our laboratory have challenged the concept that sepsis selectively damages or interferes with mitochondrial function. To address the lingering skepticism that mitochondrial assays in surviving animals might not detect this "injury," we injected rats with a lethal dose of Escherichia coli endotoxin and compared hepatic, cardiac, and skeletal muscle mitochondrial function in these animals with that of control rats. Mitochondrial function was serially determined during a four-hour postmortem period by measuring the respiratory control ratio, the adenosine diphosphate-oxygen ratio, and protein levels. Hepatic mitochondria ceased to function within 30 minutes of the time of death. Cardiac and skeletal muscle mitochondria functioned normally up to four hours after death in both septic and control animals. Mitochondria from septic animals had a significantly higher respiratory control ratio than those from control rats. Thus, sepsis appears to enhance rather than damage mitochondrial function up to four hours after death.

Animals↗

Genetic interactions in the control of mitochondrial function in Paramecium. II. Interactions between nuclear and mitochondrial genomes.

In an attempt to understand the genetic interactions between nuclear and mitochondrial genomes leading to mitochondrial biogenesis, different combinations of known nuclear and mitochondrial mutations have been constructed by microinjection. Eleven different tetrazolium resistant mutant strains, many clearly affecting mitochondrial function, were injected with mitochondria from four different erythromycin resistant mitochondrial mutants. Cases were found in which mutant mitochondria were unable to replicate in tetrazolium resistant mutants. The successful mitochondrial transfers were characterized for growth rate, temperature and cold sensitivity. Several selected combinations were characterised also for cytochrome spectra and cyanide resistance. Many different phenotypes were produced by the interaction of the different nuclear and mitochondrial mutations. These ranged from a positive interaction in which mutant mitochondria were selected by a nuclear mutant in preference to wild-type, through apparent absence of interaction, to negative interaction in which the mitochondrial-nuclear combination was temperature sensitive even though both 'parents' were thermoresistant. The possible molecular basis of these interactions is discussed.

Animals↗

Influence of dietary cholesterol on mitochondrial function in the rat.

Rat-liver mitochondrial cholesterol ester levels were increased nine-fold and free cholesterol levels were doubled by feeding 10% lard and 2% cholesterol with Purina rabbit chow pellets to weanling male Sprague-Dawley rats for 5 weeks. This resulted in depression of State 3 (ADP-stimulated) glutamate respiration and reduced sensitivity to inhibition of phosphyorylation by tetrabutylammonium bromide and oligomycin. Brain, heart, lung, spleen, kidney and testis mitochondrial functions were not responsive to changes in dietary cholesterol nor were increases noted in free cholesterol content; mitochondrial cholesterol esters in these six tissues remained at extremely low levels regardless of treatment. Inclusion of 0.01% oleyl-p-decylbenzene sulfonate (a hypocholesterolemic agent) in the 10% lard and 2% cholesterol diet prevented elevation of rat-liver cholesterol esters and restored "normal" mitochondrial functions of respiratory control. This compound had no lowering effect on the raised level of liver mitochondrial free cholesterol nor on the reduced mitochondrial sensitivity to the phosphorylation inhibitors. We concluded that cholesterol esters were associated with depression of liver mitochondrial respiratory control and that free cholesterol was related to desensitization of mitochondria to the phosphorylation inhibitors.

Animals↗

[Experimental study of the effect of rhTNF-alpha on human sperm mitochondrial function and motility in vitro].

OBJECTIVE: To study the effect of rhTNF-alpha on human sperm mitochondrial function and motility in vitro. METHODS: Fifty-six semen samples collected by masturbation were analyzed according to WHO protocols. Semen samples from 40 healthy men were prepared using Percoll centrifugation. Sperm suspension was diluted to a concentration of 10 x 10(6)/ml in Ham's F10 medium. Sperm samples were incubated with rhTNF-alpha solution (final concentration 0.03 microg/L, 0.06 microg/L, 0.09 microg/L and 0.27 microg/L, respectively) for 0.5 h, 1 h, 2 h, 3 h and 4 h at 37 degrees C in 5% CO2, and comparative studies were made with a control group. Ten microl sperm samples were examined with CASA technique, 250 microl stained in the presence of 10 microg/ml Rh123 and PI, and mitochondrial function analyzed by flow cytometry. RESULTS: Significant differences were found between the experimental groups (final concentration 0.06 microg/L, 0.09 microg/L and 0.27 microg/L) and the control group in viability, straight line velocity, curvilinear velocity, average path velocity, progressive motility of human sperm and the number of spermatozoa with normal mitochondrial function (P < 0.01) except the final concentration 0.03 microg/L group (P > 0.05). Motility of human sperm lowered with the increase of rhTNF-alpha concentration and incubation time, and r values were 0.675, 0.691, 0.762, 0.693, 0.724 and 0.571, 0.594, 0.752, 0.791, 0.816, respectively (P < 0.01). The number of spermatozoa with normal mitochondrial function decreased with the increased rhTNF-alpha concentration and incubation time, and r values were 0.615, 0.643, 0.752, 0.691, 0.754 and 0.532, 0.567, 0.782, 0.692, 0.854, respectively (P < 0.01). CONCLUSION: rhTNF-alpha can reduce human sperm motility function in vitro, possibly by interfering with human sperm mitochondrial function.

Adult↗