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1.
Exp Gerontol ; 193: 112465, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38795789

ABSTRACT

Overall health relies on features of skeletal muscle that generally decline with age, partly due to mechanisms associated with mitochondrial redox imbalance and bioenergetic dysfunction. Previously, aged mice genetically devoid of the mitochondrial NAD(P)+ transhydrogenase (NNT, encoded by the nicotinamide nucleotide transhydrogenase gene), an enzyme involved in mitochondrial NADPH supply, were shown to exhibit deficits in locomotor behavior. Here, by using young, middle-aged, and older NNT-deficient (Nnt-/-) mice and age-matched controls (Nnt+/+), we aimed to investigate how muscle bioenergetic function and motor performance are affected by NNT expression and aging. Mice were subjected to the wire-hang test to assess locomotor performance, while mitochondrial bioenergetics was evaluated in fiber bundles from the soleus, vastus lateralis and plantaris muscles. An age-related decrease in the average wire-hang score was observed in middle-aged and older Nnt-/- mice compared to age-matched controls. Although respiratory rates in the soleus, vastus lateralis and plantaris muscles did not significantly differ between the genotypes in young mice, the rates of oxygen consumption did decrease in the soleus and vastus lateralis muscles of middle-aged and older Nnt-/- mice. Notably, the soleus, which exhibited the highest NNT expression level, was the muscle most affected by aging, and NNT loss. Additionally, histology of the soleus fibers revealed increased numbers of centralized nuclei in older Nnt-/- mice, indicating abnormal morphology. In summary, our findings suggest that NNT expression deficiency causes locomotor impairments and muscle dysfunction during aging in mice.


Subject(s)
Aging , Energy Metabolism , Mitochondria, Muscle , Muscle, Skeletal , Animals , Aging/metabolism , Aging/physiology , Mice , Muscle, Skeletal/metabolism , Mitochondria, Muscle/metabolism , Male , NADP Transhydrogenase, AB-Specific/metabolism , NADP Transhydrogenase, AB-Specific/genetics , Oxygen Consumption/physiology , Mice, Knockout , Mice, Inbred C57BL , Mitochondrial Proteins
3.
Eur J Pharmacol ; 917: 174750, 2022 Feb 15.
Article in English | MEDLINE | ID: mdl-35032488

ABSTRACT

The mechanisms by which a high-fat diet (HFD) promotes non-alcoholic fatty liver disease (NAFLD) appear to involve liver mitochondrial dysfunction and redox imbalance. The functional loss of the enzyme NAD(P)+ transhydrogenase, a main source of mitochondrial NADPH, results in impaired mitochondrial peroxide removal, pyruvate dehydrogenase inhibition by phosphorylation, and progression of NAFLD in HFD-fed mice. The present study aimed to investigate whether pharmacological reactivation of pyruvate dehydrogenase by dichloroacetate attenuates the mitochondrial redox dysfunction and the development of NAFLD in NAD(P)+ transhydrogenase-null (Nnt-/-) mice fed an HFD (60% of total calories from fat). For this purpose, Nnt-/- mice and their congenic controls (Nnt+/+) were fed chow or an HFD for 20 weeks and received sodium dichloroacetate or NaCl in the final 12 weeks via drinking water. The results showed that HFD reduced the ability of isolated liver mitochondria from Nnt-/- mice to remove peroxide, which was prevented by the dichloroacetate treatment. HFD-fed mice of both Nnt genotypes exhibited increased body and liver mass, as well as a higher content of hepatic triglycerides, but dichloroacetate treatment attenuated these abnormalities only in Nnt-/- mice. Notably, dichloroacetate treatment decreased liver pyruvate dehydrogenase phosphorylation levels and prevented the aggravation of NAFLD in HFD-fed Nnt-/- mice. Conversely, dichloroacetate treatment elicited moderate hepatocyte ballooning in chow-fed mice, suggesting potentially toxic effects. We conclude that the protection against HFD-induced NAFLD by dichloroacetate is associated with its role in reactivating pyruvate dehydrogenase and reestablishing the pyruvate-supported liver mitochondrial capacity to handle peroxide in Nnt-/- mice.


Subject(s)
Non-alcoholic Fatty Liver Disease
4.
Arch Biochem Biophys ; 707: 108934, 2021 08 15.
Article in English | MEDLINE | ID: mdl-34043997

ABSTRACT

H2O2 is endogenously generated and its removal in the matrix of skeletal muscle mitochondria (SMM) is dependent on NADPH likely provided by NAD(P)+ transhydrogenase (NNT) and isocitrate dehydrogenase (IDH2). Importantly, NNT activity is linked to mitochondrial protonmotive force. Here, we demonstrate the presence of NNT function in detergent-solubilized and intact functional SMM isolated from rats and wild type (Nnt+/+) mice, but not in SMM from congenic mice carrying a mutated NNT gene (Nnt-/-). Further comparisons between SMM from both Nnt mouse genotypes revealed that the NADPH supplied by NNT supports up to 600 pmol/mg/min of H2O2 removal under selected conditions. Surprisingly, SMM from Nnt-/- mice removed exogenous H2O2 at wild-type levels and exhibited a maintained or even decreased net emission of endogenous H2O2 when substrates that support Krebs cycle reactions were present (e.g., pyruvate plus malate or palmitoylcarnitine plus malate). These results may be explained by a compensation for the lack of NNT, since the total activities of concurrent NADP+-reducing enzymes (IDH2, malic enzymes and glutamate dehydrogenase) were ~70% elevated in Nnt-/- mice. Importantly, respiratory rates were similar between SMM from both Nnt genotypes despite differing NNT contributions to H2O2 removal and their implications for an evolving concept in the literature are discussed. We concluded that NNT is capable of meaningfully sustaining NADPH-dependent H2O2 removal in intact SMM. Nonetheless, if the available substrates favor non-NNT sources of NADPH, the H2O2 removal by SMM is maintained in Nnt-/- mice SMM.


Subject(s)
Hydrogen Peroxide/metabolism , Mitochondria/metabolism , Muscle, Skeletal/cytology , NADP Transhydrogenases/metabolism , NADP/metabolism , Animals , Mice , Mutation , NADP Transhydrogenases/genetics
6.
Neuroscience ; 440: 210-229, 2020 08 01.
Article in English | MEDLINE | ID: mdl-32497756

ABSTRACT

NAD(P)+ transhydrogenase (NNT) links redox states of the mitochondrial NAD(H) and NADP(H) via a reaction coupled to proton-motive force across the inner mitochondrial membrane. NNT is believed to be ubiquitously present in mammalian cells, but its expression may vary substantially in different tissues. The present study investigated the tissue distribution and possible roles of NNT in the mouse brain. The pons exhibited high NNT expression/activity, and immunohistochemistry revealed intense NNT labeling in neurons from brainstem nuclei. In some of these regions, neuronal NNT labeling was strongly colocalized with enzymes involved in the biosynthesis of 5-hydroxytryptamine (5-HT) and nitric oxide (NO), which directly or indirectly require NADPH. Behavioral tests were performed in mice lacking NNT activity (Nnt-/-, mice carrying the mutated NntC57BL/6J allele from the C57BL/6J strain) and the Nnt+/+ controls. Our data demonstrated that aged Nnt-/- mice (18-20 months old), but not adult mice (3-4 months old), showed an increased immobility time in the tail suspension test that was reversed by fluoxetine treatment, providing evidence of depressive-like behavior in these mice. Aged Nnt-/- mice also exhibited behavioral changes and impaired locomotor activity in the open field and rotarod tests. Despite the colocalization between NNT and NO synthase, the S-nitrosation and cGMP levels were independent of the Nnt genotype. Taken together, our results indicated that NNT is unevenly distributed throughout the brain and associated with 5-THergic and NOergic neurons. The lack of NNT led to alterations in brain functions related to mood and motor behavior/performance in aged mice.


Subject(s)
NADP Transhydrogenase, AB-Specific , NAD , Animals , Brain/metabolism , Mice , Mice, Inbred C57BL , Mitochondrial Proteins/metabolism , NADP/metabolism , NADP Transhydrogenase, AB-Specific/metabolism
7.
J Neurochem ; 147(5): 663-677, 2018 12.
Article in English | MEDLINE | ID: mdl-30281804

ABSTRACT

Among mitochondrial NADP-reducing enzymes, nicotinamide nucleotide transhydrogenase (NNT) establishes an elevated matrix NADPH/NADP+ by catalyzing the reduction of NADP+ at the expense of NADH oxidation coupled to inward proton translocation across the inner mitochondrial membrane. Here, we characterize NNT activity and mitochondrial redox balance in the brain using a congenic mouse model carrying the mutated Nnt gene from the C57BL/6J strain. The absence of NNT activity resulted in lower total NADPH sources activity in the brain mitochondria of young mice, an effect that was partially compensated in aged mice. Nonsynaptic mitochondria showed higher NNT activity than synaptic mitochondria. In the absence of NNT, an increased release of H2 O2 from mitochondria was observed when the metabolism of respiratory substrates occurred with restricted flux through relevant mitochondrial NADPH sources or when respiratory complex I was inhibited. In accordance, mitochondria from Nnt-/- brains were unable to sustain NADP in its reduced state when energized in the absence of carbon substrates, an effect aggravated after H2 O2 bolus metabolism. These data indicate that the lack of NNT in brain mitochondria impairs peroxide detoxification, but peroxide detoxification can be partially counterbalanced by concurrent NADPH sources depending on substrate availability. Notably, only brain mitochondria from Nnt-/- mice chronically fed a high-fat diet exhibited lower activity of the redox-sensitive aconitase, suggesting that brain mitochondrial redox balance requires NNT under the metabolic stress of a high-fat diet. Overall, the role of NNT in the brain mitochondria redox balance especially comes into play under mitochondrial respiratory defects or high-fat diet.


Subject(s)
Brain Chemistry/physiology , Diet, High-Fat , Energy Metabolism/physiology , Mitochondria/metabolism , NADP Transhydrogenase, AB-Specific/metabolism , Aging , Animals , Brain Chemistry/drug effects , Electron Transport Complex I , Energy Metabolism/drug effects , Hydrogen Peroxide/metabolism , Membrane Potential, Mitochondrial , Mice, Congenic , Mice, Inbred C57BL , Mice, Knockout , Mitochondria/drug effects , Mitochondrial Proteins/genetics , Mitochondrial Proteins/metabolism , NADP/metabolism , NADP Transhydrogenase, AB-Specific/genetics , Oxidation-Reduction , Oxygen Consumption/genetics , Oxygen Consumption/physiology , Synaptosomes/metabolism
8.
Free Radic Biol Med ; 129: 1-24, 2018 12.
Article in English | MEDLINE | ID: mdl-30172747

ABSTRACT

Mitochondria possess a Ca2+ transport system composed of separate Ca2+ influx and efflux pathways. Intramitochondrial Ca2+ concentrations regulate oxidative phosphorylation, required for cell function and survival, and mitochondrial redox balance, that participates in a myriad of signaling and damaging pathways. The interaction between Ca2+ accumulation and redox imbalance regulates opening and closing of a highly regulated inner membrane pore, the membrane permeability transition pore (PTP). In this review, we discuss the regulation of the PTP by mitochondrial oxidants, reactive nitrogen species, and the interactions between these species and other PTP inducers. In addition, we discuss the involvement of mitochondrial redox imbalance and PTP in metabolic conditions such as atherogenesis, diabetes, obesity and in mtDNA stability.


Subject(s)
Atherosclerosis/metabolism , Calcium/metabolism , Diabetes Mellitus/metabolism , Mitochondria/metabolism , Mitochondrial Membrane Transport Proteins/metabolism , Obesity/metabolism , Animals , Atherosclerosis/genetics , Atherosclerosis/pathology , Cations, Divalent , DNA, Mitochondrial/genetics , DNA, Mitochondrial/metabolism , Diabetes Mellitus/genetics , Diabetes Mellitus/pathology , Humans , Ion Transport , Mitochondrial Membrane Transport Proteins/genetics , Mitochondrial Membranes/metabolism , Obesity/genetics , Obesity/pathology , Oxidation-Reduction , Oxidative Phosphorylation , Permeability , Reactive Nitrogen Species/metabolism , Signal Transduction
9.
Cell Biol Int ; 42(6): 742-746, 2018 Jun.
Article in English | MEDLINE | ID: mdl-29424467

ABSTRACT

Mitochondrial redox imbalance and high Ca2+ uptake induce the opening of the permeability transition pore (PTP) that leads to disruption of energy-linked mitochondrial functions and triggers cell death in many disease states. In this review, we discuss the major results from our studies investigating the consequences of NAD(P)-transhydrogenase (NNT) deficiency, and of statins treatment for mitochondrial functions and susceptibility to Ca2+ -induced PTP. We highlight the aggravation of high fat diet-induced fatty liver disease in the context of NNT deficiency and the role of antioxidants in the prevention of statins toxicity to mitochondria.


Subject(s)
Calcium/metabolism , Mitochondria/metabolism , Mitochondrial Membrane Transport Proteins/metabolism , NADP Transhydrogenases/genetics , Animals , Diet, High-Fat , Fatty Liver/drug therapy , Fatty Liver/etiology , Fatty Liver/veterinary , Hydroxymethylglutaryl-CoA Reductase Inhibitors/pharmacology , Hydroxymethylglutaryl-CoA Reductase Inhibitors/therapeutic use , Mitochondria/drug effects , Mitochondrial Permeability Transition Pore , NADP Transhydrogenases/metabolism , Permeability/drug effects , Ubiquinone/analogs & derivatives , Ubiquinone/chemistry , Ubiquinone/metabolism
10.
Free Radic Biol Med ; 113: 190-202, 2017 12.
Article in English | MEDLINE | ID: mdl-28964917

ABSTRACT

The mechanisms by which a high fat diet (HFD) promotes non-alcoholic fatty liver disease (NAFLD) appear to involve liver mitochondrial dysfunctions and redox imbalance. We hypothesized that a HFD would increase mitochondrial reliance on NAD(P)-transhydrogenase (NNT) as the source of NADPH for antioxidant systems that counteract NAFLD development. Therefore, we studied HFD-induced liver mitochondrial dysfunctions and NAFLD in C57Unib.B6 congenic mice with (Nnt+/+) or without (Nnt-/-) NNT activity; the spontaneously mutated allele (Nnt-/-) was inherited from the C57BL/6J mouse substrain. After 20 weeks on a HFD, Nnt-/- mice exhibited a higher prevalence of steatohepatitis and content of liver triglycerides compared to Nnt+/+ mice on an identical diet. Under a HFD, the aggravated NAFLD phenotype in the Nnt-/- mice was accompanied by an increased H2O2 release rate from mitochondria, decreased aconitase activity (a redox-sensitive mitochondrial enzyme) and higher susceptibility to Ca2+-induced mitochondrial permeability transition. In addition, HFD led to the phosphorylation (inhibition) of pyruvate dehydrogenase (PDH) and markedly reduced the ability of liver mitochondria to remove peroxide in Nnt-/- mice. Bypass or pharmacological reactivation of PDH by dichloroacetate restored the peroxide removal capability of mitochondria from Nnt-/- mice on a HFD. Noteworthy, compared to mice that were chow-fed, the HFD did not impair peroxide removal nor elicit redox imbalance in mitochondria from Nnt+/+ mice. Therefore, HFD interacted with Nnt mutation to generate PDH inhibition and further suppression of peroxide removal. We conclude that NNT plays a critical role in counteracting mitochondrial redox imbalance, PDH inhibition and advancement of NAFLD in mice fed a HFD. The present study provide seminal experimental evidence that redox imbalance in liver mitochondria potentiates the progression from simple steatosis to steatohepatitis following a HFD.


Subject(s)
Hydrogen Peroxide/metabolism , Mitochondria, Liver/enzymology , NADP Transhydrogenase, AB-Specific/genetics , Non-alcoholic Fatty Liver Disease/etiology , Oxidative Stress , Pyruvate Dehydrogenase Complex/metabolism , Aconitate Hydratase/metabolism , Animals , Diet, High-Fat , Disease Models, Animal , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Mitochondria, Liver/metabolism , Mitochondrial Proteins/genetics , Mutation , Non-alcoholic Fatty Liver Disease/enzymology , Non-alcoholic Fatty Liver Disease/metabolism , Phosphorylation , Protein Processing, Post-Translational , Triglycerides/metabolism
11.
J Neurooncol ; 133(3): 519-529, 2017 Jul.
Article in English | MEDLINE | ID: mdl-28540666

ABSTRACT

High-grade gliomas are aggressive and intensely glycolytic tumors. In the present study, we evaluated the mitochondrial respiratory function of glioma cells (T98G and U-87MG) and fresh human glioblastoma (GBM) tissue. To this end, measurements of oxygen consumption rate (OCR) were performed under various experimental conditions. The OCR of T98G and U-87MG cells was well coupled to ADP phosphorylation based on the ratio of ATP produced per oxygen consumed of ~2.5. In agreement, the basal OCR of GBM tissue was also partially associated with ADP phosphorylation. The basal respiration of intact T98G and U-87MG cells was not limited by the supply of endogenous substrates, as indicated by the increased OCR in response to a protonophore. These cells also displayed a high affinity for oxygen, as evidenced by the values of the partial pressure of oxygen when respiration is half maximal (p 50). In permeabilized glioma cells, ADP-stimulated OCR was only approximately 50% of that obtained in the presence of protonophore, revealing a significant limitation in oxidative phosphorylation (OXPHOS) relative to the activity of the electron transport system (ETS). This characteristic was maintained when the cells were grown under low glucose conditions. Flux control coefficient analyses demonstrated that the impaired OXPHOS was associated with the function of both mitochondrial ATP synthase and the adenine nucleotide translocator, but not the phosphate carrier. Altogether, these data indicate that the availability and metabolism of respiratory substrates and mitochondrial ETS are preserved in T98G and U-87MG glioma cells even though these cells possess a relatively restrained OXPHOS capability.


Subject(s)
Adenosine Diphosphate/metabolism , Glioma/metabolism , Glycolysis/physiology , Mitochondria/metabolism , Oxygen Consumption/physiology , Adenosine Triphosphate/metabolism , Animals , Cell Line, Tumor , Glioma/pathology , Glioma/surgery , Glucose/metabolism , Humans , Lactic Acid/metabolism , Male , Mitochondrial Proton-Translocating ATPases/metabolism , Oxidative Stress/physiology , Phosphorylation , Prosencephalon/metabolism , Rats, Wistar
12.
Oxid Med Cell Longev ; 2015: 940627, 2015.
Article in English | MEDLINE | ID: mdl-26583063

ABSTRACT

In addition to be the cell's powerhouse, mitochondria also contain a cell death machinery that includes highly regulated processes such as the membrane permeability transition pore (PTP) and reactive oxygen species (ROS) production. In this context, the results presented here provide evidence that liver mitochondria isolated from Gracilinanus microtarsus, a small and short life span (one year) marsupial, when compared to mice, are much more susceptible to PTP opening in association with a poor NADPH dependent antioxidant capacity. Liver mitochondria isolated from the marsupial are well coupled and take up Ca(2+) but exhibited a much lower Ca(2+) retention capacity than mouse mitochondria. Although the known PTP inhibitors cyclosporin A, ADP, and ATP significantly increased the marsupial mitochondria capacity to retain Ca(2+), their effects were much larger in mice than in marsupial mitochondria. Both fluorescence and HPLC analysis of mitochondrial nicotinamide nucleotides showed that both content and state of reduction (mainly of NADPH) were lower in the marsupial mitochondria than in mice mitochondria despite the similarity in the activity of the glutathione peroxidase/reductase system. Overall, these data suggest that PTP opening is an important event in processes of Ca(2+) signalling to cell death mediated by mitochondrial redox imbalance in G. microtarsus.


Subject(s)
Calcium/metabolism , Mitochondria, Liver/metabolism , Mitochondrial Membrane Transport Proteins/metabolism , NAD/chemistry , Adenosine Diphosphate/pharmacology , Adenosine Triphosphate/pharmacology , Animals , Chromatography, High Pressure Liquid , Cyclosporine/pharmacology , Glutathione Peroxidase/metabolism , Ions/chemistry , Longevity , Marsupialia/metabolism , Membrane Potential, Mitochondrial/drug effects , Mice , Mice, Inbred C57BL , Mitochondria/drug effects , Mitochondria/metabolism , Mitochondria, Liver/enzymology , Mitochondrial Membrane Transport Proteins/antagonists & inhibitors , Mitochondrial Permeability Transition Pore , NAD/analysis , NADP Transhydrogenases/metabolism , Reactive Oxygen Species/metabolism
13.
Exp Physiol ; 100(9): 1073-92, 2015 Sep.
Article in English | MEDLINE | ID: mdl-26096641

ABSTRACT

NEW FINDINGS: What is the central question of this study? The assessment of Ca(2+) handling by isolated mitochondria can be biased by dysfunctions secondary to Ca(2+) -induced mitochondrial permeability transition (MPT). As a result of this uncertainty and the differing experimental conditions between studies, the tissue and sex diversities in mitochondrial Ca(2+) transport are still unsettled questions. What is the main finding and its importance? If MPT is not prevented during Ca(2+) transport assays, some measured variables are biased. Accounting for the implied importance of preventing MPT, we observed substantial tissue specificities in the mitochondrial Ca(2+) handling, particularly in the Ca(2+) efflux pathways. The characteristics of mitochondria, including their Ca(2+) transport functions, may exhibit tissue specificity and sexual dimorphism. Given that measurements of Ca(2+) handling by isolated mitochondria may be biased by dysfunction secondary to Ca(2+) -induced mitochondrial permeability transition (MPT) pore opening, this study evaluated the extent to which MPT inhibition by ciclosporin affected the measurement of Ca(2+) transport in isolated rat liver mitochondria. The results indicate that the steady-state levels of external Ca(2+) and the rates of mitochondrial Ca(2+) efflux through the selective pathways can be overestimated by up to fourfold if MPT pore opening is not prevented. We analysed Ca(2+) transport in isolated mitochondria from the liver, skeletal muscle, heart and brain of male and female rats in incubation conditions containing MPT inhibitors, NAD-linked substrates and relevant levels of free Ca(2+), Mg(2+) and Na(+). The Ca(2+) influx rates were similar among the samples, except that the liver mitochondria displayed values fourfold higher. In contrast, the Ca(2+) efflux rates exhibited more tissue diversity, especially in the presence of Na(+). Interestingly, the Na(+)-independent Ca(2+) efflux was highest in the heart mitochondria (∼ 4 nmol mg(-1) min(-1)), thus challenging the view that cardiac mitochondrial Ca(2+) efflux relies almost exclusively on a Na(+)-dependent pathway. Sex specificity was observed in only two kinetic indexes of heart mitochondrial Ca(2+) homeostasis and in the ADP-stimulated respiration of liver mitochondria (∼ 20% higher in females). The present study shows the methodological importance of preventing MPT when measuring the properties and the physiological variability of the Ca(2+) handling by isolated mitochondria.


Subject(s)
Calcium/metabolism , Mitochondria, Heart/metabolism , Mitochondria, Liver/metabolism , Animals , Female , Homeostasis/physiology , Magnesium/metabolism , Male , Mitochondrial Membrane Transport Proteins/metabolism , Mitochondrial Permeability Transition Pore , Mitochondrial Swelling/physiology , Permeability , Rats , Rats, Wistar , Sodium/metabolism
14.
Neurosci Lett ; 589: 25-30, 2015 Mar 04.
Article in English | MEDLINE | ID: mdl-25596437

ABSTRACT

Chronic and systemic treatment of rodents with rotenone, a classical inhibitor of mitochondrial respiratory complex I, results in neurochemical, behavioral, and neuropathological features of Parkinson's disease. The aim of the present study was to evaluate whether brain mitochondria from old rats (24 months old) would be more susceptible to rotenone-induced inhibition of oxygen consumption and increased generation of H2O2 than mitochondria from young-adult rats (3-4 months old). Isolated brain mitochondria were incubated in the presence of different rotenone concentrations (5, 10, and 100nM), and oxygen consumption and H2O2 production were measured during respiratory states 3 (ADP-stimulated respiration) and 4 (resting respiration). Respiratory state 3 and citrate synthase activity were significantly lower in mitochondria from old rats. Mitochondria from young-adult and old rats showed similar sensitivity to rotenone-induced inhibition of oxygen consumption. Similarly, H2O2 production rates by both types of mitochondria were dose-dependently stimulated to the same extent by increasing concentrations of rotenone. We conclude that rotenone exerts similar effects on oxygen consumption and H2O2 production by isolated brain mitochondria from young-adult and old rats. Therefore, aging does not increase the mitochondrial H2O2 generation in response to complex I inhibition.


Subject(s)
Brain/drug effects , Hydrogen Peroxide/metabolism , Mitochondria/drug effects , Pesticides/toxicity , Rotenone/toxicity , Age Factors , Animals , Brain/metabolism , Citrate (si)-Synthase/metabolism , In Vitro Techniques , Male , Membrane Potential, Mitochondrial , Mitochondria/metabolism , Oxygen Consumption , Rats, Wistar
15.
Toxicon ; 82: 97-103, 2014 May.
Article in English | MEDLINE | ID: mdl-24593964

ABSTRACT

BlL, a galactose-binding C-type lectin purified from Bothrops leucurus snake venom, exhibits anticancer activity. The current study was designed to elucidate the cellular mechanisms by which BlL induces melanoma cell death. The viabilities of B16-F10 melanoma cells and HaCaT keratinocytes treated with BlL were evaluated. Necrotic and apoptotic cell death, cytosolic Ca(2+) levels, mitochondrial Ca(2+) transport and superoxide levels were assessed in B16-F10 melanoma cells exposed to BlL. We found that treatment with BlL caused dose-dependent necrotic cell death in B16-F10 melanoma cells. Conversely, the viability of non-tumorigenic HaCaT cells was not affected by similar doses of BlL. BlL-induced B16-F10 necrosis was preceded by a significant (2-fold) increase in cytosolic calcium concentrations and a significant (3-fold) increase in mitochondrial superoxide generation. It is likely that BlL treatment triggers B16-F10 cell death via mitochondrial permeability transition (MPT) pore opening because the pharmacological MPT inhibitors bongkrekic acid and Debio 025 greatly attenuated BlL-induced cell death. Experiments evaluating mitochondrial Ca(2+) transport in permeabilized B16-F10 cells strongly supported the hypothesis that BlL rapidly stimulates cyclosporine A-sensitive Ca(2+)-induced MPT pore opening. We therefore conclude that BlL causes selective B16-F10 melanoma cell death via dysregulation of cellular Ca(2+) homeostasis and Ca(2+)-induced opening of MPT pore.


Subject(s)
Bothrops/metabolism , Calcium/metabolism , Cell Death/drug effects , Crotalid Venoms/pharmacology , Mitochondrial Membrane Transport Proteins/drug effects , Animals , Cell Line, Tumor , Crotalid Venoms/chemistry , Humans , Lectins/chemistry , Lectins/pharmacology , Melanoma, Experimental/metabolism , Mitochondrial Permeability Transition Pore , Necrosis/chemically induced , Necrosis/pathology , Superoxides/metabolism
17.
Free Radic Biol Med ; 63: 446-56, 2013 Oct.
Article in English | MEDLINE | ID: mdl-23747984

ABSTRACT

NADPH is the reducing agent for mitochondrial H2O2 detoxification systems. Nicotinamide nucleotide transhydrogenase (NNT), an integral protein located in the inner mitochondrial membrane, contributes to an elevated mitochondrial NADPH/NADP(+) ratio. This enzyme catalyzes the reduction of NADP(+) at the expense of NADH oxidation and H(+) reentry to the mitochondrial matrix. A spontaneous Nnt mutation in C57BL/6J (B6J-Nnt(MUT)) mice arose nearly 3 decades ago but was only discovered in 2005. Here, we characterize the consequences of the Nnt mutation on the mitochondrial redox functions of B6J-Nnt(MUT) mice. Liver mitochondria were isolated both from an Nnt wild-type C57BL/6 substrain (B6JUnib-Nnt(W)) and from B6J-Nnt(MUT) mice. The functional evaluation of respiring mitochondria revealed major redox alterations in B6J-Nnt(MUT) mice, including an absence of transhydrogenation between NAD and NADP, higher rates of H2O2 release, the spontaneous oxidation of NADPH, the poor ability to metabolize organic peroxide, and a higher susceptibility to undergo Ca(2+)-induced mitochondrial permeability transition. In addition, the mitochondria of B6J-Nnt(MUT) mice exhibited increased oxidized/reduced glutathione ratios as compared to B6JUnib-Nnt(W) mice. Nonetheless, the maximal activity of NADP-dependent isocitrate dehydrogenase, which is a coexisting source of mitochondrial NADPH, was similar between both groups. Altogether, our data suggest that NNT functions as a high-capacity source of mitochondrial NADPH and that its functional loss due to the Nnt mutation results in mitochondrial redox abnormalities, most notably a poor ability to sustain NADP and glutathione in their reduced states. In light of these alterations, the potential drawbacks of using B6J-Nnt(MUT) mice in biomedical research should not be overlooked.


Subject(s)
Mitochondria, Liver/metabolism , Mitochondrial Membranes/metabolism , NADP Transhydrogenases/metabolism , NADP/metabolism , Animals , Glutathione/metabolism , Hydrogen Peroxide/metabolism , Hydrogen Peroxide/pharmacology , Mice , Mitochondria, Liver/drug effects , Mitochondria, Liver/pathology , Mitochondrial Membranes/drug effects , Mitochondrial Membranes/enzymology , Mutation , NADP Transhydrogenases/genetics , Oxidation-Reduction/drug effects
18.
Antioxid Redox Signal ; 18(16): 2029-74, 2013 Jun 01.
Article in English | MEDLINE | ID: mdl-23244576

ABSTRACT

Mitochondrially generated reactive oxygen species are involved in a myriad of signaling and damaging pathways in different tissues. In addition, mitochondria are an important target of reactive oxygen and nitrogen species. Here, we discuss basic mechanisms of mitochondrial oxidant generation and removal and the main factors affecting mitochondrial redox balance. We also discuss the interaction between mitochondrial reactive oxygen and nitrogen species, and the involvement of these oxidants in mitochondrial diseases, cancer, neurological, and cardiovascular disorders.


Subject(s)
Mitochondria/metabolism , Reactive Nitrogen Species/metabolism , Reactive Oxygen Species/metabolism , Humans
19.
Methods Mol Biol ; 810: 103-17, 2012.
Article in English | MEDLINE | ID: mdl-22057563

ABSTRACT

The mitochondrial electrical membrane potential (Δψ) is the main component of the proton motive force (Δp) generated across the inner mitochondrial membrane during electron flow through the respiratory chain. Among the techniques available to assess Δψ, methods that rely on the spectrophotofluorometric responses of dyes are widely employed for whole suspensions of isolated mitochondria or permeabilized cells. Safranine is one of the dyes currently used most often for this purpose. Safranine is a lipophilic cationic dye that undergoes optical shifts upon its potential-dependent distribution between the external medium and the intramitochondrial compartment and on its stacking to inner mitochondrial membrane anionic sites. The association between the optical changes of safranine and the membrane potential allows unknown Δψ values to be estimated from an equation describing their relationship. Here, we describe the use of safranine as a fluorescent indicator of Δψ in isolated mitochondria and digitonin-permeabilized cells. We present suitable conditions to employ safranine as a Δψ indicator.


Subject(s)
Fluorescent Dyes , Membrane Potential, Mitochondrial , Mitochondria, Liver/physiology , Phenazines , Animals , Digitonin , Female , Indicators and Reagents , Mitochondrial Proteins/metabolism , Mitochondrial Size , Organelles/physiology , PC12 Cells , Permeability , Rats , Rats, Wistar
20.
Exp Physiol ; 97(4): 525-33, 2012 Apr.
Article in English | MEDLINE | ID: mdl-22198013

ABSTRACT

Congenitally analbuminaemic individuals and rats (NARs) exhibit several metabolic abnormalities, including hypertriglyceridaemia and plasma free fatty acid deficiency. Our aim was to study glucose homeostasis and insulin secretion in NARs. Plasma concentrations of lipids, glucose and insulin and secretion of insulin from the pancreatic islets were measured in female NARs and control animals (Sprague-Dawley rats; SDRs). Glucose homeostasis tests were also performed. Plasma glucose levels were similar between NARs and SDRs, irrespective of feeding status. However, fed insulinaemia was ∼37% higher (P 0.05) in NARs than in SDRs. The NARs displayed a markedly increased glucose tolerance, i.e. the integrated glycaemic response was one-third that of the control animals. Enhanced glucose tolerance was associated with threefold higher insulinaemia at peak glycaemia after a glucose load than in the control animals. Similar peripheral insulin sensitivity was observed between groups. Isolated pancreatic islets from NARs secreted significantly more insulin than islets from SDRs in response to a wide range of glucose concentrations (2.8-33.3 mm). Despite having similar liver glycogen contents in the fully fed state, NARs had ∼40% (P 0.05) lower glycogen contents than SDRs after 6 h fasting. The injection of a gluconeogenic substrate, pyruvate, elicited a faster rise in glycaemia in NARs compared with SDRs. Overall, NARs displayed enhanced glucose tolerance, insulin secretion and gluconeogenic flux. The higher glucose tolerance in NARs compared with SDRs is attributed to enhanced islet responsiveness to secretagogues, while peripheral insulin sensitivity seems not to be involved in this alteration. We propose that the enhanced glucose metabolism is a chronic compensatory adaptation to decreased free fatty acid availability in NARs.


Subject(s)
Blood Glucose/metabolism , Fatty Acids, Nonesterified/blood , Hypertriglyceridemia/blood , Insulin/metabolism , Islets of Langerhans/metabolism , Serum Albumin/deficiency , Animals , Deficiency Diseases/blood , Deficiency Diseases/complications , Deficiency Diseases/diagnosis , Female , Glucose Tolerance Test/methods , Hypertriglyceridemia/etiology , Insulin Secretion , Rats , Rats, Sprague-Dawley
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