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At least 19 recordsLinked to original sources

Skeletal muscle mitochondrial functions, mitochondrial DNA copy numbers, and gene transcript profiles in type 2 diabetic and nondiabetic subjects at equal levels of low or high insulin and euglycemia.

We investigated whether previously reported muscle mitochondrial dysfunction and altered gene transcript levels in type 2 diabetes might be secondary to abnormal blood glucose and insulin levels rather than an intrinsic defect of type 2 diabetes. A total of 13 type 2 diabetic and 17 nondiabetic subjects were studied on two separate occasions while maintaining similar insulin and glucose levels in both groups by 7-h infusions of somatostatin, low- or high-dose insulin (0.25 and 1.5 mU/kg of fat-free mass per min, respectively), and glucose. Muscle mitochondrial DNA abundance was not different between type 2 diabetic and nondiabetic subjects at both insulin levels, but the majority of transcripts in muscle that are involved mitochondrial functions were expressed at lower levels in type 2 diabetes at low levels of insulin. However, several gene transcripts that are specifically involved in the electron transport chain were expressed at higher levels in type 2 diabetic patients. After the low-dose insulin infusion, which achieved postabsorptive insulin levels, the muscle mitochondrial ATP production rate (MAPR) was not different between type 2 diabetic and nondiabetic subjects. However, increasing insulin to postprandial levels increased the MAPR in nondiabetic subjects but not in type 2 diabetic patients. The lack of MAPR increment in response to high-dose insulin in type 2 diabetic patients occurred in association with reduced glucose disposal and expression of peroxisome proliferator-activated receptor-gamma coactivator 1alpha, citrate synthase, and cytochrome c oxidase I. In conclusion, the current data supports that muscle mitochondrial dysfunction in type 2 diabetes is not an intrinsic defect, but instead a functional defect related to impaired response to insulin.

Biopsy↗

Drosophila melanogaster homolog of Down syndrome critical region 1 is critical for mitochondrial function.

Mitochondrial dysfunction has emerged as a common theme that underlies numerous neurological disorders, including Down syndrome. Down syndrome cultures and tissues show mitochondrial damage such as impaired mitochondrial enzyme activities, defective mitochondrial DNA repairs and accumulation of toxic free radicals, but the cause of mitochondrial dysfunction remains elusive. Here we demonstrate that the Drosophila melanogaster homolog of human Down syndrome critical region gene 1 (DSCR1), nebula (also known as sarah, sra), has a crucial role in the maintenance of mitochondrial function and integrity. We report that nebula protein is located in the mitochondria. An alteration in the abundance of nebula affects mitochondrial enzyme activities, mitochondrial DNA content, and the number and size of mitochondria. Furthermore, nebula interacts with the ADP/ATP translocator and influences its activity. These results identify nebula/DSCR1 as a regulator of mitochondrial function and integrity and further suggest that an increased level of DSCR1 may contribute to the mitochondrial dysfunction seen in Down syndrome.

Adenosine Triphosphate↗

[Effects of Young's solution (YNG solution) on cardiac function and mitochondrial function during one hour ischemia at 30 degrees C and after reperfusion].

In a previous paper from this laboratory, protective effects of YNG solution on the myocardial mechanical function and metabolism of the heart arrested at 10 degrees C ascribable to the presence of Mg2+ were demonstrated. In order to further clarify the role played by Mg2+ in the protection, the present experiment was conducted using the isolated perfused guinea pig heart arrested at 30 degrees C. While the time to arrest of the contraction was equally short both with YNG (K+ + Mg2+) and K (K+) solutions, the time to resumption of contraction was significantly longer with K solution than with YNG solution, and the regular contraction was not resumed with the former solution. The recovery of the coronary flow, left ventricular pressure and dp/dt after reperfusion was around 100% with YNG solution, while the recovery was significantly poorer with K solution. Although the mitochondrial function was well maintained during the arrest both with YNG and K solution, the recovery of the mitochondrial function after reperfusion was observed only with YNG solution; severe damage was noted in mitochondria of the hearts arrested with K solution. There was a good correlation between the changes in mitochondrial function and those in cardiac function.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Muscle fiber contractile type influences the regulation of mitochondrial function.

Mitochondrial respiratory rates and regulation by phosphate acceptors were studied on permeabilized fiber bundles differing in their myosin heavy chain profiles. The acceptor control ratio, an indicator of oxidation to phosphorylation coupling, and mitochondrial K(m) for ADP were the highest in type I, intermediate in mixed IIa/IIx and the lowest in IIx and predominantly IIb fiber bundles. A functional coupling between mitochondrial creatine kinase and oxidative phosphorylation occurred in type I and IIa/IIx fiber bundles, exclusively. Our study suggests that mitochondrial functioning in fast IIa fibers is closer to that of the slow/I than fast IIx or IIb fibers.

Adenosine Diphosphate↗

Noninvasive redox fluorometry: how light can be used to monitor alterations of corneal mitochondrial function.

Ultraviolet light can result in corneal, lenticular and retinal damage; however it can also be used (at much lower intensities) to measure the light induced alteration of cellular respiration and function. Mitochondrial function can be measured by noninvasive redox fluorometry which measures the intrinsic mitochondrial fluorescence of the reduced pyridine nucleotides (NADH + NADPH) and of the oxidized flavoproteins. Impaired mitochondrial respiration results in an increase in the reduced pyridine nucleotide fluorescence signal (366 nm excitation and 450 nm emission) and in a decrease in the oxidized flavoprotein fluorescence signal (450 nm excitation and 550 nm emission). These redox signals are sensitive to the cellular supply and utilization of oxygen and glucose as well as the mitochondrial work load. The effects of a reduced oxygen supply to the corneal epithelial surface can be measured. While redox fluorometry has been applied to the study of corneal hypoxia, it may also be used to monitor the effects of light induced damage to the lens and the retina. Noninvasive redox fluorometry is a sensitive technique to measure the effects of light on mitochondrial function in ocular tissue.

Animals↗

Mitochondrial functionality and mitochondrial DNA content in lymphocytes of vertically infected human immunodeficiency virus-positive children with highly active antiretroviral therapy-related lipodystrophy.

Mitochondria functionality and apoptosis were studied in peripheral blood lymphocytes (PBL) of human immunodeficiency virus type 1-infected children, with or without lipodystrophy (LD), who were receiving highly active antiretroviral therapy (HAART) and in PBL of healthy control subjects (HCs). By flow cytometry, mitochondrial (mt) membrane potential, mt mass, intra-mt cardiolipin distribution, and early and late apoptosis in fresh PBL or in PBL cultured with different stimuli were assessed. mtDNA content was evaluated in fresh PBL by an original double-competitive quantitative polymerase chain reaction method, which enabled direct quantification of the number of mtDNA copies present in human lymphocytes. PBL from LD-positive and LD-negative children and from HCs were similar in mt functionality and in their tendency to undergo apoptosis. mtDNA content was also similar in PBL of LD-positive children and HCs, suggesting that normal mt functionality and normal tendency to undergo apoptosis are present in PBL of children with HAART-associated LD.

Acquired Immunodeficiency Syndrome↗

[Mitochondrial function and mitochondrial DNA in a series of 64 patients suspected of having mitochondrial myopathy].

Biochemical results concerning 64 patients suspected of mitochondrial myopathies are presented. Four clinical groups were studied including 21 encephalomyopathies, 42 ocular myopathies, 8 isolated myopathies and 3 cardiomyopathies. In 26 cases, the coexistence of a normal mitochondrial DNA and a mutated mitochondrial DNA (heteroplasmy) was found (19 simple deletions, 4 multiple deletions and 3 punctual mutations) and all cases presented with ocular disorders (excepted 2 cases with MERRF). Furthermore, 1 complex I deficiency (1 ocular myopathy), 1 complex IV deficiency (1 adult encephalomyopathy type Leigh), 3 complexes I + IV deficiencies (2 cases with a cardiomyopathy and 1 familial MELAS) and 2 pyruvate (1 adult from of Leigh's encephalomyopathy) dehydrogenase deficiencies (clinically and genetically different) did not show evidence of mitochondrial DNA mutation.

Blotting, Western↗

Influence of cytarabine on mitochondrial function and mitochondrial biogenesis.

Although replication of nuclear DNA is inhibited by cytarabine (ara-C), protein synthesis in the nucleocytoplasm appears to continue unabated for the duration of at least the time of the normal cell cycle. ara-C treatment of human leukemic cells resulted in increased mitochondrial membrane potential and adenosine-5'-triphosphate (ATP) production and increased activity of enzymes, coded on nuclear DNA (citrate synthetase), as well as of enzymes with subunits coded on mitochondrial DNA (cytochrome c oxidase). These mitochondrial changes occurred during a period of cell-cycle arrest, while cell size and cellular protein content continued to increase. These phenomena appeared to precede the ultimate cell death.

Cell Line↗

TNF-alpha and IL-1 alpha inhibit both pyruvate dehydrogenase activity and mitochondrial function in cardiomyocytes: evidence for primary impairment of mitochondrial function.

Cytokines such as tumor necrosis factor alpha (TNF alpha) and Interleukin-1alpha (IL1alpha) are known to influence energy metabolism and mitochondrial function in tumor and vascular smooth muscle cells. The aim of the present study was to investigate whether in cardiomyocytes mitochondrial function and PDH activity may also be impaired by TNF alpha and IL1alpha. Pyruvate dehydrogenase (PDH) activity and mitochondrial oxygen consumption of cultured cardiomyocytes were determined after subchronic exposure (24 h) to TNF alpha (1, 10, 100, 1000 I.U./ml) and IL1alpha (0.1, 1, 10, 100 I.U./ml). TNF alpha- and IL1alpha- exposure of the cardiomyocytes resulted in a concentration dependent decrease of PDH activity up to 38%. In parallel, selective oxygen consumption of the respiratory chain complexes I (NADH:ubiquinone oxidoreductase) and II (succinate:ubiquinone oxidoreductase) decreased by up to 45%. Addition of the PDH activator dichloracetate (0.01 M) resulted in complete restoration of PDH activity but not of mitochondrial function. The results suggest a primary inhibition of the mitochondrial respiratory chain by TNF alpha and IL1alpha and a subsequent down regulation of PDH activity.

Animals↗

NHE-1 inhibition improves cardiac mitochondrial function through regulation of mitochondrial biogenesis during postinfarction remodeling.

We have recently demonstrated that mitochondrial respiratory dysfunction and mitochondrial permeability transition pore opening during postinfarction remodeling are prevented by the Na(+)/H(+) exchange-1 (NHE-1)-specific inhibitor EMD-87580 (EMD). One of the mechanisms underlying the beneficial effect of NHE-1 inhibition on mitochondria could result from the drug's ability to regulate transcriptional factors responsible for mitochondrial function. In the present study, the effect of EMD on the expression of nuclear factors involved in mitochondrial biogenesis and expression of nuclear (COXNUCSUB IV) and mitochondrial (COXMITSUB I) encoded cytochrome c oxidase subunits has been studied in rat hearts subjected to either 12 or 18 wk of coronary artery ligation (CAL). Remodeling induced an increase in expression of the hypertrophic marker gene atrial natriuretic peptide, especially 12 wk after CAL. The mRNA level of the peroxisome proliferator-activated receptor-gamma coactivator-1alpha and its downstream factors, including nuclear respiratory factor 1 and 2, mitochondrial transcription factor A, COXNUCSUB IV, and COXMITSUB I, were significantly reduced in hearts both 12 and 18 wk after ligation compared with sham-operated hearts. Dietary EMD provided immediately after ligation attenuated downregulation of mitochondrial transcription factors with a parallel decrease of hypertrophic marker gene expression. Regression analysis demonstrated a strong positive correlation between the transcription factors and mitochondrial respiratory function. Thus our study shows that the downregulation of mitochondrial transcription factors induced by postinfarction remodeling can be significantly attenuated by NHE-1 inhibition with a further improvement of mitochondrial function in these hearts.

Animals↗

High-fat diet postinfarction enhances mitochondrial function and does not exacerbate left ventricular dysfunction.

Lipid accumulation in nonadipose tissue due to enhanced circulating fatty acids may play a role in the pathophysiology of heart failure, obesity, and diabetes. Accumulation of myocardial lipids and related intermediates, e.g., ceramide, is associated with decreased contractile function, mitochondrial oxidative phosphorylation, and electron transport chain (ETC) complex activities. We tested the hypothesis that the progression of heart failure would be exacerbated by elevated myocardial lipids and an associated ceramide-induced inhibition of mitochondrial oxidative phosphorylation and ETC complex activities. Heart failure (HF) was induced by coronary artery ligation. Rats were then randomly assigned to either a normal (10% kcal from fat; HF, n = 8) or high saturated fat diet (60% kcal from saturated fat; HF + Sat, n = 7). Sham-operated animals (sham; n = 8) were fed a normal diet. Eight weeks postligation, left ventricular (LV) function was assessed by echocardiography and catheterization. Subsarcolemmal and interfibrillar mitochondria were isolated from the LV. Heart failure resulted in impaired LV contractile function [decreased percent fractional shortening and peak rate of LV pressure rise and fall (+/-dP/dt)] and remodeling (increased end-diastolic and end-systolic dimensions) in HF compared with sham. No further progression of LV dysfunction was evident in HF + Sat. Mitochondrial state 3 respiration was increased in HF + Sat compared with HF despite elevated myocardial ceramide. Activities of ETC complexes II and IV were elevated in HF + Sat compared with HF and sham. High saturated fat feeding following coronary artery ligation was associated with increased oxidative phosphorylation and ETC complex activities and did not adversely affect LV contractile function or remodeling, despite elevations in myocardial ceramide.

Animals↗

[The protective effects of sini decoction on mitochondrial function in adriamycin-induced heart failure rats].

OBJECTIVE: The role of mitochondria in Adriamycin (ADR) -induced heart failure and the protective effects of Sini Decoction (SND) were investigated. METHODS: SD rats were randomly divided into three groups, control group, heart failure group (model group) and SND group. ADR was injected in the rats of heart failure group and SND group by caudal vein. After injection, the rats in SND group were given SND (3.75/kg/d, p. o.). Three weeks later, cardiac function, mitochondrial swelling, content of malondialdehyde (MDA), activity of Mn SOD, Na+-K+ ATPase and Ca2+ ATPase were measured. The mRNA expression of Mn SOD was also detected by RT-PCR. RESULTS: Compared with model group, the cardiac function, the activity and the mRNA expression of Mn SOD and the activity of Na+-K+ ATPase and Ca2+ ATPase were significantly elevated, while the degree of mitochondria swelling and the content of MDA were reduced in SND-treated rats. CONCLUSION: The data suggests that oxidative stress is present in the mitochondria of myocardium in ADR-induced heart failure rats and it can be reduced by SND. The mechanism may be closely related to the protective effects on mitochondria.

Animals↗

Riboflavin and mouse hepatic cell structure and function. Mitochondrial oxidative metabolism in severe deficiency states.

Weanling mice were fed a riboflavin-deficient diet or the same diet with added galactoflavin. Both diets produced changes in hepatic mitochondrial morphology, the most striking of which was the development of giant mitochondria. The livers from these animals were fractionated, and the nuclear and mitochondrial fractions were examined by electron microscopy. The nuclear fraction contained giant mitochondria; the mitochondrial fraction contained the remaining normal to moderately enlarged mitochondria. Oxidative studies were carried out on the mitochondrial fractions. It was found that both experimental diets resulted in a marked reduction in fatty acid oxidation by the mitochondria. In addition, the mitochondria of mice with advanced riboflavin deficiency (induced simply by a riboflavin-free diet) showed a severely decreased state 3 (ADP-stimulated) respiration and depressed respiratory control ratios, but normal ADP/O ratios. In contrast, mitochondrial performance (aside from fatty acid oxidation) in galactoflavin-supplemented, riboflavin-deficient mice was related to the gross appearance, i.e., color, of the liver from which these organelles were derived. In mice fed this diet, the livers were either red or yellow. Mitochondria from yellow livers showed normal oxidative phosphorylation. Mitochondria from red livers showed a serious reduction in state 3 oxidation. This study demonstrates that in the mouse, riboflavin deficiency, however produced, not only results in altered mitochondrial morphology but also results in significantly impaired mitochondrial function.

Adenosine Diphosphate↗

[Level of functional mitochondrial activity of the preserved kidney].

The authors investigated the activity of mitochondria from cells of the cortical and of the medullar structures of the dog kidney perfused in pulsatile flow and under hypothermia for a duration of 12 hours, as well as for 24 hours. The swelling-contraction process was determined, and the thiol (T-SH) groups in mitochondrial suspensions. The kinetics of the mitochondrial swelling showed moderate reduction of the activity, differentiated in the medullary and in the cortical areas, and depending on the duration of the perfusion. The energetic processes in the medullary layer were less affected than in the cortical. There was correlation of mitochondrial function and the contents in thiol groups.

Animals↗

Ageing muscle: clonal expansions of mitochondrial DNA point mutations and deletions cause focal impairment of mitochondrial function.

Although mitochondrial DNA deletions have been shown to accumulate in cytochrome c oxidase deficient muscle fibres of ageing muscle, this has not been demonstrated for point mutations. In this study, we investigated the occurrence of mitochondrial DNA alterations (point mutations and deletions) in cytochrome c oxidase deficient muscle fibres from 14 individuals, without muscle disease, aged 69-82 years. Immunohistochemical investigation showed that the majority of the cytochrome c oxidase deficient muscle fibres expressed reduced levels of subunit II of cytochrome c oxidase, which is encoded by mitochondrial DNA, whereas there was normal or increased expression of subunit IV of cytochrome c oxidase, which is encoded by nuclear DNA. This pattern is typical for mitochondrial DNA mutations causing impaired mitochondrial translation. Single muscle fibres (109 cytochrome c oxidase deficient and 109 normal fibres) were dissected and their DNA extracted. Mitochondrial DNA point mutations were searched for in five tRNA genes by denaturing gradient gel electrophoresis while deletions were looked for by polymerase chain reaction amplification. High levels of clonally expanded point mutations were identified in eight cytochrome c oxidase deficient fibres but in none of the normal ones. They included the previously described pathogenic tRNALeu(UUR)A3243G and tRNALysA8344G mutations and three original mutations: tRNAMetT4460C, tRNAMetG4421A, and a 3-bp deletion in the tRNALeu(UUR) gene. Four different large-scale mitochondrial DNA deletions were identified in seven cytochrome c oxidase deficient fibres and in one of the normal ones. There was no evidence of depletion of mitochondrial DNA by in situ hybridisation experiments. Our data show that mitochondrial DNA point mutations, as well as large-scale deletions, are associated with cytochrome c oxidase deficient muscle fibre segments in ageing. Their focal accumulation causes significant impairment of mitochondrial function in individual cells in spite of low overall levels of mitochondrial DNA mutations in muscle.

Aged↗

BTN1, a yeast gene corresponding to the human gene responsible for Batten's disease, is not essential for viability, mitochondrial function, or degradation of mitochondrial ATP synthase.

The Saccharomyces cerevisiae gene BTN1, encodes a 408 amino acid putative integral membrane protein, which is 39% identical and 59% similar to the human Cln3p, whose mutant forms are responsible for Batten's disease and for a diminished degradation of mitochondrial ATPase synthase subunit c. Disruption experiments established that Btn1p is not essential for viability, mitochondrial function, or degradation of mitochondrial ATP synthase in yeast.

Amino Acid Sequence↗

Cyclin D1 determines mitochondrial function in vivo.

The cyclin D1 gene encodes a regulatory subunit of the holoenzyme that phosphorylates and inactivates the pRb tumor suppressor to promote nuclear DNA synthesis. cyclin D1 is overexpressed in human breast cancers and is sufficient for the development of murine mammary tumors. Herein, cyclin D1 is shown to perform a novel function, inhibiting mitochondrial function and size. Mitochondrial activity was enhanced by genetic deletion or antisense or small interfering RNA to cyclin D1. Global gene expression profiling and functional analysis of mammary epithelial cell-targeted cyclin D1 antisense transgenics demonstrated that cyclin D1 inhibits mitochondrial activity and aerobic glycolysis in vivo. Reciprocal regulation of these genes was observed in cyclin D1-induced mammary tumors. Cyclin D1 thus integrates nuclear DNA synthesis and mitochondrial function.

Animals↗