Assessment of mitochondrial respiratory chain enzymatic activities on tissues and cultured cells (original) (raw)
References
DiMauro, S. & Schon, E.A. Mitochondrial respiratory-chain diseases. N. Engl. J. Med.348, 2656–2668 (2003). ArticleCAS Google Scholar
Balaban, R.S., Nemoto, S. & Finkel, T. Mitochondria, oxidants, and aging. Cell120, 483–495 (2005). ArticleCAS Google Scholar
Szendroedi, J., Phielix, E. & Roden, M. The role of mitochondria in insulin resistance and type 2 diabetes mellitus. Nat. Rev. Endocrinol.8, 92–103 (2011). Article Google Scholar
Chandra, D. & Singh, K.K. Genetic insights into OXPHOS defect and its role in cancer. Biochim. Biophys. Acta1807, 620–625 (2011). ArticleCAS Google Scholar
Eng, C., Kiuru, M., Fernandez, M.J. & Aaltonen, L.A. A role for mitochondrial enzymes in inherited neoplasia and beyond. Nat. Rev. Cancer3, 193–202 (2003). ArticleCAS Google Scholar
Miro, O. et al. Mitochondrial DNA depletion and respiratory chain enzyme deficiencies are present in peripheral blood mononuclear cells of HIV-infected patients with HAART-related lipodystrophy. Antivir. Ther.8, 333–338 (2003). CASPubMed Google Scholar
Lebrecht, D., Setzer, B., Ketelsen, U.P., Haberstroh, J. & Walker, U.A. Time-dependent and tissue-specific accumulation of mtDNA and respiratory chain defects in chronic doxorubicin cardiomyopathy. Circulation108, 2423–2429 (2003). ArticleCAS Google Scholar
Lin, M.T. & Beal, M.F. Mitochondrial dysfunction and oxidative stress in neurodegenerative diseases. Nature443, 787–795 (2006). ArticleCAS Google Scholar
Winklhofer, K.F. & Haass, C. Mitochondrial dysfunction in Parkinson's disease. Biochim. Biophys. Acta1802, 29–44 (2010). ArticleCAS Google Scholar
Hauptmann, S. et al. Mitochondrial dysfunction: an early event in Alzheimer pathology accumulates with age in AD transgenic mice. Neurobiol. Aging30, 1574–1586 (2009). ArticleCAS Google Scholar
Reisch, A.S. & Elpeleg, O. Biochemical assays for mitochondrial activity: assays of TCA cycle enzymes and PDHc. Methods Cell Biol.80, 199–222 (2007). ArticleCAS Google Scholar
Villani, G. & Attardi, G. Polarographic assays of respiratory chain complex activity. Methods Cell Biol.80, 121–133 (2007). ArticleCAS Google Scholar
Kuznetsov, A.V. et al. Analysis of mitochondrial function in situ in permeabilized muscle fibers, tissues and cells. Nat. Protoc.3, 965–976 (2008). ArticleCAS Google Scholar
Vives-Bauza, C., Yang, L. & Manfredi, G. Assay of mitochondrial ATP synthesis in animal cells and tissues. Methods Cell Biol.80, 155–171 (2007). ArticleCAS Google Scholar
Janssen, A.J. et al. Measurement of the energy-generating capacity of human muscle mitochondria: diagnostic procedure and application to human pathology. Clin. Chem.52, 860–871 (2006). ArticleCAS Google Scholar
Solaini, G., Sgarbi, G., Lenaz, G. & Baracca, A. Evaluating mitochondrial membrane potential in cells. Biosci. Rep.27, 11–21 (2007). ArticleCAS Google Scholar
Spinazzi, M. et al. Optimization of respiratory chain enzymatic assays in muscle for the diagnosis of mitochondrial disorders. Mitochondrion11, 893–904 (2011). ArticleCAS Google Scholar
Medja, F. et al. Development and implementation of standardized respiratory chain spectrophotometric assays for clinical diagnosis. Mitochondrion9, 331–339 (2009). ArticleCAS Google Scholar
Gellerich, F.N., Mayr, J.A., Reuter, S., Sperl, W. & Zierz, S. The problem of interlab variation in methods for mitochondrial disease diagnosis: enzymatic measurement of respiratory chain complexes. Mitochondrion4, 427–439 (2004). ArticleCAS Google Scholar
Trounce, I.A., Kim, Y.L., Jun, A.S. & Wallace, D.C. Assessment of mitochondrial oxidative phosphorylation in patient muscle biopsies, lymphoblasts, and transmitochondrial cell lines. Methods Enzymol.264, 484–509 (1996). ArticleCAS Google Scholar
Salviati, L. et al. Copper supplementation restores cytochrome c oxidase activity in cultured cells from patients with SCO2 mutations. Biochem. J.363, 321–327 (2002). ArticleCAS Google Scholar
Angelini, C. et al. Childhood encephalomyopathy with cytochrome c oxidase deficiency, ataxia, muscle wasting, and mental impairment. Neurology36, 1048–1052 (1986). ArticleCAS Google Scholar
Zheng, X.X., Shoffner, J.M., Voljavec, A.S. & Wallace, D.C. Evaluation of procedures for assaying oxidative phosphorylation enzyme activities in mitochondrial myopathy muscle biopsies. Biochim. Biophys. Acta1019, 1–10 (1990). ArticleCAS Google Scholar
Frezza, C., Cipolat, S. & Scorrano, L. Organelle isolation: functional mitochondria from mouse liver, muscle and cultured fibroblasts. Nat. Protoc.2, 287–295 (2007). ArticleCAS Google Scholar
Palmer, J.W., Tandler, B. & Hoppel, C.L. Biochemical differences between subsarcolemmal and interfibrillar mitochondria from rat cardiac muscle: effects of procedural manipulations. Arch. Biochem. Biophys.236, 691–702 (1985). ArticleCAS Google Scholar
Jonckheere, A.I., Smeitink, J.A. & Rodenburg, R.J. Mitochondrial ATP synthase: architecture, function and pathology. J. Inherit. Metab Dis. (2011).
Barrientos, A., Fontanesi, F. & Diaz, F. Evaluation of the mitochondrial respiratory chain and oxidative phosphorylation system using polarography and spectrophotometric enzyme assays. Curr. Protoc. Hum. Genet.63, 19.3.1–1 (2009). Google Scholar
Grad, L.I., Sayles, L.C. & Lemire, B.D. Isolation and functional analysis of mitochondria from the nematode Caenorhabditis elegans. Methods Mol. Biol.372, 51–66 (2007). ArticleCAS Google Scholar
Rowley, N. et al. Mdj1p, a novel chaperone of the DnaJ family, is involved in mitochondrial biogenesis and protein folding. Cell77, 249–259 (1994). ArticleCAS Google Scholar
Janssen, A.J. et al. Spectrophotometric assay for complex I of the respiratory chain in tissue samples and cultured fibroblasts. Clin. Chem.53, 729–734 (2007). ArticleCAS Google Scholar
Moghaddas, S., Distler, A.M., Hoppel, C.L. & Lesnefsky, E.J. Quinol type compound in cytochrome c preparations leads to non-enzymatic reduction of cytochrome c during the measurement of complex III activity. Mitochondrion8, 155–163 (2008). ArticleCAS Google Scholar
Fischer, J.C. et al. Investigation of mitochondrial metabolism in small human skeletal muscle biopsy specimens. Improvement of preparation procedure. Clin. Chim. Acta145, 89–99 (1985). ArticleCAS Google Scholar
Bradford, M.M. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal. Biochem.72, 248–254 (1976). ArticleCAS Google Scholar
Chretien, D., Bourgeron, T., Rotig, A., Munnich, A. & Rustin, P. The measurement of the rotenone-sensitive NADH cytochrome c reductase activity in mitochondria isolated from minute amount of human skeletal muscle. Biochem. Biophys. Res. Commun.173, 26–33 (1990). ArticleCAS Google Scholar