Biochemical analysis of respiratory function in cybrid cell lines harbouring mitochondrial DNA mutations

Author:

PALLOTTI Francesco12,BARACCA Alessandra3,HERNANDEZ-ROSA Evelyn1,WALKER Winsome F.1,SOLAINI Giancarlo4,LENAZ Giorgio3,MELZI d'ERIL Gian Vico2,DiMAURO Salvatore1,SCHON Eric A.15,DAVIDSON Mercy M.1

Affiliation:

1. Department of Neurology, College of Physicians and Surgeons, Columbia University, 630 West 168th Street, New York, NY 10032, U.S.A.

2. Dipartimento Scienze Biomediche Sperimentali e Cliniche, Università degli Studi dell'Insubria, Via Dunant 5, 21100 Varese, Italy

3. Dipartimento Biochimica ‘G. Moruzzi’, Università degli Studi di Bologna, Via Irnerio 48, 40126 Bologna, Italy

4. Scuola Superiore di Studi Universitari e di Perfezionamento ‘S. Anna’, Piazza dei Martiri 33, Pisa, Italy

5. Department of Genetics and Development, College of Physicians and Surgeons, Columbia University, 630 West 168th Street, New York, NY 10032, U.S.A.

Abstract

We analysed key biochemical features that reflect the balance between glycolysis and glucose oxidation in cybrids (cytoplasmic hybrids) harbouring a representative sample of mitochondrial DNA point mutations and deletions. The cybrids analysed had the same 143B cell nuclear background and were isogenic for the mitochondrial background. The 143B cell line and its ρ0 counterpart were used as controls. All cells analysed were in a dynamic state, and cell number, time of plating, culture medium, extracellular volume and time of harvest and assay were strictly controlled. Intra- and extra-cellular lactate and pyruvate levels were measured in homoplasmic wild-type and mutant cells, and correlated with rates of ATP synthesis and O2 consumption. In all mutant cell lines, except those with the T8993C mutation in the ATPase 6 gene, glycolysis was increased even under conditions of low glucose, as demonstrated by increased levels of extracellular lactate and pyruvate. Extracellular lactate levels were strictly and inversely correlated with rates of ATP synthesis and O2 consumption. These results show increased glycolysis and defective oxidative phosphorylation, irrespective of the type or site of the point mutation or deletion in the mitochondrial genome. The different biochemical consequences of the T8993C mutation suggest a uniquely different pathogenic mechanism for this mutation. However, the distinct clinical features associated with some of these mutations still remain to be elucidated.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference46 articles.

1. Diseases of the mitochondrial DNA;Wallace;Annu. Rev. Biochem.,1992

2. Mitochondrial DNA mutations in human disease;DiMauro;Am. J. Med. Genet.,2001

3. Use of fibroblast and lymphoblast cultures for detection of respiratory chain defects;Robinson;Methods Enzymol.,1996

4. Human cells lacking mtDNA: repopulation with exogenous mitochondria by complementation;King;Science,1989

5. Primary disorders of the mitochondrial DNA and the pathophysiology of mtDNA-related disorders;Schon,2001

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