Secondary mitochondrial dysfunction in propionic aciduria: a pathogenic role for endogenous mitochondrial toxins

Author:

Schwab Marina A.1,Sauer Sven W.1,Okun Jürgen G.1,Nijtmans Leo G. J.2,Rodenburg Richard J. T.2,van den Heuvel Lambert P.2,Dröse Stefan3,Brandt Ulrich3,Hoffmann Georg F.1,Ter Laak Henk2,Kölker Stefan1,Smeitink Jan A. M.2

Affiliation:

1. Department of General Pediatrics, Division of Inborn Metabolic Diseases, University Children's Hospital Heidelberg, Im Neuenheimer Feld 150, D-69120 Heidelberg, Germany

2. Department of Pediatrics, Radboud University Nijmegen Medical Center – NCMD (Nijmegen Center for Mitochondrial Disorders), Geert Grooteplein 10, NL-6500 HB Nijmegen, The Netherlands

3. Molecular Bioenergetics Group, Gustav-Embden-Zentrum der Biologischen Chemie, Johann Wolfgang Goethe University, Theodor-Stern-Kai 7, D-60590 Frankfurt/Main, Germany

Abstract

Mitochondrial dysfunction during acute metabolic crises is considered an important pathomechanism in inherited disorders of propionate metabolism, i.e. propionic and methylmalonic acidurias. Biochemically, these disorders are characterized by accumulation of propionyl-CoA and metabolites of alternative propionate oxidation. In the present study, we demonstrate uncompetitive inhibition of PDHc (pyruvate dehydrogenase complex) by propionyl-CoA in purified porcine enzyme and in submitochondrial particles from bovine heart being in the same range as the inhibition induced by acetyl-CoA, the physiological product and known inhibitor of PDHc. Evaluation of similar monocarboxylic CoA esters showed a chain-length specificity for PDHc inhibition. In contrast with CoA esters, non-esterified fatty acids did not inhibit PDHc activity. In addition to PDHc inhibition, analysis of respiratory chain and tricarboxylic acid cycle enzymes also revealed an inhibition by propionyl-CoA on respiratory chain complex III and α-ketoglutarate dehydrogenase complex. To test whether impairment of mitochondrial energy metabolism is involved in the pathogenesis of propionic aciduria, we performed a thorough bioenergetic analysis in muscle biopsy specimens of two patients. In line with the in vitro results, oxidative phosphorylation was severely compromised in both patients. Furthermore, expression of respiratory chain complexes I–IV and the amount of mitochondrial DNA were strongly decreased, and ultrastructural mitochondrial abnormalities were found, highlighting severe mitochondrial dysfunction. In conclusion, our results favour the hypothesis that toxic metabolites, in particular propionyl-CoA, are involved in the pathogenesis of inherited disorders of propionate metabolism, sharing mechanistic similarities with propionate toxicity in micro-organisms.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference25 articles.

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2. Fatal propionic acidemia in mice lacking propionyl-CoA carboxylase and its rescue by postnatal, liver-specific supplementation via a transgene;Miyazaki;J. Biol. Chem.,2001

3. CT and MR of the brain in disorders of the propionate and methylmalonate metabolism;Brismar;Am. J. Neuroradiol.,1994

4. On the mechanism of action of the antifungal agent propionate;Brock;Eur. J. Biochem.,2004

5. Effect of 2-methylcitrate on citrate metabolism: implications for the management of patients with propionic acidemia and methylmalonic aciduria;Cheema-Dhadli;Pediatr. Res.,1975

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