Key result
A diet lacking methyl donors induces myocardium hypertrophy and detrimental effects on fatty acid oxidation and energy metabolism through imbalanced methylation/acetylation of PGC-1α.
Why the study?
Does a diet lacking methyl donors induce cardiomyopathy in weaning rats?
Does a diet lacking methyl donors induce cardiomyopathy in weaning rats?
Methyl donor deficiency during gestation and lactation induces metabolic cardiomyopathy in offspring through altered PGC-1α regulation, highlighting a potential mechanism for perinatal cardiomyopathies.
May link maternal methyl donor deficiency to offspring cardiomyopathy; hypothesis-generating for human perinatal disease and requires clinical validation.
Cardiomyopathies occur by mechanisms that involve inherited and acquired metabolic disorders. Both folate and vitamin B12 deficiencies are associated with left ventricular dysfunction, but mechanisms that underlie these associations are not known. However, folate and vitamin B12 are methyl donors needed for the synthesis of S-adenosylmethionine, the substrate required for the activation by methylation of regulators of energy metabolism. We investigated the consequences of a diet lacking methyl donors in the myocardium of weaning rats from dams subjected to deficiency during gestation and lactation. Positron emission tomography (PET), microscope and metabolic examinations evidenced a myocardium hypertrophy, with cardiomyocyte enlargement, disturbed mitochondrial alignment, lipid droplets, decreased respiratory activity of complexes I and II and decreased S-adenosylmethionine:S-adenosylhomocysteine ratio. The increased concentrations of triglycerides and acylcarnitines were consistent with a deficit in fatty acid oxidation. These changes were explained by imbalanced acetylation/methylation of PGC-1α, through decreased expression of SIRT1 and PRMT1 and decreased S-adenosylmethionine:S-adenosylhomocysteine ratio, and by decreased expression of PPARα and ERRα. The main changes of the myocardium proteomic study were observed for proteins regulated by PGC-1α, PPARs and ERRα. These proteins, namely trifunctional enzyme subunit α-complex, short chain acylCoA dehydrogenase, acylCoA thioesterase 2, fatty acid binding protein-3, NADH dehydrogenase (ubiquinone) flavoprotein 2, NADH dehydrogenase (ubiquinone) 1α-subunit 10 and Hspd1 protein, are involved in fatty acid oxidation and mitochondrial respiration. In conclusion, the methyl donor deficiency produces detrimental effects on fatty acid oxidation and energy metabolism of myocardium through imbalanced methylation/acetylation of PGC-1α and decreased expression of PPARα and ERRα. These data are of pathogenetic relevance to perinatal cardiomyopathies.
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Garcia et al. (2011) studied Cardiomyopathy. Diet lacking methyl donors was evaluated on Myocardium hypertrophy and metabolic changes. A diet lacking methyl donors induces myocardium hypertrophy and detrimental effects on fatty acid oxidation and energy metabolism through imbalanced methylation/acetylation of PGC-1α.
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