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Biology subjects

Euro, L.

Publications and source records attributed to Euro, L..

2 recordsLinked to original sources

NAD+ precursor treatment prevents cardiomyopathybut disrupts erythroid maturation in mitochondrial progeria

Nicotinamide adenine dinucleotide (NAD+) plays a central role in energy metabolism, and its decline is linked to various degenerative diseases. While NAD+ restoration holds therapeutic promise, its long term, tissue-specific consequences remain poorly understood. We investigated effects of nicotinamide riboside (NR) supplementation for "mutator" mice manifesting mitochondrial progeria. Our results reveal strikingly divergent outcomes: in proliferative bone marrow, NR-treated mutators show reductive stress with accumulation of NADH/NADPH, altered amino acid, nucleotide, folate levels and impaired heme biosynthesis. In blood, erythrocyte maturation defects are aggravated, exacerbating anemia. Conversely, in postmitotic cardiac tissue, NR enhanced contractility, reduces stress response markers and normalized metabolic profile. These findings indicate that while being beneficial for heart, chronic NAD+ boosting can compromise erythrocyte maturation in the context of mitochondrial disease. The data emphasize importance of evaluating systemic effects of NAD+ boosting therapies beyond the primary affected tissues and development of tissue-specific metabolic interventions for degenerative diseases. HighlightsO_LIChronic nicotinamide riboside supplementation exacerbates anemia and disrupts erythroid maturation in progeric mice. C_LIO_LIIn proliferative bone marrow cells, NR induces redox imbalance and drives profound metabolic dysregulation. C_LIO_LINR suppresses heme biosynthesis and iron transport pathways in the bone marrow. C_LIO_LIIn the heart, NR restores NAD+ levels, enhances cardiac function, and reduces metabolic stress. C_LI

physiology↗

Dynamics of blood NAD and glutathione in health, disease, aging and under NAD-booster treatment

Nicotinamide adenine dinucleotide (NAD) and glutathione are vital molecules that control redox-state, enzyme functions and metabolic flux in hundreds of cellular metabolic reactions. High NAD+ level occurs in fasting and has been associated with health outcomes in model systems, while low NAD+/NADH ratio occurs in specific diseases. Still, the normal, booster-treated or disease-related levels of NADs or glutathiones are not well known in humans. Here, we present a standardized technology for high-throughput quantitative measurement of NAD+, NADH, NADP+, NADPH, GSH and GSSG from a single whole-blood sample. In healthy population (n=299;18-70 year-olds) redox metabolites follow normal distribution in blood and remain unchanged during aging. NAD-boosting increased 4-6 fold the blood NAD+ depending on individual, pointing to need of personalized dose adjustment in treatment trials. In patients with cancer, diabetes or neurodegeneration, NADs and glutathiones showed disease-dependent "redox fingerprints". The evidence highlights the potential of redox profiling as an indicator of metabolic pathology and as a measure of treatment response.

pharmacology and toxicology↗