AI Article Synopsis

  • NADH is crucial for energy production in neurons and is found in both free and bound forms, with only free NADH being utilized for oxidative phosphorylation.
  • In a study on aging in mice, it was hypothesized that older neurons have significantly lower free NADH levels compared to younger ones, especially in an Alzheimer's disease model (3xTg-AD).
  • Results showed a notable decline in free NADH concentration with age, leading to decreased energy regeneration capacity in neurons, highlighting bioenergetic deficits associated with aging and Alzheimer's disease.

Article Abstract

Nicotinamide adenine dinucleotide (reduced form: NADH) serves as a vital redox-energy currency for reduction-oxidation homeostasis and fulfilling energetic demands. While NADH exists as free and bound forms, only free NADH is utilized for complex I to power oxidative phosphorylation, especially important in neurons. Here, we studied how much free NADH remains available for energy production in mitochondria of old living neurons. We hypothesize that free NADH in neurons from old mice is lower than the levels in young mice and even lower in neurons from the 3xTg-AD Alzheimer's disease (AD) mouse model. To assess free NADH, we used lifetime imaging of NADH autofluorescence with 2-photon excitation to be able to resolve the pool of NADH in mitochondria, cytoplasm, and nuclei. Primary neurons from old mice were characterized by a lower free/bound NADH ratio than young neurons from both non-transgenic (NTg) and more so in 3xTg-AD mice. Mitochondrial compartments maintained 26 to 41% more reducing NADH redox state than cytoplasm for each age, genotype, and sex. Aging diminished the mitochondrial free NADH concentration in NTg neurons by 43% and in 3xTg-AD by 50%. The lower free NADH with age suggests a decline in capacity to regenerate free NADH for energetic supply to power oxidative phosphorylation which further worsens in AD. Applying this non-invasive approach, we showed the most explicit measures yet of bioenergetic deficits in free NADH with aging at the subcellular level in live neurons from in-bred mice and an AD model.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6423217PMC
http://dx.doi.org/10.1007/s11357-019-00052-8DOI Listing

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