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Woitzat, Y.

Publications and source records attributed to Woitzat, Y..

2 recordsLinked to original sources

Impairment of neuronal activity occurs at the early stages of the aggregation cascade of Ab1-42 and mutant Tau

Alzheimers disease (AD) is a progressive neurodegenerative disease that is characterized by the accumulation of amyloid-{beta} (A{beta}) plaques and neurofibrillary Tau tangles, ultimately leading to brain atrophy and death. To elucidate the relationship between the aberrant folding and aggregation of A{beta} and mutant Tau and neuronal function, we monitored neuronal activity in C. elegans AD models across age. Our findings reveal that expression of both A{beta} and Tau lead to significant reductions in neuronal activity and function in young adult animals preceding the accumulation of amyloid aggregates. Notably, A{beta} expression and aggregation in muscle tissue produced comparable detrimental effects on neuronal activity as its expression in neurons, suggesting that proteotoxic stress in muscle can influence neuronal function. This may occur through the propagation of A{beta} from muscle to neurons or through retrograde signaling pathways. Further, our new sub-stoichiometrically labeled Tau strains highlight that TauP301L,V337M has a significant impact on neuronal activity throughout aging. These results enhance our understanding of the early functional effects of amyloid aggregation in Alzheimers disease.

neuroscience↗

Ultraviolet B acts as a dietary restriction mimetic by targeting mitochondrial bioenergetics.

Ultraviolet (UV) light is a common environmental stimulus, and UV exposure confers health benefits, with cellular targets still unclear. Here, we show that ultraviolet B (UVB) exposure alters mitochondrial bioenergetics in C. elegans and human skin fibroblasts triggering loss of membrane potential, mitochondrial fission and calcium release. This initial stress is followed by a recovery process relying on mitochondrial biogenesis and fusion, which prevents lasting mitochondrial damage. Strikingly, the transient decline of ATP synthesis caused by UVB-induced mitochondrial changes triggers a swift metabolic re-wiring response that resembles effects of dietary restriction (DR) at the organismal and molecular levels. Both recovery from UVB and DR-mimetic UVB effects require mitochondrial fusion, and we found that dysfunction of fusion during aging abrogates UVB benefits and sensitizes old nematodes to UVB toxicity. Finally, UVB irradiation of the skin was effective in inducing organismal fasting-like phenomena in proof-of-concept tests in young mice. We thus uncovered a novel evolutionary conserved cellular mechanism connecting UV light and metabolism. Our findings illuminate potential DR-mimetic properties of UVB and explain late life-specific UVB intolerance.

cell biology↗