| Home > In process > Glucose hypometabolism and hyperphosphorylated Tau synergistically drive neuronal necroptosis. |
| Journal Article | DZNE-2026-00933 |
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2026
Cell Press
[Cambridge, Mass.]
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Please use a persistent id in citations: doi:10.1016/j.neuron.2026.03.035
Abstract: The combination of brain glucose hypometabolism and hyperphosphorylated Tau (p-Tau) pathology is the strongest known clinical predictor of imminent cognitive decline, yet how these factors cooperate to drive dementia remains unknown. Here, we show that glucose hypometabolism synergizes with p-Tau to trigger neuronal loss through necroptosis. Under low-glucose conditions, accumulated p-Tau forms a molecular scaffold that directly recruits RIPK1, while concomitant loss of the necroptosis checkpoint A20 removes a critical brake on this death pathway. This dual mechanism thereby precipitates neuronal necroptosis. Restoring A20 expression with acetyl-L-carnitine or preventing the p-Tau-RIPK1 interaction using a RIPK1-derived competitive peptide alleviates neuronal necroptosis and brain atrophy in a Tau transgenic mouse model. Collectively, our findings uncover a previously unrecognized metabolism-driven necroptotic signaling cascade initiated by a p-Tau-RIPK1 hub, providing mechanistic insight into how glucose hypometabolism synergizes with p-Tau to drive neurodegeneration.
Keyword(s): Animals (MeSH) ; tau Proteins: metabolism (MeSH) ; tau Proteins: genetics (MeSH) ; Glucose: metabolism (MeSH) ; Neurons: metabolism (MeSH) ; Neurons: pathology (MeSH) ; Necroptosis: physiology (MeSH) ; Phosphorylation (MeSH) ; Mice (MeSH) ; Receptor-Interacting Protein Serine-Threonine Kinases: metabolism (MeSH) ; Mice, Transgenic (MeSH) ; Humans (MeSH) ; Brain: metabolism (MeSH) ; Brain: pathology (MeSH) ; Signal Transduction (MeSH) ; glucose hypometabolism ; necroptosis ; neurodegeneration ; p-Tau ; tau Proteins ; Glucose ; Receptor-Interacting Protein Serine-Threonine Kinases
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