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Peripheral Metabolic Reprogramming Links TDP-43 Proteinopathy to Sleep Disruption

Rodriguez, A.; Belfer, S. J.; Luong, J.; Shcherbakova, O.; Kain, P.; Sengupta, A.; Perlegos, A.; Jin, Z.; Weljie, A.; Bonini, N. M.; Kayser, M. S.

2026-02-24 neuroscience
10.64898/2026.02.23.707321 bioRxiv
Show abstract

Sleep disruption is an early and prevalent feature of neurodegenerative disease, commonly attributed to neuronal circuit dysfunction or cell loss. However, sleep is tightly coupled to metabolic state, raising the possibility that systemic metabolic abnormalities contribute to disease-associated sleep phenotypes. Using Drosophila models of TDP-43 proteinopathy, we investigated whether peripheral metabolic dysfunction plays a causal role in sleep disruption. We show that TDP-43 expression induces a chronic, starvation-like metabolic state characterized by depletion of peripheral carbohydrate and lipid stores despite normal feeding. Pharmacological restoration of sleep fails to correct these metabolic defects, whereas improving peripheral metabolic state through dietary or genetic interventions robustly rescues sleep. An RNAi-based modifier screen identifies Salt-inducible kinase 3 (SIK3) as a potent suppressor of both sleep loss and starvation sensitivity. Transcriptomic and spatial metabolomic analyses reveal that SIK3 selectively remodels a peripheral metabolic program centered on the pentose phosphate pathway and redox-associated metabolites without globally restoring energy stores. Together, these findings identify systemic metabolic dysfunction as a key driver of sleep disruption in TDP-43 proteinopathy and highlight peripheral metabolism as a potential therapeutic entry point for sleep dysfunction in neurodegenerative disease.

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