Loss of fatty acid degradation by astrocytic mitochondria triggers neuroinflammation and neurodegeneration

Astrocytes provide key neuronal support, and their phenotypic transformation is implicated in neurodegenerative diseases. Metabolically, astrocytes possess low mitochondrial oxidative phosphorylation (OxPhos) activity, but its pathophysiological role in neurodegeneration remains unclear. Here, we sh...

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Veröffentlicht in:Nature metabolism 2023-03, Vol.5 (3), p.445-465
Hauptverfasser: Mi, Yashi, Qi, Guoyuan, Vitali, Francesca, Shang, Yuan, Raikes, Adam C., Wang, Tian, Jin, Yan, Brinton, Roberta D., Gu, Haiwei, Yin, Fei
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Sprache:eng
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Zusammenfassung:Astrocytes provide key neuronal support, and their phenotypic transformation is implicated in neurodegenerative diseases. Metabolically, astrocytes possess low mitochondrial oxidative phosphorylation (OxPhos) activity, but its pathophysiological role in neurodegeneration remains unclear. Here, we show that the brain critically depends on astrocytic OxPhos to degrade fatty acids (FAs) and maintain lipid homeostasis. Aberrant astrocytic OxPhos induces lipid droplet (LD) accumulation followed by neurodegeneration that recapitulates key features of Alzheimer’s disease (AD), including synaptic loss, neuroinflammation, demyelination and cognitive impairment. Mechanistically, when FA load overwhelms astrocytic OxPhos capacity, elevated acetyl-CoA levels induce astrocyte reactivity by enhancing STAT3 acetylation and activation. Intercellularly, lipid-laden reactive astrocytes stimulate neuronal FA oxidation and oxidative stress, activate microglia through IL-3 signalling, and inhibit the biosynthesis of FAs and phospholipids required for myelin replenishment. Along with LD accumulation and impaired FA degradation manifested in an AD mouse model, we reveal a lipid-centric, AD-resembling mechanism by which astrocytic mitochondrial dysfunction progressively induces neuroinflammation and neurodegeneration. Mi, Qi et al. identify a mechanism through which defective oxidative phosphorylation in astrocytes deregulates astroglial lipid homeostasis and subsequently impacts neurons and microglial cells, thus triggering neuronal damage and microglial reactivity.
ISSN:2522-5812
2522-5812
DOI:10.1038/s42255-023-00756-4