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A Novel In Vitro Live-imaging Assay of Astrocyte-mediated Phagocytosis Using pH Indicator-conjugated Synaptosomes
Published on: February 5, 2018
Astrocytic PI3Kα controls synaptic plasticity and cognitive function via serine metabolism
Alba Fernández-Rodrigo1,2, Celia García-Vilela1, Abel Eraso-Pichot2
1Department of Molecular Neuropathology, Centro de Biología Molecular Severo Ochoa (CSIC-UAM), Madrid, Spain.
Abstract:
Astrocytes modulate neuronal activity by gliotransmission and through metabolic regulation, yet the relationship between these functions remains poorly understood. Here we show that phosphatidylinositol 3-kinase (PI3K) signaling in astrocytes controls synaptic plasticity and memory by regulating cellular metabolism. Deletion of the p110α isoform of PI3K in hippocampal astrocytes impairs NMDA receptor activation during the induction of hippocampal long-term potentiation (LTP). This defect is rescued by either D-serine (co-agonist of synaptic NMDA receptors) or its precursor L-serine, indicating that PI3K regulates synaptic plasticity through serine availability. Indeed, deletion of p110α rewires astrocyte metabolism, reducing glycolytic flux while enhancing mitochondrial respiration. This, in turn, would limit L-serine biosynthesis through the phosphorylated pathway. Consistently, mice lacking astrocytic p110α display memory deficits that are rescued by in vivo L-serine administration. These findings identify astrocytic PI3K p110α as a key link between cellular metabolism, synaptic plasticity and cognition.