Astrocytes functionally integrate multiple synapses via specialized leaflet domains.

Benoit, Lucas; Hristovska, Ines; Liaudet, Nicolas; Jouneau, Pierre-Henri; Fertin, Arnold; de Ceglia, Roberta; Litvin, David G; Di Castro, Maria Amalia et al. · Cell · 2025

basic_science · Level V

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Abstract

Astrocyte Ca<sup>2+</sup> dynamics control synaptic circuits and behavior, yet the underlying biology remains poorly understood. By combining volumetric high-resolution electron microscopy and two-photon Ca<sup>2+</sup> imaging, we characterize astrocyte leaflets that interface with synapses. These convoluted structures with ≤250 nm diameter originate from astrocytic shafts or cell bodies, contain minuscule endoplasmic reticulum saccules expressing IP<sub>3</sub> receptors but not mitochondria, and are often interconnected via gap junctions forming domains with cytosolic continuity. Leaflets enwrap 90% of synapses in clusters and only 10% individually. By fast imaging of astrocyte peripheral microvolumes, we identify leaflet-specific Ca<sup>2+</sup> events that were synaptically induced, IP<sub>3</sub>R1-mediated, and often displayed separate originations merging into large, long-lasting Ca<sup>2+</sup> elevations. Using combined axon-leaflet Ca<sup>2+</sup> imaging, we show that these complex events reflect integration of incoming inputs from different neurons. The astrocyte leaflet organization may thus coordinate, via Ca<sup>2+</sup> signals, multiple synapses and circuits active at different spatiotemporal scales, executing computations distinct from neurons.

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