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Updated: Jan 25, 2026

Biocytin Recovery and 3D Reconstructions of Filled Hippocampal CA2 Interneurons
Published on: November 20, 2018
Glial Ca2+signaling links endocytosis to K+ buffering around neuronal somas to regulate excitability
Shirley Weiss1,2,3, Jan E Melom1,2,3, Kiel G Ormerod1,2,3
1The Picower Institute for Learning and Memory, Massachusetts Institute of Technology, Cambridge, United States.
Abstract:
Glial-neuronal signaling at synapses is widely studied, but how glia interact with neuronal somas to regulate their activity is unclear. Drosophila cortex glia are restricted to brain regions devoid of synapses, providing an opportunity to characterize interactions with neuronal somas. Mutations in the cortex glial NCKX elevate basal Ca2+, predisposing animals to seizure-like behavior. To determine how cortex glial Ca2+ signaling controls neuronal excitability, we performed an in vivo modifier screen of the NCKX seizure phenotype. We show that elevation of glial Ca2+ causes hyperactivation of calcineurin-dependent endocytosis and accumulation of early endosomes. Knockdown of sandman, a K2P channel, recapitulates NCKX seizures. Indeed, sandman expression on cortex glial membranes is substantially reduced in NCKX mutants, indicating enhanced internalization of sandman predisposes animals to seizures. These data provide an unexpected link between glial Ca2+ signaling and the well-known role of glia in K+ buffering as a key mechanism for regulating neuronal excitability.
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