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Imaging Mitochondrial Ca2+ Uptake in Astrocytes and Neurons using Genetically Encoded Ca2+ Indicators (GECIs)
Published on: January 22, 2022
Novel NaV1.6-Mitochondrial Complexes in Retinal Astrocyte Pockets Sequester GABA
Joseph Matthew Holden1, David John Calkins1
1Department of Ophthalmology and Visual Sciences, Vanderbilt University Medical Center, Nashville, Tennessee, USA.
Abstract:
Voltage-gated sodium channels are best known for their capacity to generate and propagate electrical currents in neurons and muscle. Their expression in glial cells may also be of great importance given these cells' involvement in various disease processes. Here we identify a previously unrecognized voltage-gated sodium channel NaV1.6-enriched microdomain in mouse retinal astrocytes. Using super-resolution confocal microscopy, electrophysiology, and transcriptomic analyses, we show that NaV1.6 forms high-density clusters within intracellular compartments devoid of the calcium-binding protein, S100β, typically understood to distribute throughout the entire astrocyte. These NaV1.6 pockets are polarized, clustering only on the bilayer facing retinal ganglion cell neurons, and are packed with unusually large, anaplerotic, and relatively depolarized mitochondria that closely appose NaV1.6 puncta. These metabolic compartments also accumulate high levels of GABA. Together, our findings reveal a specialized NaV1.6-mitochondrial complex in retinal astrocytes that expands the functional repertoire of voltage-gated sodium channels beyond direct neuronal electrical excitability.

