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bioRxiv · 10.1101/2021.07.07.451434

Hippocampal Astrocytes Encode Reward Location

Abstract

Astrocytic calcium dynamics have been implicated in the encoding of sensory information, and modulating them has been shown to impact behavior. However, real-time calcium activity of astrocytes in the hippocampus of awake mice has never been investigated. We used 2-photon microscopy to chronically image CA1 astrocytes as mice ran in familiar or novel virtual environments and obtained water rewards. We found that astrocytes exhibit persistent ramping activity towards the reward location in a familiar environment, but not in a novel one. Using linear decoders, we could precisely predict the location of the mouse in a familiar environment from astrocyte activity alone. We could not do the same in the novel environment, suggesting astrocyte spatial activity is experience dependent. This is the first indication that astrocytes can encode location in spatial contexts, thereby extending their known computational capabilities, and their role in cognitive functions.

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BibTeXRIS

Doron, A., Rubin, A., Benmelech-Chovav, A., Benaim, N., Carmi, T., Kreisel, T., Ziv, Y., Goshen, I.. 2021-07-08. Hippocampal Astrocytes Encode Reward Location. https://doi.org/10.1101/2021.07.07.451434

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