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Gq-pathway activation in hippocampal CA1 astrocytes rescues ischemia-induced memory deficits and synaptic plasticity

Chen, Y.; Wang, L.; Wang, J.; Zhou, Y.; Shen, H.; Wang, Y.; Qin, W.; Liu, B.; Chen, B.; Huang, Y.; Guo, W.; Xu, H.; Tian, Q.; Zheng, C.

2026-03-23 neuroscience
10.64898/2026.03.20.713091 bioRxiv
Show abstract

More than 30% of stroke survivors develop post-stroke cognitive impairment (PSCI), for which current neuron-centric therapies not only lack cellular specificity but also carry risks of adverse effects such as epilepsy. Here, we explore the therapeutic potential of astrocytes by chemogenetically activating Gq signaling in hippocampal astrocytes, which rescues memory deficits and synaptic plasticity impairments in a mouse model of ischemic stroke. Gq activation restores dendritic complexity, spine density, and long-term potentiation in hippocampal CA1 neurons. Fiber photometry further reveals that astrocytic Ca2+ signals precede neuronal activity by 600 ms during novel environment exploration, indicating that astrocytes prime memory encoding. In contrast, Gi pathway activation induces pathological neuronal hyperactivity without cognitive improvement. These findings establish that astrocytes regulate post-stroke recovery through pathway-specific calcium signaling and uncover a previously unknown temporal hierarchy in astrocyte-neuron communication during memory processing, offering a new glia-targeted strategy to overcome the limitations of current neuromodulation approaches for PSCI. TeaserTargeting astrocyte calcium signaling rescues memory deficits after stroke by restoring synaptic plasticity and revealing astrocytes priming role in memory encoding.

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