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Functional recruitment of astrocyte-derived neurons into the mouse visual cortex

Leaman, S.; Ferreira, F. M.; Dong, L.; Arranz, A. B.; Jurado-Arjona, J.; Mora, A. G.; Cooper, A.; Treder, N.; Fakhira, S.; Sreenivasan, V.; Marichal, N.; Marin, O.; Khan, A.; Berninger, B.

2026-01-27 neuroscience
10.64898/2026.01.25.701593 bioRxiv
Show abstract

Inducing neurogenesis from glia could permit circuit remodeling and neuron replacement in the brain. Indirect evidence suggests that glia-to-neuron reprogramming is feasible, but the dynamics of conversion have not been directly observed, and it remains unclear whether glia-derived cortical neurons can functionally integrate into brain circuits. Here, we use two-photon imaging to visualize the reprogramming of astroglia into induced neurons in the mouse cortex in vivo. We track the emergence of spontaneous neuron-like calcium transients in astrocyte-derived induced neurons, demonstrating their functional activity in vivo. Importantly, these induced neurons exhibit orientation tuned, visually evoked calcium responses, demonstrating their functional integration into cortical circuitry - a prerequisite for their utility in circuit repair. Thus, astrocytes can be recruited to generate functional neurons in the postnatal cortex, enabling circuit remodeling in perinatal injury or neurodevelopmental disorders without relying on external cellular sources.

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