Zona incerta somatostatin+ neurons modulate seizure progression through hypothalamic circuits

Abstract GABAergic neurons critically regulate epileptic seizures, yet circuit mechanisms mediated by subtype-specific GABAergic neurons in the zona incerta (ZI) remain unclear. Here we reveal the essential role of ZI somatostatin + GABAergic neurons in seizure modulation in the mouse hippocampal kindling model. In vivo Ca 2+ fiber photometry and optogenetics show that ZI GABAergic neurons are gradually activated during seizure progression. Opto-activation inhibits seizure progression, especially the spread of generalized seizures at the later phase, whereas opto-inhibition accelerates it. Although both somatostatin + and parvalbumin + neurons are dynamically recruited during seizure progression, only somatostatin + neurons exert bidirectional seizure modulation. Circuitry mapping and functional modulation demonstrate that ZI somatostatin + neurons projecting to the ventromedial hypothalamus (VMH) glutamatergic neurons suppress the spread of generalized seizures by inhibiting the excitability of VMH-related downstream seizure-spread regions. These findings uncover a cell-type-specific circuit mechanism for seizure regulation by ZI somatostatin + neurons, highlighting these neurons as a potential therapeutic target for epilepsy.

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Publication Details

Journal
Nature Communications
Published
2026-09-29
DOI
https://doi.org/10.1038/s41467-026-78174-9
Primary Topic
Neuroscience and Neuropharmacology Research
Type
article
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Zona incerta somatostatin+ neurons modulate seizure progression through hypothalamic circuits

Cenglin Xu, Yi Wang, Jiajia Ying, Zhong Chen et al.
Nature Communications
Neuroscience and Neuropharmacology Research
article

Zona incerta somatostatin+ neurons modulate seizure progression through hypothalamic circuits

Cenglin Xu, Yi Wang, Jiajia Ying, Zhong Chen, Dongxiao Jiang, Mengdi Zhang, Tianyu Tang, Fan Fei, Menghan Li, Yuan Zhou, Lin Yang, Wenjing Wang, Lilong Yu, Yeping Ruan
article en

Abstract

Abstract GABAergic neurons critically regulate epileptic seizures, yet circuit mechanisms mediated by subtype-specific GABAergic neurons in the zona incerta (ZI) remain unclear. Here we reveal the essential role of ZI somatostatin + GABAergic neurons in seizure modulation in the mouse hippocampal kindling model. In vivo Ca 2+ fiber photometry and optogenetics show that ZI GABAergic neurons are gradually activated during seizure progression. Opto-activation inhibits seizure progression, especially the spread of generalized seizures at the later phase, whereas opto-inhibition accelerates it. Although both somatostatin + and parvalbumin + neurons are dynamically recruited during seizure progression, only somatostatin + neurons exert bidirectional seizure modulation. Circuitry mapping and functional modulation demonstrate that ZI somatostatin + neurons projecting to the ventromedial hypothalamus (VMH) glutamatergic neurons suppress the spread of generalized seizures by inhibiting the excitability of VMH-related downstream seizure-spread regions. These findings uncover a cell-type-specific circuit mechanism for seizure regulation by ZI somatostatin + neurons, highlighting these neurons as a potential therapeutic target for epilepsy.

Nature Communications
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Neuroscience and Neuropharmacology Research
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Zona incerta somatostatin+ neurons modulate seizure progression through hypothalamic circuits — Cenglin Xu, Yi Wang, et al. · Nature Communications (2026) | TGRS Research Map | TGRS