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Microcircuit Failure in STXBP1 Encephalopathy Leads to Hyperexcitability

Altair Brito dos Santos, Silas Dalum Larsen, Liangchen Guo, Paola Barbagallo,Alexia Montalant, Matthijs Verhage,Jakob Balslev Sorensen,Jean-Franc ois Perrier

CELL REPORTS MEDICINE(2023)

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摘要
De novo mutations in STXBP1 are among the most prevalent causes of neurodevelopmental disorders and lead to haploinsufficiency, cortical hyperexcitability, epilepsy, and other symptoms in people with mutations. Given that Munc18-1, the protein encoded by STXBP1, is essential for excitatory and inhibitory synaptic transmission, it is currently not understood why mutations cause hyperexcitability. We find that overall inhi-bition in canonical feedforward microcircuits is defective in a P15-22 mouse model for Stxbp1 haploinsuffi-ciency. Unexpectedly, we find that inhibitory synapses formed by parvalbumin-positive interneurons were largely unaffected. Instead, excitatory synapses fail to recruit inhibitory interneurons. Modeling confirms that defects in the recruitment of inhibitory neurons cause hyperexcitation. CX516, an ampakine that en-hances excitatory synapses, restores interneuron recruitment and prevents hyperexcitability. These findings establish deficits in excitatory synapses in microcircuits as a key underlying mechanism for cortical hyper -excitability in a mouse model of Stxbp1 disorder and identify compounds enhancing excitation as a direction for therapy.
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