Authors
Ringelberg, N. W., Kipp, D. W., Mayfield, R. E., James, L. M., Smith, A. L., Manis, P. B., Burette, A. C., Kasten, M. R., Philpot, B. D.
Abstract
Understanding how neural circuits transition from seizure-resistant to seizure-prone is essential for developing improved epilepsy therapies. Here, we study this process by leveraging the heightened susceptibility to seizure kindling of Angelman syndrome (AS) model mice, which lack the maternal Ube3a (mUbe3a) allele. We identify parvalbumin-expressing (PV+) interneurons as critical gatekeepers; selective mUbe3a deletion in PV+ neurons phenocopies enhanced AS epileptogenesis, whereas restoring UBE3A broadly in GABAergic neurons confers seizure resistance. Further, pathological remodeling of the extracellular matrix in the dentate gyrus faithfully tracks with post-kindling seizure susceptibility, highlighting this region's particular relevance to enhanced epileptogenesis. Mechanistically, we uncover a 'two-hit' electrophysiologic phenomenon in AS model mice: kindling fails to recruit compensatory inhibition onto dentate granule cells and instead drives their maladaptive intrinsic hyperexcitability. Together, these findings link cell type-specific inhibitory dysfunction and altered homeostatic plasticity to epileptogenesis, suggesting future circuit-based treatment strategies.
Preprint server:
bioRxiv
The authors list and abstract were imported from bioRxiv on 20 Sep 2026.
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