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Vulnerability of cholecystokinin-expressing GABAergic interneurons in the unilateral intrahippocampal kainate mouse model of temporal lobe epilepsy

  • Young Jin Kang
  • , Ethan M. Clement
  • , In Hyun Park
  • , Lazar John Greenfield
  • , Bret N. Smith
  • , Sang Hun Lee

Producción científica: Articlerevisión exhaustiva

18 Citas (Scopus)

Resumen

Temporal lobe epilepsy (TLE) is characterized by recurrent spontaneous seizures and behavioral comorbidities. Reduced hippocampal theta oscillations and hyperexcitability that contribute to cognitive deficits and spontaneous seizures are present beyond the sclerotic hippocampus in TLE. However, the mechanisms underlying compromised network oscillations and hyperexcitability observed in circuits remote from the sclerotic hippocampus are largely unknown. Cholecystokinin (CCK)-expressing basket cells (CCKBCs) critically participate in hippocampal theta rhythmogenesis, and regulate neuronal excitability. Thus, we examined whether CCKBCs were vulnerable in nonsclerotic regions of the ventral hippocampus remote from dorsal sclerotic hippocampus using the intrahippocampal kainate (IHK) mouse model of TLE, targeting unilateral dorsal hippocampus. We found a decrease in the number of CCK+ interneurons in ipsilateral ventral CA1 regions from epileptic mice compared to those from sham controls. We also found that the number of boutons from CCK+ interneurons was reduced in the stratum pyramidale, but not in other CA1 layers, of ipsilateral hippocampus in epileptic mice, suggesting that CCKBCs are vulnerable. Electrical recordings showed that synaptic connectivity and strength from surviving CCKBCs to CA1 pyramidal cells (PCs) were similar between epileptic mice and sham controls. In agreement with reduced CCKBC number in TLE, electrical recordings revealed a significant reduction in amplitude and frequency of IPSCs in CA1 PCs evoked by carbachol (commonly used to excite CCK+ interneurons) in ventral CA1 regions from epileptic mice versus sham controls. These findings suggest that loss of CCKBCs beyond the hippocampal lesion may contribute to hyperexcitability and compromised network oscillations in TLE.

Idioma originalEnglish
Número de artículo113724
PublicaciónExperimental Neurology
Volumen342
DOI
EstadoPublished - ago 2021

Nota bibliográfica

Publisher Copyright:
© 2021 Elsevier Inc.

Financiación

We thank H.E.S. Lewis and M.W. Young for technical assistance with the analysis of behavioral seizures, and Dr. M.B. Halmos for statistical advice. This work was supported by the College of Medicine, UAMS (startup funding to S.-H.L), Core Facilities of the Center for Translational Neuroscience at UAMS, Award P30 GM110702 from the IDeA program at NIGMS , and R01 NS092552 (to B.N·S). The sponsors had no role in study design, data collection, analysis and interpretation, or writing of this manuscript. We thank H.E.S. Lewis and M.W. Young for technical assistance with the analysis of behavioral seizures, and Dr. M.B. Halmos for statistical advice. This work was supported by the College of Medicine, UAMS (startup funding to S.-H.L), Core Facilities of the Center for Translational Neuroscience at UAMS, Award P30 GM110702 from the IDeA program at NIGMS, and R01 NS092552 (to B.N?S). The sponsors had no role in study design, data collection, analysis and interpretation, or writing of this manuscript.

FinanciadoresNúmero del financiador
Core Facilities of the Center for Translational Neuroscience
National Institute of General Medical Sciences DP2GM119177 Sophie Dumont National Institute of General Medical Sciences
Institute of Neurological Disorders and Stroke National Advisory Neurological Disorders and Stroke CouncilR01NS092552
College of Medicine, University of Nebraska Medical Center
University of Arkansas for Medical SciencesP30 GM110702

    ASJC Scopus subject areas

    • Neurology
    • Developmental Neuroscience

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