Literature DB >> 30240706

Inactivation of Magel2 suppresses oxytocin neurons through synaptic excitation-inhibition imbalance.

Tayfun Ates1, Merve Oncul1, Pelin Dilsiz1, Iskalen Cansu Topcu2, Cihan Civan Civas2, Muhammed Ikbal Alp1, Iltan Aklan2, Edanur Ates Oz1, Yavuz Yavuz2, Bayram Yilmaz2, Nilufer Sayar Atasoy1, Deniz Atasoy3.   

Abstract

Prader-Willi and the related Schaaf-Yang Syndromes (PWS/SYS) are rare neurodevelopmental disorders characterized by overlapping phenotypes of high incidence of autism spectrum disorders (ASD) and neonatal feeding difficulties. Based on clinical and basic studies, oxytocin pathway defects are suggested to contribute disease pathogenesis but the mechanism has been poorly understood. Specifically, whether the impairment in oxytocin system is limited to neuropeptide levels and how the functional properties of broader oxytocin neuron circuits affected in PWS/SYS have not been addressed. Using cell type specific electrophysiology, we investigated basic synaptic and cell autonomous properties of oxytocin neurons in the absence of MAGEL2; a hypothalamus enriched ubiquitin ligase regulator that is inactivated in both syndromes. We observed significant suppression of overall ex vivo oxytocin neuron activity, which was largely contributed by altered synaptic input profile; with reduced excitatory and increased inhibitory currents. Our results suggest that dysregulation of oxytocin system goes beyond altered neuropeptide expression and synaptic excitation inhibition imbalance impairs overall oxytocin pathway function.
Copyright © 2018 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  AMPA; Autism; Electrophysiology; NMDA; Oxytocin; Prader Willi Syndrome; magel2

Mesh:

Substances:

Year:  2018        PMID: 30240706     DOI: 10.1016/j.nbd.2018.09.017

Source DB:  PubMed          Journal:  Neurobiol Dis        ISSN: 0969-9961            Impact factor:   5.996


  11 in total

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