Presynaptic dysfunction in CASK-related neurodevelopmental disorders

被引:0
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作者
Martin Becker
Francesca Mastropasqua
Jan Philipp Reising
Simon Maier
Mai-Lan Ho
Ielyzaveta Rabkina
Danyang Li
Janina Neufeld
Lea Ballenberger
Lynnea Myers
Viveka Moritz
Malin Kele
Josephine Wincent
Charlotte Willfors
Rouslan Sitnikov
Eric Herlenius
Britt-Marie Anderlid
Anna Falk
Sven Bölte
Kristiina Tammimies
机构
[1] Karolinska Institutet,Center of Neurodevelopmental Disorders (KIND), Division of Neuropsychiatry, Department of Women’s and Children’s Health
[2] and Center for Psychiatry Research,Astrid Lindgren Children’s Hospital
[3] Karolinska University Hospital,Department of Women’s and Children’s Health
[4] Karolinska Institutet,Department of Psychiatry and Psychotherapy
[5] Medical Center—University of Freiburg,Department of Radiology
[6] Faculty of Medicine,Interdisciplinary Center for Neurosciences
[7] University of Freiburg,Department of Neuroscience
[8] Nationwide Children’s Hospital,Department of Molecular Medicine and Surgery
[9] Heidelberg University,Department for Clinical Genetics
[10] Gustavus Adolphus College,Department of Neuroradiology, Karolinska University Hospital and Department of Clinical Neuroscience
[11] Karolinska Institutet,Child and Adolescent Psychiatry, Stockholm Health Care Services
[12] Karolinska Institutet,Curtin Autism Research Group, School of Occupational Therapy
[13] Karolinska University Hospital,undefined
[14] Karolinska Institutet,undefined
[15] Stockholm County Council,undefined
[16] Social Work and Speech Pathology,undefined
[17] Curtin University,undefined
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摘要
CASK-related disorders are genetically defined neurodevelopmental syndromes. There is limited information about the effects of CASK mutations in human neurons. Therefore, we sought to delineate CASK-mutation consequences and neuronal effects using induced pluripotent stem cell-derived neurons from two mutation carriers. One male case with autism spectrum disorder carried a novel splice-site mutation and a female case with intellectual disability carried an intragenic tandem duplication. We show reduction of CASK protein in maturing neurons from the mutation carriers, which leads to significant downregulation of genes involved in presynaptic development and of CASK protein interactors. Furthermore, CASK-deficient neurons showed decreased inhibitory presynapse size as indicated by VGAT staining, which may alter the excitatory–inhibitory (E/I) balance in developing neural circuitries. Using in vivo magnetic resonance spectroscopy quantification of GABA in the male mutation carrier, we further highlight the possibility to validate in vitro cellular data in the brain. Our data show that future pharmacological and clinical studies on targeting presynapses and E/I imbalance could lead to specific treatments for CASK-related disorders.
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