4.5 Article

Rare exonic deletions implicate the synaptic organizer Gephyrin (GPHN) in risk for autism, schizophrenia and seizures

期刊

HUMAN MOLECULAR GENETICS
卷 22, 期 10, 页码 2055-2066

出版社

OXFORD UNIV PRESS
DOI: 10.1093/hmg/ddt056

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资金

  1. NeuroDevNet
  2. University of Toronto McLaughlin Centre
  3. Genome Canada
  4. Ontario Genomics Institute
  5. Canadian Institutes for Health Research (CIHR)
  6. Canadian Institute for Advanced Research
  7. Canada Foundation for Innovation
  8. Government of Ontario
  9. Autism Speaks
  10. Hospital for Sick Children Foundation
  11. ONB Jubilaumsfonds [13226]
  12. NeuroDevNet doctoral fellowship
  13. CIHR Autism Training Program
  14. CIHR [MOP-89066, MOP-111238]
  15. MRC [G0800509] Funding Source: UKRI
  16. Medical Research Council [G0800509, G0801418B] Funding Source: researchfish

向作者/读者索取更多资源

The GPHN gene codes for gephyrin, a key scaffolding protein in the neuronal postsynaptic membrane, responsible for the clustering and localization of glycine and GABA receptors at inhibitory synapses. Gephyrin has well-established functional links with several synaptic proteins that have been implicated in genetic risk for neurodevelopmental disorders such as autism spectrum disorder (ASD), schizophrenia and epilepsy including the neuroligins (NLGN2, NLGN4), the neurexins (NRXN1, NRXN2, NRXN3) and collybistin (ARHGEF9). Moreover, temporal lobe epilepsy has been linked to abnormally spliced GPHN mRNA lacking exons encoding the G-domain of the gephyrin protein, potentially arising due to cellular stress associated with epileptogenesis such as temperature and alkalosis. Here, we present clinical and genomic characterization of six unrelated subjects, with a range of neurodevelopmental diagnoses including ASD, schizophrenia or seizures, who possess rare de novo or inherited hemizygous microdeletions overlapping exons of GPHN at chromosome 14q23.3. The region of common overlap across the deletions encompasses exons 35, corresponding to the G-domain of the gephyrin protein. These findings, together with previous reports of homozygous GPHN mutations in connection with autosomal recessive molybdenum cofactor deficiency, will aid in clinical genetic interpretation of the GPHN mutation spectrum. Our data also add to the accumulating evidence implicating neuronal synaptic gene products as key molecular factors underlying the etiologies of a diverse range of neurodevelopmental conditions.

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