4.7 Article

Simultaneous impairment of neuronal and metabolic function of mutated gephyrin in a patient with epileptic encephalopathy

期刊

EMBO MOLECULAR MEDICINE
卷 7, 期 12, 页码 1580-1594

出版社

WILEY
DOI: 10.15252/emmm.201505323

关键词

Dravet syndrome; epileptic encephalopathy; GABA(A) receptors; gephyrin; molybdenum cofactor

资金

  1. German Science Foundation [DFG SFB635]
  2. program Investissements d'avenir [ANR-10-IAIHU-06]
  3. Wellcome Trust [089062, 098051]
  4. European Commission [Synsys-242167, gEUVADIS-261123]
  5. Academy of Finland [251704, 263401]
  6. Sigrid Juselius Foundation
  7. US NIH [HL113315]
  8. Eurocores program EuroEPINOMICS of the European Science Foundation (ESF)
  9. Fund for Scientific Research Flanders (FWO)
  10. University of Antwerp
  11. French program Investissements d'avenir [ANR-10-IAIHU-06]
  12. Bundesministerium fur Bildung und Forschung BMBF (Era-Net NEURON II CIPRESS)
  13. Deutsche Forschungsgemeinschaft DFG Priority Programme SPP 1784 [ME2075/7-1]
  14. Academy of Finland (AKA) [251704] Funding Source: Academy of Finland (AKA)

向作者/读者索取更多资源

Synaptic inhibition is essential for shaping the dynamics of neuronal networks, and aberrant inhibition plays an important role in neurological disorders. Gephyrin is a central player at inhibitory postsynapses, directly binds and organizes GABA(A) and glycine receptors (GABA(A)Rs and GlyRs), and is thereby indispensable for normal inhibitory neurotransmission. Additionally, gephyrin catalyzes the synthesis of the molybdenum cofactor (MoCo) in peripheral tissue. We identified a de novo missense mutation (G375D) in the gephyrin gene (GPHN) in a patient with epileptic encephalopathy resembling Dravet syndrome. Although stably expressed and correctly folded, gephyrin-G375D was non-synaptically localized in neurons and acted dominant-negatively on the clustering of wild- type gephyrin leading to a marked decrease in GABA(A)R surface expression and GABAergic signaling. We identified a decreased binding affinity between gephyrin-G375D and the receptors, suggesting that Gly375 is essential for gephyrin-receptor complex formation. Surprisingly, gephyrin-G375D was also unable to synthesize MoCo and activate MoCo-dependent enzymes. Thus, we describe a missense mutation that affects both functions of gephyrin and suggest that the identified defect at GABAergic synapses is the mechanism underlying the patient's severe phenotype.

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