Phenotypic spectrum of GNAO1 variants: epileptic encephalopathy to involuntary movements with severe developmental delay

De novo GNAO1 variants have been found in four patients including three patients with Ohtahara syndrome and one patient with childhood epilepsy. In addition, two patients showed involuntary movements, suggesting that GNAO1 variants can cause various neurological phenotypes. Here we report an additional four patients with de novo missense GNAO1 variants, one of which was identical to that of the previously reported. All the three novel variants were predicted to impair Gαo function by structural evaluation. Two patients showed early-onset epileptic encephalopathy, presenting with migrating or multifocal partial seizures in their clinical course, but the remaining two patients showed no or a few seizures. All the four patients showed severe intellectual disability, motor developmental delay, and involuntary movements. Progressive cerebral atrophy and thin corpus callosum were common features in brain images. Our study demonstrated that GNAO1 variants can cause involuntary movements and severe developmental delay with/without seizures, including various types of early-onset epileptic encephalopathy.

[1]  E. Neer,et al.  Gαo is necessary for muscarinic regulation of Ca2+ channels in mouse heart , 1997 .

[2]  M. Burghammer,et al.  Crystal structure of the human β2 adrenergic G-protein-coupled receptor , 2007, Nature.

[3]  M. Peyton,et al.  Multiple neurological abnormalities in mice deficient in the G protein Go. , 1998, Proceedings of the National Academy of Sciences of the United States of America.

[4]  G. Schultz,et al.  Heterogeneity of three electrophoretically distinct Go α‐subunits in mammalian brain , 1992 .

[5]  R. Neubig,et al.  Regulator of G Protein Signaling Protein Suppression of G o Protein-Mediated 2 A Adrenergic Receptor Inhibition of Mouse Hippocampal CA 3 Epileptiform Activity , 2009 .

[6]  Stephanie N. Hicks,et al.  Kinetic Scaffolding Mediated by a Phospholipase C–β and Gq Signaling Complex , 2010, Science.

[7]  E. Neer,et al.  Physical and immunological characterization of a guanine nucleotide-binding protein purified from bovine cerebral cortex. , 1985, The Journal of biological chemistry.

[8]  M. Mastrangelo,et al.  Genes of early-onset epileptic encephalopathies: from genotype to phenotype. , 2012, Pediatric neurology.

[9]  G. Coppola Malignant migrating partial seizures in infancy: An epilepsy syndrome of unknown etiology , 2009, Epilepsia.

[10]  J. H. Cross,et al.  Revised terminology and concepts for organization of seizures and epilepsies: Report of the ILAE Commission on Classification and Terminology, 2005–2009 , 2010, Epilepsia.

[11]  R. Neubig,et al.  Regulator of G Protein Signaling Protein Suppression of Gαo Protein-Mediated α2A Adrenergic Receptor Inhibition of Mouse Hippocampal CA3 Epileptiform Activity , 2009, Molecular Pharmacology.

[12]  L. Birnbaumer,et al.  Requirement for intramolecular domain interaction in activation of G protein alpha subunit by aluminum fluoride and GDP but not by GTP gamma S. , 1994, The Journal of biological chemistry.

[13]  Shunsuke Ohtahara,et al.  Ohtahara syndrome: With special reference to its developmental aspects for differentiating from early myoclonic encephalopathy , 2006, Epilepsy Research.

[14]  S. Sprang,et al.  The structure of the G protein heterotrimer Giα1 β 1 γ 2 , 1995, Cell.

[15]  G. Schultz,et al.  Heterogeneity of three electrophoretically distinct Go alpha-subunits in mammalian brain. , 1992, FEBS letters.

[16]  E. Neer,et al.  G alpha(o) is necessary for muscarinic regulation of Ca2+ channels in mouse heart. , 1997, Proceedings of the National Academy of Sciences of the United States of America.

[17]  Naomichi Matsumoto,et al.  De Novo mutations in GNAO1, encoding a Gαo subunit of heterotrimeric G proteins, cause epileptic encephalopathy. , 2013, American journal of human genetics.

[18]  L. Serrano,et al.  Predicting changes in the stability of proteins and protein complexes: a study of more than 1000 mutations. , 2002, Journal of molecular biology.

[19]  R. Neubig,et al.  Gain-of-function mutation in Gnao1: A murine model of epileptiform encephalopathy (EIEE17)? , 2014, Mammalian Genome.

[20]  Mario Mastrangelo,et al.  Novel Genes of Early-Onset Epileptic Encephalopathies: From Genotype to Phenotypes. , 2015, Pediatric neurology.

[21]  N. Matsumoto,et al.  De novo mutations in the autophagy gene WDR45 cause static encephalopathy of childhood with neurodegeneration in adulthood , 2013, Nature Genetics.

[22]  S. Sprang,et al.  The structure of the G protein heterotrimer Gi alpha 1 beta 1 gamma 2. , 1995, Cell.

[23]  S R Sprang,et al.  Crystal structure of the catalytic domains of adenylyl cyclase in a complex with Gsalpha.GTPgammaS. , 1997 .