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Clinical Cases and the Molecular Profiling of a Novel Childhood Encephalopathy-Causing GNAO1 Mutation P170R

De novo mutations in GNAO1, the gene encoding the major neuronal G protein Gαo, cause a spectrum of pediatric encephalopathies with seizures, motor dysfunction, and developmental delay. Of the >80 distinct missense pathogenic variants, many appear to uniformly destabilize the guanine nucleotide h...

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Autores principales: Larasati, Yonika A., Solis, Gonzalo P., Koval, Alexey, Griffiths, Silja T., Berentsen, Ragnhild, Aukrust, Ingvild, Lesca, Gaetan, Chatron, Nicolas, Ville, Dorothée, Korff, Christian M., Katanaev, Vladimir L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10605901/
https://www.ncbi.nlm.nih.gov/pubmed/37887313
http://dx.doi.org/10.3390/cells12202469
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author Larasati, Yonika A.
Solis, Gonzalo P.
Koval, Alexey
Griffiths, Silja T.
Berentsen, Ragnhild
Aukrust, Ingvild
Lesca, Gaetan
Chatron, Nicolas
Ville, Dorothée
Korff, Christian M.
Katanaev, Vladimir L.
author_facet Larasati, Yonika A.
Solis, Gonzalo P.
Koval, Alexey
Griffiths, Silja T.
Berentsen, Ragnhild
Aukrust, Ingvild
Lesca, Gaetan
Chatron, Nicolas
Ville, Dorothée
Korff, Christian M.
Katanaev, Vladimir L.
author_sort Larasati, Yonika A.
collection PubMed
description De novo mutations in GNAO1, the gene encoding the major neuronal G protein Gαo, cause a spectrum of pediatric encephalopathies with seizures, motor dysfunction, and developmental delay. Of the >80 distinct missense pathogenic variants, many appear to uniformly destabilize the guanine nucleotide handling of the mutant protein, speeding up GTP uptake and deactivating GTP hydrolysis. Zinc supplementation emerges as a promising treatment option for this disease, as Zn(2+) ions reactivate the GTP hydrolysis on the mutant Gαo and restore cellular interactions for some of the mutants studied earlier. The molecular etiology of GNAO1 encephalopathies needs further elucidation as a prerequisite for the development of efficient therapeutic approaches. In this work, we combine clinical and medical genetics analysis of a novel GNAO1 mutation with an in-depth molecular dissection of the resultant protein variant. We identify two unrelated patients from Norway and France with a previously unknown mutation in GNAO1, c.509C>G that results in the production of the Pro170Arg mutant Gαo, leading to severe developmental and epileptic encephalopathy. Molecular investigations of Pro170Arg identify this mutant as a unique representative of the pathogenic variants. Its 100-fold-accelerated GTP uptake is not accompanied by a loss in GTP hydrolysis; Zn(2+) ions induce a previously unseen effect on the mutant, forcing it to lose the bound GTP. Our work combining clinical and molecular analyses discovers a novel, biochemically distinct pathogenic missense variant of GNAO1 laying the ground for personalized treatment development.
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spelling pubmed-106059012023-10-28 Clinical Cases and the Molecular Profiling of a Novel Childhood Encephalopathy-Causing GNAO1 Mutation P170R Larasati, Yonika A. Solis, Gonzalo P. Koval, Alexey Griffiths, Silja T. Berentsen, Ragnhild Aukrust, Ingvild Lesca, Gaetan Chatron, Nicolas Ville, Dorothée Korff, Christian M. Katanaev, Vladimir L. Cells Article De novo mutations in GNAO1, the gene encoding the major neuronal G protein Gαo, cause a spectrum of pediatric encephalopathies with seizures, motor dysfunction, and developmental delay. Of the >80 distinct missense pathogenic variants, many appear to uniformly destabilize the guanine nucleotide handling of the mutant protein, speeding up GTP uptake and deactivating GTP hydrolysis. Zinc supplementation emerges as a promising treatment option for this disease, as Zn(2+) ions reactivate the GTP hydrolysis on the mutant Gαo and restore cellular interactions for some of the mutants studied earlier. The molecular etiology of GNAO1 encephalopathies needs further elucidation as a prerequisite for the development of efficient therapeutic approaches. In this work, we combine clinical and medical genetics analysis of a novel GNAO1 mutation with an in-depth molecular dissection of the resultant protein variant. We identify two unrelated patients from Norway and France with a previously unknown mutation in GNAO1, c.509C>G that results in the production of the Pro170Arg mutant Gαo, leading to severe developmental and epileptic encephalopathy. Molecular investigations of Pro170Arg identify this mutant as a unique representative of the pathogenic variants. Its 100-fold-accelerated GTP uptake is not accompanied by a loss in GTP hydrolysis; Zn(2+) ions induce a previously unseen effect on the mutant, forcing it to lose the bound GTP. Our work combining clinical and molecular analyses discovers a novel, biochemically distinct pathogenic missense variant of GNAO1 laying the ground for personalized treatment development. MDPI 2023-10-17 /pmc/articles/PMC10605901/ /pubmed/37887313 http://dx.doi.org/10.3390/cells12202469 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Larasati, Yonika A.
Solis, Gonzalo P.
Koval, Alexey
Griffiths, Silja T.
Berentsen, Ragnhild
Aukrust, Ingvild
Lesca, Gaetan
Chatron, Nicolas
Ville, Dorothée
Korff, Christian M.
Katanaev, Vladimir L.
Clinical Cases and the Molecular Profiling of a Novel Childhood Encephalopathy-Causing GNAO1 Mutation P170R
title Clinical Cases and the Molecular Profiling of a Novel Childhood Encephalopathy-Causing GNAO1 Mutation P170R
title_full Clinical Cases and the Molecular Profiling of a Novel Childhood Encephalopathy-Causing GNAO1 Mutation P170R
title_fullStr Clinical Cases and the Molecular Profiling of a Novel Childhood Encephalopathy-Causing GNAO1 Mutation P170R
title_full_unstemmed Clinical Cases and the Molecular Profiling of a Novel Childhood Encephalopathy-Causing GNAO1 Mutation P170R
title_short Clinical Cases and the Molecular Profiling of a Novel Childhood Encephalopathy-Causing GNAO1 Mutation P170R
title_sort clinical cases and the molecular profiling of a novel childhood encephalopathy-causing gnao1 mutation p170r
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10605901/
https://www.ncbi.nlm.nih.gov/pubmed/37887313
http://dx.doi.org/10.3390/cells12202469
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