1. Recurrent de novo missense variants in GNB2 can cause syndromic intellectual disability
- Author
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Stephen J. Guter, Laurie A. Demmer, Jasmine Lf Fung, Gerarda Cappuccio, Naomichi Matsumoto, Nicola Brunetti-Pierri, Catherine Sarret, Hamish S. Scott, Lynn Pais, Alison Yeung, Ken Saida, Christopher P. Barnett, Felix Boschann, Andre Heinen, Noriko Miyake, Jenny C. Taylor, Jonathan Gadian, Cyril Mignot, Boris Keren, Sandra Whalen, Hagar Mor-Shaked, Matteo P. Ferla, John Christodoulou, Raffaele Iorio, Alistair T. Pagnamenta, Tiong Yang Tan, Brian Hy Chung, Marcus Cy Chan, Susan M. White, Ruth Sheffer, Dana Mittag, Edwin H. Cook, Jens Schallner, Alicia B. Byrne, Rachel Stapleton, Natalie B Tan, Alison Kraus, Fabiola Di Dato, Tan, Natalie B, Pagnamenta, Alistair T, Ferla, Matteo P, Gadian, Jonathan, Byrne, Alicia B, White, Sue, Institut Pascal (IP), Centre National de la Recherche Scientifique (CNRS)-Université Clermont Auvergne (UCA)-Institut national polytechnique Clermont Auvergne (INP Clermont Auvergne), Université Clermont Auvergne (UCA)-Université Clermont Auvergne (UCA), Tan, N. B., Pagnamenta, A. T., Ferla, M. P., Gadian, J., Chung, B. H. Y., Chan, M. C. Y., Fung, J. L. F., Cook, E., Guter, S., Boschann, F., Heinen, A., Schallner, J., Mignot, C., Keren, B., Whalen, S., Sarret, C., Mittag, D., Demmer, L., Stapleton, R., Saida, K., Matsumoto, N., Miyake, N., Sheffer, R., Mor-Shaked, H., Barnett, C. P., Byrne, A. B., Scott, H. S., Kraus, A., Cappuccio, G., Brunetti Pierri, N., Iorio, R., Di Dato, F., Pais, L. S., Yeung, A., Tan, T. Y., Taylor, J. C., Christodoulou, J., and White, S.
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medicine.medical_specialty ,Genomics ,Biology ,03 medical and health sciences ,0302 clinical medicine ,Neurodevelopmental disorder ,GNB2 ,Intellectual disability ,Genetics ,medicine ,Missense mutation ,Gene ,ComputingMilieux_MISCELLANEOUS ,Genetics (clinical) ,Exome sequencing ,030304 developmental biology ,0303 health sciences ,G-beta protein ,medicine.disease ,developmental delay ,intellectual disability ,Medical genetics ,[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC] ,Human genome ,030217 neurology & neurosurgery - Abstract
PurposeBinding proteins (G-proteins) mediate signalling pathways involved in diverse cellular functions and comprise Gα and Gβγ units. Human diseases have been reported for all five Gβ proteins. A de novo missense variant in GNB2 was recently reported in one individual with developmental delay/intellectual disability (DD/ID) and dysmorphism. We aim to confirm GNB2 as a neurodevelopmental disease gene, and elucidate the GNB2-associated neurodevelopmental phenotype in a patient cohort.MethodsWe discovered a GNB2 variant in the index case via exome sequencing and sought individuals with GNB2 variants via international data-sharing initiatives. In silico modelling of the variants was assessed, along with multiple lines of evidence in keeping with American College of Medical Genetics and Genomics guidelines for interpretation of sequence variants.ResultsWe identified 12 unrelated individuals with five de novo missense variants in GNB2, four of which are recurrent: p.(Ala73Thr), p.(Gly77Arg), p.(Lys89Glu) and p.(Lys89Thr). All individuals have DD/ID with variable dysmorphism and extraneurologic features. The variants are located at the universally conserved shared interface with the Gα subunit, which modelling suggests weaken this interaction.ConclusionMissense variants in GNB2 cause a congenital neurodevelopmental disorder with variable syndromic features, broadening the spectrum of multisystem phenotypes associated with variants in genes encoding G-proteins.
- Published
- 2021