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-  2017 

De Novo Mutations in Protein Kinase Genes CAMK2A and CAMK2B Cause Intellectual Disability

DOI: 10.1016/j.ajhg.2017.10.003

Addie I. Nesbitt,Ajoy Sarkar,Amber Begtrup,Andreas M. Grabrucker,Anne-Sophie Denommé-Pichon,Annick Toutain,Arie van Haeringen,Aurora Pujol,Avni B. Santani,Ben Distel,Benjamin Cogné,Bertrand Isidor,Brandon H. Kusako,Bregje W.M. van Bon,Brigitte Gilbert-Dussardier,Catherine A. Brownstein,Catherine B. Nowak,Christina Lam,Christèle Dubourg,Claudia A.L. Ruivenkamp,Damien Sanlaville,Deciphering Developmental Disorders Study,Delphine Quinquis,Diana S. Johnson,Dominique Bonneau,Dorothy K. Grange,Elizabeth A. Sellars,Elizabeth J. Bhoj,Elouan Cherot,Eric Charpentier,Evan E. Eichler,Fan Xia,GEM HUGO,Gabrielle Rudolf,Ga?tan Lesca,Geeske M. van Woerden,Geir J. Braathen,George E. Hoganson,Ghayda Mirzaa,Gijs W.E. Santen,Gregory M. Enns,Holly A.F. Stessman,Jamel Chelly,Jane Juusola,Jay Shendure,Jeff L. Waugh,Jennifer Burton,Jenny Thies,Jessica Douglas,Jill A. Rosenfeld,Jonathan A. Bernstein,Jonathan Berg,Julitta de Bellescize,Katherine B. Bosanko,Katherine L. Helbig,Katrin Hinderhofer,Kimberly Foss,Koen L.I. van Gassen,Kristian Tveten,Kyle Retterer,Laurent Pasquier,Laurie A. Robak,Lisenka E.L.M. Peart-Vissers,Marie Vincent,Marisa V. Andrews,Martin Granzow,Martina Proietti Onori,Mathilde Nizon,Matthew Deardorff,Matthew W. State,Megan T. Cho,Meghan C. Towne,Melissa A. Ploeg,Nagarajan Paramasivam,Nienke E. Verbeek,Pankaj B. Agrawal,Paulien A. Terhal,Philippe Parent,Pierre Boisseau,Pierre Lindenbaum,Richard Redon,Sandra Mercier,Sha Tang,Sharyn Lincoln,Sihoun Hahn,Slavé Petrovski,Stephan Sanders

Keywords: intellectual disability, synaptic plasticity, CAMK2, CAMK2A, CAMK2B, de novo mutations, NMDAR, AMPAR

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Abstract:

Calcium/calmodulin-dependent protein kinase II (CAMK2) is one of the first proteins shown to be essential for normal learning and synaptic plasticity in mice, but its requirement for human brain development has not yet been established. Through a multi-center collaborative study based on a whole-exome sequencing approach, we identified 19 exceedingly rare de novo CAMK2A or CAMK2B variants in 24 unrelated individuals with intellectual disability. Variants were assessed for their effect on CAMK2 function and on neuronal migration. For both CAMK2A and CAMK2B, we identified mutations that decreased or increased CAMK2 auto-phosphorylation at Thr286/Thr287. We further found that all mutations affecting auto-phosphorylation also affected neuronal migration, highlighting the importance of tightly regulated CAMK2 auto-phosphorylation in neuronal function and neurodevelopment. Our data establish the importance of CAMK2A and CAMK2B and their auto-phosphorylation in human brain function and expand the phenotypic spectrum of the disorders caused by variants in key players of the glutamatergic signaling pathway

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