Mouse models of 17q21.31 microdeletion and microduplication syndromes highlight the importance of Kansl1 for cognition
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B. D. de Vries | Y. Hérault | T. Sorg | Y. Humeau | H. Meziane | R. Henkelman | H. Stunnenberg | M. Kopanitsa | Nurudeen O. Afinowi | M. Selloum | C. Chevalier | B. Vries | N. N. Kasri | M. Birling | D. Koolen | G. Iacono | M. V. van Eede | T. Arbogast | Xander Houbaert | C. Laliberté | K. Linda | N. Nadif Kasri | M. V. Eede | Henk G. Stunnenberg
[1] R Redon,et al. 17q21.31 duplication causes prominent tau-related dementia with increased MAPT expression , 2017, Molecular Psychiatry.
[2] O. Kretz,et al. MOF Acetyl Transferase Regulates Transcription and Respiration in Mitochondria , 2016, Cell.
[3] Bradley P. Coe,et al. The Koolen-de Vries syndrome: a phenotypic comparison of patients with a 17q21.31 microdeletion versus a KANSL1 sequence variant , 2015, European Journal of Human Genetics.
[4] A. Reymond,et al. Reciprocal Effects on Neurocognitive and Metabolic Phenotypes in Mouse Models of 16p11.2 Deletion and Duplication Syndromes , 2016, PLoS genetics.
[5] Magda Tsolaki,et al. A NOVEL ALZHEIMER DISEASE LOCUS LOCATED NEAR THE GENE ENCODING TAU PROTEIN , 2015, Molecular Psychiatry.
[6] C. Pantaleoni,et al. Chromosome 17q21.31 duplication syndrome: Description of a new familiar case and further delineation of the clinical spectrum. , 2016, European journal of paediatric neurology : EJPN : official journal of the European Paediatric Neurology Society.
[7] P. Castillo,et al. Selective Dysregulation of Hippocampal Inhibition in the Mouse Lacking Autism Candidate Gene CNTNAP2 , 2015, The Journal of Neuroscience.
[8] Derek J Van Booven,et al. Targeted massively parallel sequencing of autism spectrum disorder-associated genes in a case control cohort reveals rare loss-of-function risk variants , 2015, Molecular Autism.
[9] G. Kirov,et al. CNVs in neuropsychiatric disorders. , 2015, Human molecular genetics.
[10] Y. Hérault,et al. Deletion of the App-Runx1 region in mice models human partial monosomy 21 , 2015, Disease Models & Mechanisms.
[11] Steve D. M. Brown,et al. Applying the ARRIVE Guidelines to an In Vivo Database , 2015, PLoS biology.
[12] Kali T. Witherspoon,et al. Refining analyses of copy number variation identifies specific genes associated with developmental delay , 2014, Nature Genetics.
[13] Jacob Ellegood,et al. Genetic Effects on Cerebellar Structure Across Mouse Models of Autism Using a Magnetic Resonance Imaging Atlas , 2014, Autism research : official journal of the International Society for Autism Research.
[14] A. V. Vulto-van Silfhout,et al. Clinical Significance of De Novo and Inherited Copy‐Number Variation , 2013, Human mutation.
[15] M. Missler,et al. Neurexins , 2013, Genome Biology.
[16] Andrew L. Janke,et al. A segmentation protocol and MRI atlas of the C57BL/6J mouse neocortex , 2013, NeuroImage.
[17] Thomas W. Mühleisen,et al. Glutamate receptor δ 1 (GRID1) genetic variation and brain structure in schizophrenia. , 2012, Journal of psychiatric research.
[18] Eden R Martin,et al. Evaluation of copy number variations reveals novel candidate genes in autism spectrum disorder-associated pathways. , 2012, Human molecular genetics.
[19] L. Vissers,et al. Mutations in the chromatin modifier gene KANSL1 cause the 17q21.31 microdeletion syndrome , 2012, Nature Genetics.
[20] E. Mercuri,et al. Mutations in KANSL1 cause the 17q21.31 microdeletion syndrome phenotype , 2012, Nature Genetics.
[21] Lindsay S. Cahill,et al. Preparation of fixed mouse brains for MRI , 2012, NeuroImage.
[22] S. Dravid,et al. Deletion of Glutamate Delta-1 Receptor in Mouse Leads to Aberrant Emotional and Social Behaviors , 2012, PloS one.
[23] M. Tzetis,et al. Microdeletion and microduplication 17q21.31 plus an additional CNV, in patients with intellectual disability, identified by array-CGH. , 2012, Gene.
[24] D. Geschwind,et al. Absence of CNTNAP2 Leads to Epilepsy, Neuronal Migration Abnormalities, and Core Autism-Related Deficits , 2011, Cell.
[25] J. Mosser,et al. Clinical and molecular characterization of 17q21.31 microdeletion syndrome in 14 French patients with mental retardation. , 2011, European journal of medical genetics.
[26] C. Klingenberg. MorphoJ: an integrated software package for geometric morphometrics , 2011, Molecular ecology resources.
[27] I. Cuthill,et al. Reporting : The ARRIVE Guidelines for Reporting Animal Research , 2010 .
[28] T. Südhof,et al. Mouse neurexin-1α deletion causes correlated electrophysiological and behavioral changes consistent with cognitive impairments , 2009, Proceedings of the National Academy of Sciences.
[29] J. Rosenfeld,et al. 17q21.31 microduplication patients are characterised by behavioural problems and poor social interaction , 2009, Journal of Medical Genetics.
[30] S. Aftimos,et al. Phenotypic expansion and further characterisation of the 17q21.31 microdeletion syndrome , 2009, Journal of Medical Genetics.
[31] Yiping Shen,et al. Disruption of neurexin 1 associated with autism spectrum disorder. , 2008, American journal of human genetics.
[32] Tanya M. Teslovich,et al. A common genetic variant in the neurexin superfamily member CNTNAP2 increases familial risk of autism. , 2008, American journal of human genetics.
[33] J. Sebat,et al. Linkage, association, and gene-expression analyses identify CNTNAP2 as an autism-susceptibility gene. , 2008, American journal of human genetics.
[34] Brad T. Sherman,et al. Systematic and integrative analysis of large gene lists using DAVID bioinformatics resources , 2008, Nature Protocols.
[35] M. Schwartz,et al. A 17q21.31 microduplication, reciprocal to the newly described 17q21.31 microdeletion, in a girl with severe psychomotor developmental delay and dysmorphic craniofacial features. , 2007, European journal of medical genetics.
[36] R. Pfundt,et al. A new chromosome 17q21.31 microdeletion syndrome associated with a common inversion polymorphism , 2006, Nature Genetics.
[37] S. Grant,et al. Recording long-term potentiation of synaptic transmission by three-dimensional multi-electrode arrays , 2006, BMC Neuroscience.
[38] Bba,et al. CHARGE syndrome: the phenotypic spectrum of mutations in the CHD7 gene , 2005, Journal of Medical Genetics.
[39] E. Rubin,et al. Transgenic Mouse In Vivo Library of Human Down Syndrome Critical Region 1: Association between DYRK1A Overexpression, Brain Development Abnormalities, and Cell Cycle Protein Alteration , 2004, Journal of neuropathology and experimental neurology.
[40] J. Miyazaki,et al. Altered psychomotor behaviors in mice lacking pituitary adenylate cyclase-activating polypeptide (PACAP) , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[41] W. Robinson,et al. Grandmaternal origin of an isochromosome 18p present in two maternal half-sisters. , 2001, American journal of medical genetics.
[42] J. Uitto,et al. Revertant Mosaicism in Epidermolysis Bullosa Caused by Mitotic Gene Conversion , 1997, Cell.
[43] S. Lele,et al. Euclidean distance matrix analysis: confidence intervals for form and growth differences. , 1995, American journal of physical anthropology.
[44] M. Bornstein,et al. Continuity in mental development from infancy. , 1986, Child development.
[45] C. Benda. Discussion of the paper of Grace M. Sawyer, M.D. and Albert J. Shafter, Ph.D., on Reproduction in a mongoloid: a follow-up. , 1957, American journal of mental deficiency.
[46] G. Mann,et al. The serum cholesterol and lipoprotein levels in mongolism. , 1955, The Journal of pediatrics.
[47] B. Bradley,et al. Post-traumatic stress disorder is associated with PACAP and the PAC1 receptor , 2011, Nature.