| Literature DB >> 30388402 |
Ina Schanze1, Jens Bunt2, Jonathan W C Lim3, Denny Schanze1, Ryan J Dean3, Marielle Alders4, Patricia Blanchet5, Tania Attié-Bitach6, Siren Berland7, Steven Boogert1, Sangamitra Boppudi1, Caitlin J Bridges1, Megan T Cho8, William B Dobyns9, Dian Donnai10, Jessica Douglas11, Dawn L Earl12, Timothy J Edwards13, Laurence Faivre14, Brieana Fregeau15, David Genevieve5, Marion Gérard16, Vincent Gatinois5, Muriel Holder-Espinasse17, Samuel F Huth3, Kosuke Izumi18, Bronwyn Kerr10, Elodie Lacaze19, Phillis Lakeman4, Sonal Mahida20, Ghayda M Mirzaa9, Sian M Morgan21, Catherine Nowak11, Hilde Peeters22, Florence Petit23, Daniela T Pilz24, Jacques Puechberty5, Eyal Reinstein25, Jean-Baptiste Rivière26, Avni B Santani27, Anouck Schneider5, Elliott H Sherr15, Constance Smith-Hicks20, Ilse Wieland1, Elaine Zackai28, Xiaonan Zhao29, Richard M Gronostajski30, Martin Zenker31, Linda J Richards32.
Abstract
The nuclear factor I (NFI) family of transcription factors play an important role in normal development of multiple organs. Three NFI family members are highly expressed in the brain, and deletions or sequence variants in two of these, NFIA and NFIX, have been associated with intellectual disability (ID) and brain malformations. NFIB, however, has not previously been implicated in human disease. Here, we present a cohort of 18 individuals with mild ID and behavioral issues who are haploinsufficient for NFIB. Ten individuals harbored overlapping microdeletions of the chromosomal 9p23-p22.2 region, ranging in size from 225 kb to 4.3 Mb. Five additional subjects had point sequence variations creating a premature termination codon, and three subjects harbored single-nucleotide variations resulting in an inactive protein as determined using an in vitro reporter assay. All individuals presented with additional variable neurodevelopmental phenotypes, including muscular hypotonia, motor and speech delay, attention deficit disorder, autism spectrum disorder, and behavioral abnormalities. While structural brain anomalies, including dysgenesis of corpus callosum, were variable, individuals most frequently presented with macrocephaly. To determine whether macrocephaly could be a functional consequence of NFIB disruption, we analyzed a cortex-specific Nfib conditional knockout mouse model, which is postnatally viable. Utilizing magnetic resonance imaging and histology, we demonstrate that Nfib conditional knockout mice have enlargement of the cerebral cortex but preservation of overall brain structure and interhemispheric connectivity. Based on our findings, we propose that haploinsufficiency of NFIB causes ID with macrocephaly.Entities:
Keywords: NFIB; agenesis of the corpus callosum; chromosome 9p22.3; chromosome 9p23; developmental delay; haploinsufficiency; intellectual disability; macrocephaly; megalencephaly; nuclear factor I
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Year: 2018 PMID: 30388402 PMCID: PMC6218805 DOI: 10.1016/j.ajhg.2018.10.006
Source DB: PubMed Journal: Am J Hum Genet ISSN: 0002-9297 Impact factor: 11.025