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PMID: 21376300 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Excess of de novo deleterious mutations in genes associated with glutamatergic systems in nonsyndromic intellectual disability.

American journal of human genetics ·Vol. 88 ·No. 3 ·2011-03-11 ·Pages 306-16

Hamdan FF, Gauthier J, Araki Y, Lin DT, Yoshizawa Y, Higashi K, Park AR, Spiegelman D, Dobrzeniecka S, Piton A, Tomitori H, Daoud H, Massicotte C, Henrion E, Diallo O, S2D Group, Shekarabi M, Marineau C, Shevell M, Maranda B, Mitchell G, Nadeau A, D'Anjou G, Vanasse M, Srour M, Lafrenière RG, Drapeau P, Lacaille JC, Kim E, Lee JR, Igarashi K, Huganir RL, Rouleau GA, Michaud JL

Abstract

Little is known about the genetics of nonsyndromic intellectual disability (NSID). We hypothesized that de novo mutations (DNMs) in synaptic genes explain an important fraction of sporadic NSID cases. In order to investigate this possibility, we sequenced 197 genes encoding glutamate receptors and a large subset of their known interacting proteins in 95 sporadic cases of NSID. We found 11 DNMs, including ten potentially deleterious mutations (three nonsense, two splicing, one frameshift, four missense) and one neutral mutation (silent) in eight different genes. Calculation of point-substitution DNM rates per functional and neutral site showed significant excess of functional DNMs compared to neutral ones. De novo truncating and/or splicing mutations in SYNGAP1, STXBP1, and SHANK3 were found in six patients and are likely to be pathogenic. De novo missense mutations were found in KIF1A, GRIN1, CACNG2, and EPB41L1. Functional studies showed that all these missense mutations affect protein function in cell culture systems, suggesting that they may be pathogenic. Sequencing these four genes in 50 additional sporadic cases of NSID identified a second DNM in GRIN1 (c.1679_1681dup/p.Ser560dup). This mutation also affects protein function, consistent with structural predictions. None of these mutations or any other DNMs were identified in these genes in 285 healthy controls. This study highlights the importance of the glutamate receptor complexes in NSID and further supports the role of DNMs in this disorder.

MeSH Terms
Amino Acid Substitution/genetics Animals Base Sequence Calcium Channels/genetics,metabolism Cytoskeletal Proteins/genetics,metabolism Female Glutamic Acid/genetics HEK293 Cells Humans Intellectual Disability/genetics Kinesins/genetics Male Membrane Proteins/genetics,metabolism Mutation/genetics Mutation, Missense/genetics Neuropeptides/genetics,metabolism Phenotype Protein Binding/genetics Protein Transport RNA Splicing/genetics Rats Receptors, AMPA/metabolism Receptors, N-Methyl-D-Aspartate/genetics Subcellular Fractions/metabolism Syndrome
Chemicals
Cacng2 protein, rat Calcium Channels Cytoskeletal Proteins Kif1a protein, rat Membrane Proteins NMDA receptor A1 Neuropeptides Receptors, AMPA Receptors, N-Methyl-D-Aspartate erythrocyte membrane protein band 4.1-like 1 Glutamic Acid Kinesins
Authors & Affiliations
34 authors, click to expand affiliations / ORCID
Hamdan Fadi F
Centre of Excellence in Neuromics of Université de Montréal, Sainte-Justine Hospital Research Centre, Montréal, Canada.
Gauthier Julie
Araki Yoichi
Lin Da-Ting
Yoshizawa Yuhki
Higashi Kyohei
Park A-Reum
Spiegelman Dan
Dobrzeniecka Sylvia
Piton Amélie
Tomitori Hideyuki
Daoud Hussein
Massicotte Christine
Henrion Edouard
Diallo Ousmane
S2D Group
Shekarabi Masoud
Marineau Claude
Shevell Michael
Maranda Bruno
Mitchell Grant
Nadeau Amélie
D'Anjou Guy
Vanasse Michel
Srour Myriam
Lafrenière Ronald G
Drapeau Pierre
Lacaille Jean Claude
Kim Eunjoon
Lee Jae-Ran
Igarashi Kazuei
Huganir Richard L
Rouleau Guy A
Michaud Jacques L
Investigators
12 investigators, click to expand
Yang Yan
Noreau Anne
Raymond Annie
Levert Annie
Thibodeau Pascale
Coté Mélanie
Kuku Frédéric
Laurent Sandra
Jolivet Philippe
Duguay Joannie
Lachapelle Karine
Bachand Isabelle
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Article Info
Journal
American journal of human genetics
Abbr.
Am J Hum Genet
ISSN
1537-6605
Published
2011-03-11
Epub
2011-00-03
Pages
306-16
Language
English
Region
United States
NLM ID
0370475
PMCID
PMC3059427
Subset
IM
Grants
NINDS NIH HHS · R01 NS036715 · United States
CIHR · Canada
Corrections
ErratumIn
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