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PMID: 24204314 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Human intellectual disability genes form conserved functional modules in Drosophila.

PLoS genetics ·Vol. 9 ·No. 10 ·2013-10-00 ·Pages e1003911

Oortveld MA, Keerthikumar S, Oti M, Nijhof B, Fernandes AC, Kochinke K, Castells-Nobau A, van Engelen E, Ellenkamp T, Eshuis L, Galy A, van Bokhoven H, Habermann B, Brunner HG, Zweier C, Verstreken P, Huynen MA, Schenck A

Abstract

Intellectual Disability (ID) disorders, defined by an IQ below 70, are genetically and phenotypically highly heterogeneous. Identification of common molecular pathways underlying these disorders is crucial for understanding the molecular basis of cognition and for the development of therapeutic intervention strategies. To systematically establish their functional connectivity, we used transgenic RNAi to target 270 ID gene orthologs in the Drosophila eye. Assessment of neuronal function in behavioral and electrophysiological assays and multiparametric morphological analysis identified phenotypes associated with knockdown of 180 ID gene orthologs. Most of these genotype-phenotype associations were novel. For example, we uncovered 16 genes that are required for basal neurotransmission and have not previously been implicated in this process in any system or organism. ID gene orthologs with morphological eye phenotypes, in contrast to genes without phenotypes, are relatively highly expressed in the human nervous system and are enriched for neuronal functions, suggesting that eye phenotyping can distinguish different classes of ID genes. Indeed, grouping genes by Drosophila phenotype uncovered 26 connected functional modules. Novel links between ID genes successfully predicted that MYCN, PIGV and UPF3B regulate synapse development. Drosophila phenotype groups show, in addition to ID, significant phenotypic similarity also in humans, indicating that functional modules are conserved. The combined data indicate that ID disorders, despite their extreme genetic diversity, are caused by disruption of a limited number of highly connected functional modules.

MeSH Terms
Animals Animals, Genetically Modified Drosophila/genetics Eye/growth & development,metabolism Gene Knockdown Techniques Genetic Variation Humans Intellectual Disability/genetics,metabolism,pathology Metabolic Networks and Pathways/genetics Neurons/metabolism Phenotype RNA Interference Synapses/genetics,metabolism
Authors & Affiliations
18 authors, click to expand affiliations / ORCID
Oortveld Merel A W
Department of Human Genetics, Nijmegen Centre for Molecular Life Sciences, Donders Institute for Brain, Cognition and Behaviour, Radboud University Medical Centre, Nijmegen, The Netherlands.
Keerthikumar Shivakumar
Oti Martin
Nijhof Bonnie
Fernandes Ana Clara
Kochinke Korinna
Castells-Nobau Anna
van Engelen Eva
Ellenkamp Thijs
Eshuis Lilian
Galy Anne
van Bokhoven Hans
Habermann Bianca
Brunner Han G
Zweier Christiane
Verstreken Patrik
Huynen Martijn A
Schenck Annette
Conflict of Interest

The authors have declared that no competing interests exist.

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Article Info
Journal
PLoS genetics
Abbr.
PLoS Genet
ISSN
1553-7404
Published
2013-10-00
Epub
2013-00-31
Pages
e1003911
Language
English
Region
United States
NLM ID
101239074
PMCID
PMC3814316
Subset
IM
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