Modeling the functional genomics of autism using human neurons

被引:64
作者
Konopka, G.
Wexler, E.
Rosen, E.
Mukamel, Z.
Osborn, G. E.
Chen, L.
Lu, D.
Gao, F.
Gao, K.
Lowe, J. K.
Geschwind, D. H. [1 ]
机构
[1] Univ Calif Los Angeles, David Geffen Sch Med, Ctr Autism Res & Treatment, Dept Neurol,Semel Inst,Program Neurogenet, Los Angeles, CA 90095 USA
关键词
model system; neuropsychiatric disease; pharmacogenomics; high-throughput drug screen; neurodevelopment; COPY NUMBER VARIATION; SPECTRUM DISORDERS; HUMAN BRAIN; WIDE ASSOCIATION; EPILEPSY; CELLS; TRANSCRIPTOME; REVEALS; COMMON; GENES;
D O I
10.1038/mp.2011.60
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Human neural progenitors from a variety of sources present new opportunities to model aspects of human neuropsychiatric disease in vitro. Such in vitro models provide the advantages of a human genetic background combined with rapid and easy manipulation, making them highly useful adjuncts to animal models. Here, we examined whether a human neuronal culture system could be utilized to assess the transcriptional program involved in human neural differentiation and to model some of the molecular features of a neurodevelopmental disorder, such as autism. Primary normal human neuronal progenitors (NHNPs) were differentiated into a post-mitotic neuronal state through addition of specific growth factors and whole-genome gene expression was examined throughout a time course of neuronal differentiation. After 4 weeks of differentiation, a significant number of genes associated with autism spectrum disorders (ASDs) are either induced or repressed. This includes the ASD susceptibility gene neurexin 1, which showed a distinct pattern from neurexin 3 in vitro, and which we validated in vivo in fetal human brain. Using weighted gene co-expression network analysis, we visualized the network structure of transcriptional regulation, demonstrating via this unbiased analysis that a significant number of ASD candidate genes are coordinately regulated during the differentiation process. As NHNPs are genetically tractable and manipulable, they can be used to study both the effects of mutations in multiple ASD candidate genes on neuronal differentiation and gene expression in combination with the effects of potential therapeutic molecules. These data also provide a step towards better understanding of the signaling pathways disrupted in ASD. Molecular Psychiatry (2012) 17, 202-214; doi:10.1038/mp.2011.60; published online 7 June 2011
引用
收藏
页码:202 / 214
页数:13
相关论文
共 80 条
[1]   Advances in autism genetics: on the threshold of a new neurobiology [J].
Abrahams, Brett S. ;
Geschwind, Daniel H. .
NATURE REVIEWS GENETICS, 2008, 9 (05) :341-355
[2]   Wnt genes define distinct boundaries in the developing human brain: Implications for human forebrain patterning [J].
Abu-Khalil, A ;
Fu, L ;
Grove, EA ;
Zecevic, N ;
Geschwind, DH .
JOURNAL OF COMPARATIVE NEUROLOGY, 2004, 474 (02) :276-288
[3]   Neuronal differentiation is accompanied by increased levels of SNAP-25 protein in fetal rat primary cortical neurons - Implications in neuronal plasticity and Alzheimer's disease [J].
Bailey, Jason A. ;
Lahiri, Debomoy K. .
INTEGRATED MOLECULAR MEDICINE FOR NEURONAL AND NEOPLASTIC DISORDERS, 2006, 1086 :54-65
[4]   High-content screening of small compounds on human embryonic stem cells [J].
Barbaric, Ivana ;
Gokhale, Paul J. ;
Andrews, Peter W. .
BIOCHEMICAL SOCIETY TRANSACTIONS, 2010, 38 :1046-1050
[5]   Neuroanatomic observations of the brain in autism: a review and future directions [J].
Bauman, ML ;
Kemper, TL .
INTERNATIONAL JOURNAL OF DEVELOPMENTAL NEUROSCIENCE, 2005, 23 (2-3) :183-187
[6]   The emerging role of synaptic cell-adhesion pathways in the pathogenesis of autism spectrum disorders [J].
Betancur, Catalina ;
Sakurai, Takeshi ;
Buxbaum, Joseph D. .
TRENDS IN NEUROSCIENCES, 2009, 32 (07) :402-412
[7]   Genetic advances in autism: heterogeneity and convergence on shared pathways [J].
Bill, Brent R. ;
Geschwind, Daniel H. .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 2009, 19 (03) :271-278
[8]   Epilepsy and autism spectrum disorders: Are there common developmental mechanisms? [J].
Brooks-Kayal, Amy .
BRAIN & DEVELOPMENT, 2010, 32 (09) :731-738
[9]   Genome-Wide Analyses of Exonic Copy Number Variants in a Family-Based Study Point to Novel Autism Susceptibility Genes [J].
Bucan, Maja ;
Abrahams, Brett S. ;
Wang, Kai ;
Glessner, Joseph T. ;
Herman, Edward I. ;
Sonnenblick, Lisa I. ;
Retuerto, Ana I. Alvarez ;
Imielinski, Marcin ;
Hadley, Dexter ;
Bradfield, Jonathan P. ;
Kim, Cecilia ;
Gidaya, Nicole B. ;
Lindquist, Ingrid ;
Hutman, Ted ;
Sigman, Marian ;
Kustanovich, Vlad ;
Lajonchere, Clara M. ;
Singleton, Andrew ;
Kim, Junhyong ;
Wassink, Thomas H. ;
McMahon, William M. ;
Owley, Thomas ;
Sweeney, John A. ;
Coon, Hilary ;
Nurnberger, John I., Jr. ;
Li, Mingyao ;
Cantor, Rita M. ;
Minshew, Nancy J. ;
Sutcliffe, James S. ;
Cook, Edwin H. ;
Dawson, Geraldine ;
Buxbaum, Joseph D. ;
Grant, Struan F. A. ;
Schellenberg, Gerard D. ;
Geschwind, Daniel H. ;
Hakonarson, Hakon .
PLOS GENETICS, 2009, 5 (06)
[10]   Schizophrenia: Genome, interrupted [J].
Cantor, Rita M. ;
Geschwind, Daniel H. .
NEURON, 2008, 58 (02) :165-167