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Dive into the research topics where Matthew W. State is active.

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Featured researches published by Matthew W. State.


Nature | 2012

De novo mutations revealed by whole-exome sequencing are strongly associated with autism

Stephan J. Sanders; Abha R. Gupta; John D. Murdoch; Melanie J. Raubeson; A. Jeremy Willsey; A. Gulhan Ercan-Sencicek; Nicholas M. DiLullo; Neelroop N. Parikshak; Jason L. Stein; Michael F. Walker; Gordon T. Ober; Nicole A. Teran; Youeun Song; Paul El-Fishawy; Ryan C. Murtha; Murim Choi; John D. Overton; Robert D. Bjornson; Nicholas Carriero; Kyle A. Meyer; Kaya Bilguvar; Shrikant Mane; Nenad Sestan; Richard P. Lifton; Murat Gunel; Kathryn Roeder; Daniel H. Geschwind; Bernie Devlin; Matthew W. State

Multiple studies have confirmed the contribution of rare de novo copy number variations to the risk for autism spectrum disorders. But whereas de novo single nucleotide variants have been identified in affected individuals, their contribution to risk has yet to be clarified. Specifically, the frequency and distribution of these mutations have not been well characterized in matched unaffected controls, and such data are vital to the interpretation of de novo coding mutations observed in probands. Here we show, using whole-exome sequencing of 928 individuals, including 200 phenotypically discordant sibling pairs, that highly disruptive (nonsense and splice-site) de novo mutations in brain-expressed genes are associated with autism spectrum disorders and carry large effects. On the basis of mutation rates in unaffected individuals, we demonstrate that multiple independent de novo single nucleotide variants in the same gene among unrelated probands reliably identifies risk alleles, providing a clear path forward for gene discovery. Among a total of 279 identified de novo coding mutations, there is a single instance in probands, and none in siblings, in which two independent nonsense variants disrupt the same gene, SCN2A (sodium channel, voltage-gated, type II, α subunit), a result that is highly unlikely by chance.


Neuron | 2011

Multiple Recurrent De Novo CNVs, Including Duplications of the 7q11.23 Williams Syndrome Region, Are Strongly Associated with Autism

Stephan J. Sanders; A. Gulhan Ercan-Sencicek; Vanessa Hus; Rui Luo; Daniel Moreno-De-Luca; Su H. Chu; Michael P. Moreau; Abha R. Gupta; Susanne Thomson; Christopher E. Mason; Kaya Bilguvar; Patrícia B. S. Celestino-Soper; Murim Choi; Emily L. Crawford; Lea K. Davis; Nicole R. Davis Wright; Rahul M. Dhodapkar; Michael DiCola; Nicholas M. DiLullo; Thomas V. Fernandez; Vikram Fielding-Singh; Daniel O. Fishman; Stephanie Frahm; Rouben Garagaloyan; Gerald Goh; Sindhuja Kammela; Lambertus Klei; Jennifer K. Lowe; Sabata C. Lund; Anna D. McGrew

We have undertaken a genome-wide analysis of rare copy-number variation (CNV) in 1124 autism spectrum disorder (ASD) families, each comprised of a single proband, unaffected parents, and, in most kindreds, an unaffected sibling. We find significant association of ASD with de novo duplications of 7q11.23, where the reciprocal deletion causes Williams-Beuren syndrome, characterized by a highly social personality. We identify rare recurrent de novo CNVs at five additional regions, including 16p13.2 (encompassing genes USP7 and C16orf72) and Cadherin 13, and implement a rigorous approach to evaluating the statistical significance of these observations. Overall, large de novo CNVs, particularly those encompassing multiple genes, confer substantial risks (OR = 5.6; CI = 2.6-12.0, p = 2.4 × 10(-7)). We estimate there are 130-234 ASD-related CNV regions in the human genome and present compelling evidence, based on cumulative data, for association of rare de novo events at 7q11.23, 15q11.2-13.1, 16p11.2, and Neurexin 1.


Nature | 2009

Common genetic variants on 5p14.1 associate with autism spectrum disorders

Kai Wang; Haitao Zhang; Deqiong Ma; Maja Bucan; Joseph T. Glessner; Brett S. Abrahams; Daria Salyakina; Marcin Imielinski; Jonathan P. Bradfield; Patrick Sleiman; Cecilia E. Kim; Cuiping Hou; Edward C. Frackelton; Rosetta M. Chiavacci; Nagahide Takahashi; Takeshi Sakurai; Eric Rappaport; Clara M. Lajonchere; Jeffrey Munson; Annette Estes; Olena Korvatska; Joseph Piven; Lisa I. Sonnenblick; Ana I. Alvarez Retuerto; Edward I. Herman; Hongmei Dong; Ted Hutman; Marian Sigman; Sally Ozonoff; Ami Klin

Autism spectrum disorders (ASDs) represent a group of childhood neurodevelopmental and neuropsychiatric disorders characterized by deficits in verbal communication, impairment of social interaction, and restricted and repetitive patterns of interests and behaviour. To identify common genetic risk factors underlying ASDs, here we present the results of genome-wide association studies on a cohort of 780 families (3,101 subjects) with affected children, and a second cohort of 1,204 affected subjects and 6,491 control subjects, all of whom were of European ancestry. Six single nucleotide polymorphisms between cadherin 10 (CDH10) and cadherin 9 (CDH9)—two genes encoding neuronal cell-adhesion molecules—revealed strong association signals, with the most significant SNP being rs4307059 (P = 3.4 × 10-8, odds ratio = 1.19). These signals were replicated in two independent cohorts, with combined P values ranging from 7.4 × 10-8 to 2.1 × 10-10. Our results implicate neuronal cell-adhesion molecules in the pathogenesis of ASDs, and represent, to our knowledge, the first demonstration of genome-wide significant association of common variants with susceptibility to ASDs.


Nature | 2014

The contribution of de novo coding mutations to autism spectrum disorder

Ivan Iossifov; Brian J. O'Roak; Stephan J. Sanders; Michael Ronemus; Niklas Krumm; Dan Levy; Holly A.F. Stessman; Kali Witherspoon; Laura Vives; Karynne E. Patterson; Joshua D. Smith; Bryan W. Paeper; Deborah A. Nickerson; Jeanselle Dea; Shan Dong; Luis E. Gonzalez; Jeffrey D. Mandell; Shrikant Mane; Catherine Sullivan; Michael F. Walker; Zainulabedin Waqar; Liping Wei; A. Jeremy Willsey; Boris Yamrom; Yoon Lee; Ewa Grabowska; Ertugrul Dalkic; Zihua Wang; Steven Marks; Peter Andrews

Whole exome sequencing has proven to be a powerful tool for understanding the genetic architecture of human disease. Here we apply it to more than 2,500 simplex families, each having a child with an autistic spectrum disorder. By comparing affected to unaffected siblings, we show that 13% of de novo missense mutations and 43% of de novo likely gene-disrupting (LGD) mutations contribute to 12% and 9% of diagnoses, respectively. Including copy number variants, coding de novo mutations contribute to about 30% of all simplex and 45% of female diagnoses. Almost all LGD mutations occur opposite wild-type alleles. LGD targets in affected females significantly overlap the targets in males of lower intelligence quotient (IQ), but neither overlaps significantly with targets in males of higher IQ. We estimate that LGD mutation in about 400 genes can contribute to the joint class of affected females and males of lower IQ, with an overlapping and similar number of genes vulnerable to contributory missense mutation. LGD targets in the joint class overlap with published targets for intellectual disability and schizophrenia, and are enriched for chromatin modifiers, FMRP-associated genes and embryonically expressed genes. Most of the significance for the latter comes from affected females.


Nature Genetics | 2008

Rare independent mutations in renal salt handling genes contribute to blood pressure variation.

Weizhen Ji; Jia Nee Foo; Brian J. O'Roak; Hongyu Zhao; Martin G. Larson; David B. Simon; Christopher Newton-Cheh; Matthew W. State; Daniel Levy; Richard P. Lifton

The effects of alleles in many genes are believed to contribute to common complex diseases such as hypertension. Whether risk alleles comprise a small number of common variants or many rare independent mutations at trait loci is largely unknown. We screened members of the Framingham Heart Study (FHS) for variation in three genes—SLC12A3 (NCCT), SLC12A1 (NKCC2) and KCNJ1 (ROMK)—causing rare recessive diseases featuring large reductions in blood pressure. Using comparative genomics, genetics and biochemistry, we identified subjects with mutations proven or inferred to be functional. These mutations, all heterozygous and rare, produce clinically significant blood pressure reduction and protect from development of hypertension. Our findings implicate many rare alleles that alter renal salt handling in blood pressure variation in the general population, and identify alleles with health benefit that are nonetheless under purifying selection. These findings have implications for the genetic architecture of hypertension and other common complex traits.


American Journal of Human Genetics | 2008

Molecular Cytogenetic Analysis and Resequencing of Contactin Associated Protein-Like 2 in Autism Spectrum Disorders

Betul Bakkaloglu; Brian J. O'Roak; Angeliki Louvi; Abha R. Gupta; Jesse F. Abelson; Thomas Morgan; Katarzyna Chawarska; Ami Klin; A. Gulhan Ercan-Sencicek; Althea A. Stillman; Gamze Tanriover; Brett S. Abrahams; Jackie A. Duvall; Elissa M. Robbins; Daniel H. Geschwind; Thomas Biederer; Murat Gunel; Richard P. Lifton; Matthew W. State

Autism spectrum disorders (ASD) are a group of related neurodevelopmental syndromes with complex genetic etiology. We identified a de novo chromosome 7q inversion disrupting Autism susceptibility candidate 2 (AUTS2) and Contactin Associated Protein-Like 2 (CNTNAP2) in a child with cognitive and social delay. We focused our initial analysis on CNTNAP2 based on our demonstration of disruption of Contactin 4 (CNTN4) in a patient with ASD; the recent finding of rare homozygous mutations in CNTNAP2 leading to intractable seizures and autism; and in situ and biochemical analyses reported herein that confirm expression in relevant brain regions and demonstrate the presence of CNTNAP2 in the synaptic plasma membrane fraction of rat forebrain lysates. We comprehensively resequenced CNTNAP2 in 635 patients and 942 controls. Among patients, we identified a total of 27 nonsynonymous changes; 13 were rare and unique to patients and 8 of these were predicted to be deleterious by bioinformatic approaches and/or altered residues conserved across all species. One variant at a highly conserved position, I869T, was inherited by four affected children in three unrelated families, but was not found in 4010 control chromosomes (p = 0.014). Overall, this resequencing data demonstrated a modest nonsignificant increase in the burden of rare variants in cases versus controls. Nonetheless, when viewed in light of two independent studies published in this issue of AJHG showing a relationship between ASD and common CNTNAP2 alleles, the cytogenetic and mutation screening data suggest that rare variants may also contribute to the pathophysiology of ASD, but place limits on the magnitude of this contribution.


Neuron | 2009

Functional and Evolutionary Insights into Human Brain Development through Global Transcriptome Analysis

Matthew B. Johnson; Yuka Imamura Kawasawa; Christopher E. Mason; Željka Krsnik; Giovanni Coppola; Darko Bogdanović; Daniel H. Geschwind; Shrikant Mane; Matthew W. State; Nenad Sestan

Our understanding of the evolution, formation, and pathological disruption of human brain circuits is impeded by a lack of comprehensive data on the developing brain transcriptome. A whole-genome, exon-level expression analysis of 13 regions from left and right sides of the mid-fetal human brain revealed that 76% of genes are expressed, and 44% of these are differentially regulated. These data reveal a large number of specific gene expression and alternative splicing patterns, as well as coexpression networks, associated with distinct regions and neurodevelopmental processes. Of particular relevance to cognitive specializations, we have characterized the transcriptional landscapes of prefrontal cortex and perisylvian speech and language areas, which exhibit a population-level global expression symmetry. We show that differentially expressed genes are more frequently associated with human-specific evolution of putative cis-regulatory elements. These data provide a wealth of biological insights into the complex transcriptional and molecular underpinnings of human brain development and evolution.


Nature | 2010

Whole-exome sequencing identifies recessive WDR62 mutations in severe brain malformations

Kaya Bilguvar; Ali K. Ozturk; Angeliki Louvi; Kenneth Y. Kwan; Murim Choi; Burak Tatlı; Dilek Yalnizoglu; Beyhan Tüysüz; Ahmet Okay Caglayan; Sarenur Gokben; Hande Kaymakçalan; Tanyeri Barak; Mehmet Bakırcıoğlu; Katsuhito Yasuno; Winson S.C. Ho; Stephan J. Sanders; Ying Zhu; Sanem Yilmaz; Alp Dinçer; Michele H. Johnson; Richard A. Bronen; Naci Kocer; Hüseyin Per; Shrikant Mane; Mehmet Necmettin Pamir; Cengiz Yalcinkaya; Meral Topçu; Meral Özmen; Nenad Sestan; Richard P. Lifton

The development of the human cerebral cortex is an orchestrated process involving the generation of neural progenitors in the periventricular germinal zones, cell proliferation characterized by symmetric and asymmetric mitoses, followed by migration of post-mitotic neurons to their final destinations in six highly ordered, functionally specialized layers. An understanding of the molecular mechanisms guiding these intricate processes is in its infancy, substantially driven by the discovery of rare mutations that cause malformations of cortical development. Mapping of disease loci in putative Mendelian forms of malformations of cortical development has been hindered by marked locus heterogeneity, small kindred sizes and diagnostic classifications that may not reflect molecular pathogenesis. Here we demonstrate the use of whole-exome sequencing to overcome these obstacles by identifying recessive mutations in WD repeat domain 62 (WDR62) as the cause of a wide spectrum of severe cerebral cortical malformations including microcephaly, pachygyria with cortical thickening as well as hypoplasia of the corpus callosum. Some patients with mutations in WDR62 had evidence of additional abnormalities including lissencephaly, schizencephaly, polymicrogyria and, in one instance, cerebellar hypoplasia, all traits traditionally regarded as distinct entities. In mice and humans, WDR62 transcripts and protein are enriched in neural progenitors within the ventricular and subventricular zones. Expression of WDR62 in the neocortex is transient, spanning the period of embryonic neurogenesis. Unlike other known microcephaly genes, WDR62 does not apparently associate with centrosomes and is predominantly nuclear in localization. These findings unify previously disparate aspects of cerebral cortical development and highlight the use of whole-exome sequencing to identify disease loci in settings in which traditional methods have proved challenging.


Neuron | 2015

Insights into Autism Spectrum Disorder Genomic Architecture and Biology from 71 Risk Loci

Stephan J. Sanders; Xin He; A. Jeremy Willsey; A. Gulhan Ercan-Sencicek; Kaitlin E. Samocha; A. Ercument Cicek; Vanessa Hus Bal; Somer L. Bishop; Shan Dong; Arthur P. Goldberg; Cai Jinlu; John F. Keaney; Lambertus Klei; Jeffrey D. Mandell; Daniel Moreno-De-Luca; Christopher S. Poultney; Elise B. Robinson; Louw Smith; Tor Solli-Nowlan; Mack Y. Su; Nicole A. Teran; Michael F. Walker; Donna M. Werling; Arthur L. Beaudet; Rita M. Cantor; Eric Fombonne; Daniel H. Geschwind; Dorothy E. Grice; Catherine Lord; Jennifer K. Lowe

Analysis of de novo CNVs (dnCNVs) from the full Simons Simplex Collection (SSC) (N = 2,591 families) replicates prior findings of strong association with autism spectrum disorders (ASDs) and confirms six risk loci (1q21.1, 3q29, 7q11.23, 16p11.2, 15q11.2-13, and 22q11.2). The addition of published CNV data from the Autism Genome Project (AGP) and exome sequencing data from the SSC and the Autism Sequencing Consortium (ASC) shows that genes within small de novo deletions, but not within large dnCNVs, significantly overlap the high-effect risk genes identified by sequencing. Alternatively, large dnCNVs are found likely to contain multiple modest-effect risk genes. Overall, we find strong evidence that de novo mutations are associated with ASD apart from the risk for intellectual disability. Extending the transmission and de novo association test (TADA) to include small de novo deletions reveals 71 ASD risk loci, including 6 CNV regions (noted above) and 65 risk genes (FDR ≤ 0.1).


Science | 2013

Genomic Analysis of Non-NF2 Meningiomas Reveals Mutations in TRAF7, KLF4, AKT1, and SMO

Victoria E. Clark; Emine Z. Erson-Omay; Serin A; Jun Yin; Justin Cotney; Koray Özduman; Avşar T; Jinyu Li; Phillip B. Murray; Octavian Henegariu; Saliha Yılmaz; Jennifer Moliterno Günel; Geneive Carrión-Grant; Yilmaz B; Grady C; Tanrikulu B; Mehmet Bakırcıoğlu; Hande Kaymakçalan; Ahmet Okay Caglayan; Sencar L; Ceyhun E; Atik Af; Bayri Y; Hanwen Bai; Luis Kolb; Ryan Hebert; Serdar Bedii Omay; Murim Choi; John D. Overton; Eric C. Holland

Genetic Clues to Meningioma Meningiomas are the most common primary brain tumors in adults. Located within the layer of tissue covering the brain, these tumors are usually slow-growing and benign but can cause serious neurological complications. About half of these tumors have mutations in the neurofibromin 2 gene (NF2). To identify other genes that contribute to meningioma pathogenesis, Clark et al. (p. 1077, published online 24 January) performed genome sequence analysis on 300 tumors. Meningiomas fell into two general classes: benign tumors located at the skull base—which tend to harbor mutations in the TRAF7, KLF4, AKT1, and SMO genes—and higher-grade tumors located in the cerebral and cerebellar hemispheres harbor mutations in NF2. The mutational profiles of meningiomas, a common type of brain tumor, correlate with their anatomical location and clinical status. We report genomic analysis of 300 meningiomas, the most common primary brain tumors, leading to the discovery of mutations in TRAF7, a proapoptotic E3 ubiquitin ligase, in nearly one-fourth of all meningiomas. Mutations in TRAF7 commonly occurred with a recurrent mutation (K409Q) in KLF4, a transcription factor known for its role in inducing pluripotency, or with AKT1E17K, a mutation known to activate the PI3K pathway. SMO mutations, which activate Hedgehog signaling, were identified in ~5% of non-NF2 mutant meningiomas. These non-NF2 meningiomas were clinically distinctive—nearly always benign, with chromosomal stability, and originating from the medial skull base. In contrast, meningiomas with mutant NF2 and/or chromosome 22 loss were more likely to be atypical, showing genomic instability, and localizing to the cerebral and cerebellar hemispheres. Collectively, these findings identify distinct meningioma subtypes, suggesting avenues for targeted therapeutics.

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