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Dive into the research topics where Christopher A. Walsh is active.

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Featured researches published by Christopher A. Walsh.


The New England Journal of Medicine | 2008

Association between Microdeletion and Microduplication at 16p11.2 and Autism

Lauren A. Weiss; Yiping Shen; Joshua M. Korn; Dan E. Arking; David T. Miller; Ragnheidur Fossdal; Evald Saemundsen; Hreinn Stefansson; Todd Green; Orah S. Platt; Douglas M. Ruderfer; Christopher A. Walsh; David Altshuler; Aravinda Chakravarti; Rudolph E. Tanzi; Kari Stefansson; Susan L. Santangelo; James F. Gusella; Pamela Sklar; Bai-Lin Wu; Mark J. Daly

BACKGROUND Autism spectrum disorder is a heritable developmental disorder in which chromosomal abnormalities are thought to play a role. METHODS As a first component of a genomewide association study of families from the Autism Genetic Resource Exchange (AGRE), we used two novel algorithms to search for recurrent copy-number variations in genotype data from 751 multiplex families with autism. Specific recurrent de novo events were further evaluated in clinical-testing data from Childrens Hospital Boston and in a large population study in Iceland. RESULTS Among the AGRE families, we observed five instances of a de novo deletion of 593 kb on chromosome 16p11.2. Using comparative genomic hybridization, we observed the identical deletion in 5 of 512 children referred to Childrens Hospital Boston for developmental delay, mental retardation, or suspected autism spectrum disorder, as well as in 3 of 299 persons with autism in an Icelandic population; the deletion was also carried by 2 of 18,834 unscreened Icelandic control subjects. The reciprocal duplication of this region occurred in 7 affected persons in AGRE families and 4 of the 512 children from Childrens Hospital Boston. The duplication also appeared to be a high-penetrance risk factor. CONCLUSIONS We have identified a novel, recurrent microdeletion and a reciprocal microduplication that carry substantial susceptibility to autism and appear to account for approximately 1% of cases. We did not identify other regions with similar aggregations of large de novo mutations.


Neuron | 1999

Doublecortin Is a Microtubule-Associated Protein and Is Expressed Widely by Migrating Neurons

Joseph G. Gleeson; Peter T. Lin; Lisa A. Flanagan; Christopher A. Walsh

Doublecortin (DCX) is required for normal migration of neurons into the cerebral cortex, since mutations in the human gene cause a disruption of cortical neuronal migration. To date, little is known about the distribution of DCX protein or its function. Here, we demonstrate that DCX is expressed in migrating neurons throughout the central and peripheral nervous system during embryonic and postnatal development. DCX protein localization overlaps with microtubules in cultured primary cortical neurons, and this overlapping expression is disrupted by microtubule depolymerization. DCX coassembles with brain microtubules, and recombinant DCX stimulates the polymerization of purified tubulin. Finally, overexpression of DCX in heterologous cells leads to a dramatic microtubule phenotype that is resistant to depolymerization. Therefore, DCX likely directs neuronal migration by regulating the organization and stability of microtubules.


Proceedings of the National Academy of Sciences of the United States of America | 2004

Directed migration of neural stem cells to sites of CNS injury by the stromal cell-derived factor 1α/CXC chemokine receptor 4 pathway

Jaime Imitola; Kook In Park; Franz Josef Mueller; Marta Nieto; Yang D. Teng; Dan Frenkel; Jianxue Li; Richard L. Sidman; Christopher A. Walsh; Evan Y. Snyder; Samia J. Khoury

Migration toward pathology is the first critical step in stem cell engagement during regeneration. Neural stem cells (NSCs) migrate through the parenchyma along nonstereotypical routes in a precise directed manner across great distances to injury sites in the CNS, where they might engage niches harboring local transiently expressed reparative signals. The molecular mechanisms for NSC mobilization have not been identified. Because NSCs seem to home similarly to pathologic sites derived from disparate etiologies, we hypothesized that the inflammatory response itself, a characteristic common to all, guides the behavior of potentially reparative cells. As proof of concept, we show that human NSCs migrate in vivo (including from the contralateral hemisphere) toward an infarcted area (a representative CNS injury), where local astrocytes and endothelium up-regulate the inflammatory chemoattractant stromal cell-derived factor 1α (SDF-1α). NSCs express CXC chemokine receptor 4 (CXCR4), the cognate receptor for SDF-1α. Exposure of SDF-1α to quiescent NSCs enhances proliferation, promotes chain migration and transmigration, and activates intracellular molecular pathways mediating engagement. CXCR4 blockade abrogates their pathology-directed chain migration, a developmentally relevant mode of tangential migration that, if recapitulated, could explain homing along nonstereotypical paths. Our data implicate SDF-1α/CXCR4, representative of the inflammatory milieu characterizing many pathologies, as a pathway that activates NSC molecular programs during injury and suggest that inflammation may be viewed not simply as playing an adverse role but also as providing stimuli that recruit cells with a regenerative homeostasis-promoting capacity. CXCR4 expression within germinal zones suggests that NSC homing after injury and migration during development may invoke similar mechanisms.


Cell | 1992

Multipotent neural cell lines can engraft and participate in development of mouse cerebellum

Evan Y. Snyder; David L. Deitcher; Christopher A. Walsh; Susan Arnold-Aldea; Erika Hartwieg; Constance L. Cepko

Multipotent neural cell lines were generated via retrovirus-mediated v-myc transfer into murine cerebellar progenitor cells. When transplanted back into the cerebellum of newborn mice, these cells integrated into the cerebellum in a nontumorigenic, cytoarchitecturally appropriate manner. Cells from the same clonal line differentiated into neurons or glia in a manner appropriate to their site of engraftment. Engrafted cells, identified by lacZ expression and PCR-mediated detection of a unique sequence arrangement, could be identified in animals up to 22 months postengraftment. Electron microscopic and immunohistochemical analysis demonstrated that some engrafted cells were similar to host neurons and glia. Some transplant-derived neurons received appropriate synapses and formed normal intercellular contacts. These data indicate that generating immortalized cell lines for repair of, or transport of genes into, the CNS may be feasible. Such lines may also provide a model for commitment and differentiation of cerebellar progenitor cells.


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.


Neuron | 1998

Mutations in filamin 1 prevent migration of cerebral cortical neurons in human Periventricular heterotopia

Jeremy W. Fox; Edward D Lamperti; Yaman Z. Eksioglu; Susan E. Hong; Yuanyi Feng; Donna Graham; Ingrid E. Scheffer; William B. Dobyns; Betsy Hirsch; Rodney A. Radtke; Samuel F. Berkovic; Peter R. Huttenlocher; Christopher A. Walsh

Long-range, directed migration is particularly dramatic in the cerebral cortex, where postmitotic neurons generated deep in the brain migrate to form layers with distinct form and function. In the X-linked dominant human disorder periventricular heterotopia (PH), many neurons fail to migrate and persist as nodules lining the ventricular surface. Females with PH present with epilepsy and other signs, including patent ductus arteriosus and coagulopathy, while hemizygous males die embryonically. We have identified the PH gene as filamin 1 (FLN1), which encodes an actin-cross-linking phosphoprotein that transduces ligand-receptor binding into actin reorganization, and which is required for locomotion of many cell types. FLN1 shows previously unrecognized, high-level expression in the developing cortex, is required for neuronal migration to the cortex, and is essential for embryogenesis.


Nature Genetics | 2000

Autosomal recessive lissencephaly with cerebellar hypoplasia is associated with human RELN mutations

Susan E. Hong; Yin Yao Shugart; David T. Huang; Saad Al Shahwan; P. Ellen Grant; Jonathan O’B. Hourihane; Neil D.T. Martin; Christopher A. Walsh

Normal development of the cerebral cortex requires long-range migration of cortical neurons from proliferative regions deep in the brain. Lissencephaly (“smooth brain,” from “lissos,” meaning smooth, and “encephalos,” meaning brain) is a severe developmental disorder in which neuronal migration is impaired, leading to a thickened cerebral cortex whose normally folded contour is simplified and smooth. Two identified lissencephaly genes do not account for all known cases, and additional lissencephaly syndromes have been described. An autosomal recessive form of lissencephaly (LCH) associated with severe abnormalities of the cerebellum, hippocampus and brainstem maps to chromosome 7q22, and is associated with two independent mutations in the human gene encoding reelin (RELN). The mutations disrupt splicing of RELN cDNA, resulting in low or undetectable amounts of reelin protein. LCH parallels the reeler mouse mutant (Relnrl), in which Reln mutations cause cerebellar hypoplasia, abnormal cerebral cortical neuronal migration and abnormal axonal connectivity. RELN encodes a large (388 kD) secreted protein that acts on migrating cortical neurons by binding to the very low density lipoprotein receptor (VLDLR), the apolipoprotein E receptor 2 (ApoER2; refs 9–11 ), α3β1 integrin and protocadherins. Although reelin was previously thought to function exclusively in brain, some humans with RELN mutations show abnormal neuromuscular connectivity and congenital lymphoedema, suggesting previously unsuspected functions for reelin in and outside of the brain.


American Journal of Human Genetics | 2002

Mutations in the O-mannosyltransferase gene POMT1 give rise to the severe neuronal migration disorder Walker-Warburg syndrome

Daniel Beltrán-Valero de Bernabé; Sophie Currier; Alice Steinbrecher; Jacopo Celli; Ellen van Beusekom; Bert van der Zwaag; Hülya Kayserili; Luciano Merlini; David Chitayat; William B. Dobyns; Bru Cormand; Ana Elina Lehesjoki; Jesús Cruces; Thomas Voit; Christopher A. Walsh; Hans van Bokhoven; Han G. Brunner

Walker-Warburg syndrome (WWS) is an autosomal recessive developmental disorder characterized by congenital muscular dystrophy and complex brain and eye abnormalities. A similar combination of symptoms is presented by two other human diseases, muscle-eye-brain disease (MEB) and Fukuyama congenital muscular dystrophy (FCMD). Although the genes underlying FCMD (Fukutin) and MEB (POMGnT1) have been cloned, loci for WWS have remained elusive. The protein products of POMGnT1 and Fukutin have both been implicated in protein glycosylation. To unravel the genetic basis of WWS, we first performed a genomewide linkage analysis in 10 consanguineous families with WWS. The results indicated the existence of at least three WWS loci. Subsequently, we adopted a candidate-gene approach in combination with homozygosity mapping in 15 consanguineous families with WWS. Candidate genes were selected on the basis of the role of the FCMD and MEB genes. Since POMGnT1 encodes an O-mannoside N-acetylglucosaminyltransferase, we analyzed the possible implication of O-mannosyl glycan synthesis in WWS. Analysis of the locus for O-mannosyltransferase 1 (POMT1) revealed homozygosity in 5 of 15 families. Sequencing of the POMT1 gene revealed mutations in 6 of the 30 unrelated patients with WWS. Of the five mutations identified, two are nonsense mutations, two are frameshift mutations, and one is a missense mutation. Immunohistochemical analysis of muscle from patients with POMT1 mutations corroborated the O-mannosylation defect, as judged by the absence of glycosylation of alpha-dystroglycan. The implication of O-mannosylation in MEB and WWS suggests new lines of study in understanding the molecular basis of neuronal migration.


Science | 2008

Identifying Autism Loci and Genes by Tracing Recent Shared Ancestry

Eric M. Morrow; Seung Yun Yoo; Steven W. Flavell; Tae Kyung Kim; Yingxi Lin; Robert Sean Hill; Nahit Motavalli Mukaddes; Soher Balkhy; Generoso G. Gascon; Asif Hashmi; Samira Al-Saad; Janice Ware; Robert M. Joseph; Rachel Greenblatt; Danielle Gleason; Julia A. Ertelt; Kira Apse; Adria Bodell; Jennifer N. Partlow; Brenda J. Barry; Hui Yao; Kyriacos Markianos; Russell J. Ferland; Michael E. Greenberg; Christopher A. Walsh

To find inherited causes of autism-spectrum disorders, we studied families in which parents share ancestors, enhancing the role of inherited factors. We mapped several loci, some containing large, inherited, homozygous deletions that are likely mutations. The largest deletions implicated genes, including PCDH10 (protocadherin 10) and DIA1 (deleted in autism1, or c3orf58), whose level of expression changes in response to neuronal activity, a marker of genes involved in synaptic changes that underlie learning. A subset of genes, including NHE9 (Na+/H+ exchanger 9), showed additional potential mutations in patients with unrelated parents. Our findings highlight the utility of “homozygosity mapping” in heterogeneous disorders like autism but also suggest that defective regulation of gene expression after neural activity may be a mechanism common to seemingly diverse autism mutations.


Neuron | 2000

Reelin Binds α3β1 Integrin and Inhibits Neuronal Migration

Lori Dulabon; Eric C. Olson; Mary G Taglienti; Scott Eisenhuth; Barbara C. McGrath; Christopher A. Walsh; Jordan A. Kreidberg; E.S Anton

Mice that are mutant for Reelin or Dab1, or doubly mutant for the VLDL receptor (VLDLR) and ApoE receptor 2 (ApoER2), show disorders of cerebral cortical lamination. How Reelin and its receptors regulate laminar organization of cerebral cortex is unknown. We show that Reelin inhibits migration of cortical neurons and enables detachment of neurons from radial glia. Recombinant and native Reelin associate with alpha3beta1 integrin, which regulates neuron-glia interactions and is required to achieve proper laminar organization. The effect of Reelin on cortical neuronal migration in vitro and in vivo depends on interactions between Reelin and alpha3beta1 integrin. Absence of alpha3beta1 leads to a reduction of Dab1, a signaling protein acting downstream of Reelin. Thus, Reelin may arrest neuronal migration and promote normal cortical lamination by binding alpha3beta1 integrin and modulating integrin-mediated cellular adhesion.

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Brenda J. Barry

Howard Hughes Medical Institute

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Adria Bodell

Beth Israel Deaconess Medical Center

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R. Sean Hill

Howard Hughes Medical Institute

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Annapurna Poduri

Boston Children's Hospital

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Bernard S. Chang

Beth Israel Deaconess Medical Center

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Jennifer N. Partlow

Howard Hughes Medical Institute

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William B. Dobyns

Seattle Children's Research Institute

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Volney L. Sheen

Beth Israel Deaconess Medical Center

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