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Dive into the research topics where Christian Gilissen is active.

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Featured researches published by Christian Gilissen.


Nature Genetics | 2012

De novo mutations in the actin genes ACTB and ACTG1 cause Baraitser-Winter syndrome

Jean-Baptiste Rivière; Bregje W.M. van Bon; Alexander Hoischen; Stanislav Kholmanskikh; Brian J. O'Roak; Christian Gilissen; Sabine J. Gijsen; Christopher T. Sullivan; Susan L. Christian; Omar A. Abdul-Rahman; Joan F. Atkin; Nicolas Chassaing; Valérie Drouin-Garraud; Andrew E. Fry; Jean-Pierre Fryns; Karen W. Gripp; Marlies Kempers; Tjitske Kleefstra; Grazia M.S. Mancini; Małgorzata J.M. Nowaczyk; Conny M. A. van Ravenswaaij-Arts; Tony Roscioli; Michael Marble; Jill A. Rosenfeld; Victoria M. Siu; Bert B.A. de Vries; Jay Shendure; Alain Verloes; Joris A. Veltman; Han G. Brunner

Brain malformations are individually rare but collectively common causes of developmental disabilities. Many forms of malformation occur sporadically and are associated with reduced reproductive fitness, pointing to a causative role for de novo mutations. Here, we report a study of Baraitser-Winter syndrome, a well-defined disorder characterized by distinct craniofacial features, ocular colobomata and neuronal migration defect. Using whole-exome sequencing of three proband-parent trios, we identified de novo missense changes in the cytoplasmic actin–encoding genes ACTB and ACTG1 in one and two probands, respectively. Sequencing of both genes in 15 additional affected individuals identified disease-causing mutations in all probands, including two recurrent de novo alterations (ACTB, encoding p.Arg196His, and ACTG1, encoding p.Ser155Phe). Our results confirm that trio-based exome sequencing is a powerful approach to discover genes causing sporadic developmental disorders, emphasize the overlapping roles of cytoplasmic actin proteins in development and suggest that Baraitser-Winter syndrome is the predominant phenotype associated with mutation of these two genes.


Nature Genetics | 2015

A germline homozygous mutation in the base-excision repair gene NTHL1 causes adenomatous polyposis and colorectal cancer

Robbert D.A. Weren; Marjolijn J. L. Ligtenberg; C. Marleen Kets; Richarda M. de Voer; Eugène T P Verwiel; Liesbeth Spruijt; Wendy A. G. van Zelst-Stams; Marjolijn C.J. Jongmans; Christian Gilissen; Jayne Y. Hehir-Kwa; Alexander Hoischen; Jay Shendure; Evan A. Boyle; Eveline J. Kamping; Iris D. Nagtegaal; Bastiaan Tops; Fokko M. Nagengast; Ad Geurts van Kessel; J. Han van Krieken; Roland P. Kuiper; Nicoline Hoogerbrugge

The genetic cause underlying the development of multiple colonic adenomas, the premalignant precursors of colorectal cancer (CRC), frequently remains unresolved in patients with adenomatous polyposis. Here we applied whole-exome sequencing to 51 individuals with multiple colonic adenomas from 48 families. In seven affected individuals from three unrelated families, we identified a homozygous germline nonsense mutation in the base-excision repair (BER) gene NTHL1. This mutation was exclusively found in a heterozygous state in controls (minor allele frequency of 0.0036; n = 2,329). All three families showed recessive inheritance of the adenomatous polyposis phenotype and progression to CRC in at least one member. All three affected women developed an endometrial malignancy or premalignancy. Genetic analysis of three carcinomas and five adenomas from different affected individuals showed a non-hypermutated profile enriched for cytosine-to-thymine transitions. We conclude that a homozygous loss-of-function germline mutation in the NTHL1 gene predisposes to a new subtype of BER-associated adenomatous polyposis and CRC.


Nature Genetics | 2012

Mutations in the chromatin modifier gene KANSL1 cause the 17q21.31 microdeletion syndrome

David A. Koolen; Jamie M. Kramer; Kornelia Neveling; Willy M. Nillesen; Heather L. Moore-Barton; Frances Elmslie; Annick Toutain; Jeanne Amiel; Valérie Malan; Anne Chun Hui Tsai; Sau Wai Cheung; Christian Gilissen; Eugène T P Verwiel; Sarah Martens; Ton Feuth; Ernie M.H.F. Bongers; Petra de Vries; H. Scheffer; Lisenka E.L.M. Vissers; Arjan P.M. de Brouwer; Han G. Brunner; Joris A. Veltman; Annette Schenck; Helger G. Yntema; Bert B.A. de Vries

We show that haploinsufficiency of KANSL1 is sufficient to cause the 17q21.31 microdeletion syndrome, a multisystem disorder characterized by intellectual disability, hypotonia and distinctive facial features. The KANSL1 protein is an evolutionarily conserved regulator of the chromatin modifier KAT8, which influences gene expression through histone H4 lysine 16 (H4K16) acetylation. RNA sequencing studies in cell lines derived from affected individuals and the presence of learning deficits in Drosophila melanogaster mutants suggest a role for KANSL1 in neuronal processes.


Genome Research | 2015

A recent bottleneck of Y chromosome diversity coincides with a global change in culture

Monika Karmin; Lauri Saag; Mário Vicente; Melissa A. Wilson Sayres; Mari Järve; Ulvi Gerst Talas; Siiri Rootsi; Anne-Mai Ilumäe; Reedik Mägi; Mario Mitt; Luca Pagani; Tarmo Puurand; Zuzana Faltyskova; Florian Clemente; Alexia Cardona; Ene Metspalu; Hovhannes Sahakyan; Bayazit Yunusbayev; Georgi Hudjashov; Michael DeGiorgio; Eva-Liis Loogväli; Christina A. Eichstaedt; Mikk Eelmets; Gyaneshwer Chaubey; Kristiina Tambets; S. S. Litvinov; Maru Mormina; Yali Xue; Qasim Ayub; Grigor Zoraqi

It is commonly thought that human genetic diversity in non-African populations was shaped primarily by an out-of-Africa dispersal 50-100 thousand yr ago (kya). Here, we present a study of 456 geographically diverse high-coverage Y chromosome sequences, including 299 newly reported samples. Applying ancient DNA calibration, we date the Y-chromosomal most recent common ancestor (MRCA) in Africa at 254 (95% CI 192-307) kya and detect a cluster of major non-African founder haplogroups in a narrow time interval at 47-52 kya, consistent with a rapid initial colonization model of Eurasia and Oceania after the out-of-Africa bottleneck. In contrast to demographic reconstructions based on mtDNA, we infer a second strong bottleneck in Y-chromosome lineages dating to the last 10 ky. We hypothesize that this bottleneck is caused by cultural changes affecting variance of reproductive success among males.


Nature Neuroscience | 2016

Meta-analysis of 2,104 trios provides support for 10 new genes for intellectual disability

Stefan H. Lelieveld; Margot R.F. Reijnders; Rolph Pfundt; Helger G. Yntema; Erik-Jan Kamsteeg; Petra de Vries; Bert B.A. de Vries; Marjolein H. Willemsen; Tjitske Kleefstra; Katharina Löhner; Maaike Vreeburg; Servi J.C. Stevens; Ineke van der Burgt; Ernie M.H.F. Bongers; Alexander P.A. Stegmann; Patrick Rump; Tuula Rinne; Marcel R. Nelen; Joris A. Veltman; Lisenka E.L.M. Vissers; Han G. Brunner; Christian Gilissen

To identify candidate genes for intellectual disability, we performed a meta-analysis on 2,637 de novo mutations, identified from the exomes of 2,104 patient–parent trios. Statistical analyses identified 10 new candidate ID genes: DLG4, PPM1D, RAC1, SMAD6, SON, SOX5, SYNCRIP, TCF20, TLK2 and TRIP12. In addition, we show that these genes are intolerant to nonsynonymous variation and that mutations in these genes are associated with specific clinical ID phenotypes.


Journal of Medical Genetics | 2013

Exome sequencing identifies DYNC2H1 mutations as a common cause of asphyxiating thoracic dystrophy (Jeune syndrome) without major polydactyly, renal or retinal involvement

Miriam Schmidts; Heleen H. Arts; Ernie M.H.F. Bongers; Zhimin Yap; Machteld M. Oud; Dinu Antony; Lonneke Duijkers; Richard D. Emes; Jim Stalker; Jan-Bart L Yntema; Vincent Plagnol; Alexander Hoischen; Christian Gilissen; Elisabeth Forsythe; Ekkehart Lausch; Joris A. Veltman; Nel Roeleveld; Andrea Superti-Furga; Anna Kutkowska-Kazmierczak; Erik-Jan Kamsteeg; Nursel Elcioglu; Merel C van Maarle; Luitgard Graul-Neumann; Koenraad Devriendt; Sarah F. Smithson; Diana Wellesley; Nienke E. Verbeek; Raoul C. M. Hennekam; Hülya Kayserili; Peter J. Scambler

Background Jeune asphyxiating thoracic dystrophy (JATD) is a rare, often lethal, recessively inherited chondrodysplasia characterised by shortened ribs and long bones, sometimes accompanied by polydactyly, and renal, liver and retinal disease. Mutations in intraflagellar transport (IFT) genes cause JATD, including the IFT dynein-2 motor subunit gene DYNC2H1. Genetic heterogeneity and the large DYNC2H1 gene size have hindered JATD genetic diagnosis. Aims and methods To determine the contribution to JATD we screened DYNC2H1 in 71 JATD patients JATD patients combining SNP mapping, Sanger sequencing and exome sequencing. Results and conclusions We detected 34 DYNC2H1 mutations in 29/71 (41%) patients from 19/57 families (33%), showing it as a major cause of JATD especially in Northern European patients. This included 13 early protein termination mutations (nonsense/frameshift, deletion, splice site) but no patients carried these in combination, suggesting the human phenotype is at least partly hypomorphic. In addition, 21 missense mutations were distributed across DYNC2H1 and these showed some clustering to functional domains, especially the ATP motor domain. DYNC2H1 patients largely lacked significant extra-skeletal involvement, demonstrating an important genotype–phenotype correlation in JATD. Significant variability exists in the course and severity of the thoracic phenotype, both between affected siblings with identical DYNC2H1 alleles and among individuals with different alleles, which suggests the DYNC2H1 phenotype might be subject to modifier alleles, non-genetic or epigenetic factors. Assessment of fibroblasts from patients showed accumulation of anterograde IFT proteins in the ciliary tips, confirming defects similar to patients with other retrograde IFT machinery mutations, which may be of undervalued potential for diagnostic purposes.


Human Mutation | 2015

Comparison of Exome and Genome Sequencing Technologies for the Complete Capture of Protein-Coding Regions

Stefan H. Lelieveld; Malte Spielmann; Stefan Mundlos; Joris A. Veltman; Christian Gilissen

For next‐generation sequencing technologies, sufficient base‐pair coverage is the foremost requirement for the reliable detection of genomic variants. We investigated whether whole‐genome sequencing (WGS) platforms offer improved coverage of coding regions compared with whole‐exome sequencing (WES) platforms, and compared single‐base coverage for a large set of exome and genome samples. We find that WES platforms have improved considerably in the last years, but at comparable sequencing depth, WGS outperforms WES in terms of covered coding regions. At higher sequencing depth (95x–160x), WES successfully captures 95% of the coding regions with a minimal coverage of 20x, compared with 98% for WGS at 87‐fold coverage. Three different assessments of sequence coverage bias showed consistent biases for WES but not for WGS. We found no clear differences for the technologies concerning their ability to achieve complete coverage of 2,759 clinically relevant genes. We show that WES performs comparable to WGS in terms of covered bases if sequenced at two to three times higher coverage. This does, however, go at the cost of substantially more sequencing biases in WES approaches. Our findings will guide laboratories to make an informed decision on which sequencing platform and coverage to choose.


American Journal of Human Genetics | 2015

Mutations in DDX3X Are a Common Cause of Unexplained Intellectual Disability with Gender-Specific Effects on Wnt Signaling

Lot Snijders Blok; Erik Madsen; Jane Juusola; Christian Gilissen; Diana Baralle; Margot R.F. Reijnders; Hanka Venselaar; Céline Helsmoortel; Megan T. Cho; Alexander Hoischen; Lisenka E.L.M. Vissers; Tom S. Koemans; Willemijn Wissink-Lindhout; Evan E. Eichler; Corrado Romano; Hilde Van Esch; Connie Stumpel; Maaike Vreeburg; Eric Smeets; Karin Oberndorff; Bregje W.M. van Bon; Marie Shaw; Jozef Gecz; Eric Haan; Melanie Bienek; Corinna Jensen; Bart Loeys; Anke Van Dijck; A. Micheil Innes; Hilary Racher

Intellectual disability (ID) affects approximately 1%-3% of humans with a gender bias toward males. Previous studies have identified mutations in more than 100 genes on the X chromosome in males with ID, but there is less evidence for de novo mutations on the X chromosome causing ID in females. In this study we present 35 unique deleterious de novo mutations in DDX3X identified by whole exome sequencing in 38 females with ID and various other features including hypotonia, movement disorders, behavior problems, corpus callosum hypoplasia, and epilepsy. Based on our findings, mutations in DDX3X are one of the more common causes of ID, accounting for 1%-3% of unexplained ID in females. Although no de novo DDX3X mutations were identified in males, we present three families with segregating missense mutations in DDX3X, suggestive of an X-linked recessive inheritance pattern. In these families, all males with the DDX3X variant had ID, whereas carrier females were unaffected. To explore the pathogenic mechanisms accounting for the differences in disease transmission and phenotype between affected females and affected males with DDX3X missense variants, we used canonical Wnt defects in zebrafish as a surrogate measure of DDX3X function in vivo. We demonstrate a consistent loss-of-function effect of all tested de novo mutations on the Wnt pathway, and we further show a differential effect by gender. The differential activity possibly reflects a dose-dependent effect of DDX3X expression in the context of functional mosaic females versus one-copy males, which reflects the complex biological nature of DDX3X mutations.


Proceedings of the National Academy of Sciences of the United States of America | 2013

ZNF408 is mutated in familial exudative vitreoretinopathy and is crucial for the development of zebrafish retinal vasculature

Rob W.J. Collin; Konstantinos Nikopoulos; Margo Dona; Christian Gilissen; Alexander Hoischen; F. Nienke Boonstra; James A. Poulter; Hiroyuki Kondo; Wolfgang Berger; Carmel Toomes; Tomoko Tahira; Lucas R. Mohn; Ellen A.W. Blokland; Lisette Hetterschijt; Manir Ali; Johanne M. Groothuismink; Lonneke Duijkers; Chris F. Inglehearn; Lea Sollfrank; Tim M. Strom; Eiichi Uchio; C. Erik van Nouhuys; Hannie Kremer; Joris A. Veltman; Erwin van Wijk; Frans P.M. Cremers

Familial exudative vitreoretinopathy (FEVR) is a genetically heterogeneous disorder characterized by abnormal vascularization of the peripheral retina, which can result in retinal detachment and severe visual impairment. In a large Dutch FEVR family, we performed linkage analysis, exome sequencing, and segregation analysis of DNA variants. We identified putative disease-causing DNA variants in proline-alanine-rich ste20-related kinase (c.791dup; p.Ser265ValfsX64) and zinc finger protein 408 (ZNF408) (c.1363C>T; p.His455Tyr), the latter of which was also present in an additional Dutch FEVR family that subsequently appeared to share a common ancestor with the original family. Sequence analysis of ZNF408 in 132 additional individuals with FEVR revealed another potentially pathogenic missense variant, p.Ser126Asn, in a Japanese family. Immunolocalization studies in COS-1 cells transfected with constructs encoding the WT and mutant ZNF408 proteins, revealed that the WT and the p.Ser126Asn mutant protein show complete nuclear localization, whereas the p.His455Tyr mutant protein was localized almost exclusively in the cytoplasm. Moreover, in a cotransfection assay, the p.His455Tyr mutant protein retains the WT ZNF408 protein in the cytoplasm, suggesting that this mutation acts in a dominant-negative fashion. Finally, morpholino-induced knockdown of znf408 in zebrafish revealed defects in developing retinal and trunk vasculature, that could be rescued by coinjection of RNA encoding human WT ZNF408 but not p.His455Tyr mutant ZNF408. Together, our data strongly suggest that mutant ZNF408 results in abnormal retinal vasculogenesis in humans and is associated with FEVR.


Nature Genetics | 2016

Parent-of-origin-specific signatures of de novo mutations

Jakob M. Goldmann; Wendy S.W. Wong; Michele Pinelli; Terry Farrah; Dale L. Bodian; Anna Barbara Stittrich; Gustavo Glusman; Lisenka E.L.M. Vissers; Alexander Hoischen; Jared C. Roach; Joseph Vockley; Joris A. Veltman; Benjamin D. Solomon; Christian Gilissen; John E. Niederhuber

De novo mutations (DNMs) originating in gametogenesis are an important source of genetic variation. We use a data set of 7,216 autosomal DNMs with resolved parent of origin from whole-genome sequencing of 816 parent–offspring trios to investigate differences between maternally and paternally derived DNMs and study the underlying mutational mechanisms. Our results show that the number of DNMs in offspring increases not only with paternal age, but also with maternal age, and that some genome regions show enrichment for maternally derived DNMs. We identify parent-of-origin-specific mutation signatures that become more pronounced with increased parental age, pointing to different mutational mechanisms in spermatogenesis and oogenesis. Moreover, we find DNMs that are spatially clustered to have a unique mutational signature with no significant differences between parental alleles, suggesting a different mutational mechanism. Our findings provide insights into the molecular mechanisms that underlie mutagenesis and are relevant to disease and evolution in humans.

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Joris A. Veltman

Radboud University Nijmegen

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Alexander Hoischen

Radboud University Nijmegen

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Rolph Pfundt

Maastricht University Medical Centre

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Han G. Brunner

Radboud University Nijmegen

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Marloes Steehouwer

Radboud University Nijmegen

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Tjitske Kleefstra

Radboud University Nijmegen

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Helger G. Yntema

Radboud University Nijmegen

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