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Dive into the research topics where Jeremy Schwartzentruber is active.

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Featured researches published by Jeremy Schwartzentruber.


Nature | 2012

Driver mutations in histone H3.3 and chromatin remodelling genes in paediatric glioblastoma

Jeremy Schwartzentruber; Andrey Korshunov; Xiao Yang Liu; David T. W. Jones; Elke Pfaff; Karine Jacob; Dominik Sturm; Adam M. Fontebasso; Dong Anh Khuong Quang; Martje Tönjes; Volker Hovestadt; Steffen Albrecht; Marcel Kool; André Nantel; Carolin Konermann; Anders M. Lindroth; Natalie Jäger; Tobias Rausch; Marina Ryzhova; Jan O. Korbel; Thomas Hielscher; Péter Hauser; Miklós Garami; Almos Klekner; László Bognár; Martin Ebinger; Martin U. Schuhmann; Wolfram Scheurlen; Arnulf Pekrun; Michael C. Frühwald

Glioblastoma multiforme (GBM) is a lethal brain tumour in adults and children. However, DNA copy number and gene expression signatures indicate differences between adult and paediatric cases. To explore the genetic events underlying this distinction, we sequenced the exomes of 48 paediatric GBM samples. Somatic mutations in the H3.3-ATRX-DAXX chromatin remodelling pathway were identified in 44% of tumours (21/48). Recurrent mutations in H3F3A, which encodes the replication-independent histone 3 variant H3.3, were observed in 31% of tumours, and led to amino acid substitutions at two critical positions within the histone tail (K27M, G34R/G34V) involved in key regulatory post-translational modifications. Mutations in ATRX (α-thalassaemia/mental retardation syndrome X-linked) and DAXX (death-domain associated protein), encoding two subunits of a chromatin remodelling complex required for H3.3 incorporation at pericentric heterochromatin and telomeres, were identified in 31% of samples overall, and in 100% of tumours harbouring a G34R or G34V H3.3 mutation. Somatic TP53 mutations were identified in 54% of all cases, and in 86% of samples with H3F3A and/or ATRX mutations. Screening of a large cohort of gliomas of various grades and histologies (n = 784) showed H3F3A mutations to be specific to GBM and highly prevalent in children and young adults. Furthermore, the presence of H3F3A/ATRX-DAXX/TP53 mutations was strongly associated with alternative lengthening of telomeres and specific gene expression profiles. This is, to our knowledge, the first report to highlight recurrent mutations in a regulatory histone in humans, and our data suggest that defects of the chromatin architecture underlie paediatric and young adult GBM pathogenesis.


Cancer Cell | 2012

Hotspot Mutations in H3F3A and IDH1 Define Distinct Epigenetic and Biological Subgroups of Glioblastoma

Dominik Sturm; Hendrik Witt; Volker Hovestadt; Dong Anh Khuong-Quang; David T. W. Jones; Carolin Konermann; Elke Pfaff; Martje Tönjes; Martin Sill; Sebastian Bender; Marcel Kool; Marc Zapatka; Natalia Becker; Manuela Zucknick; Thomas Hielscher; Xiao Yang Liu; Adam M. Fontebasso; Marina Ryzhova; Steffen Albrecht; Karine Jacob; Marietta Wolter; Martin Ebinger; Martin U. Schuhmann; Timothy Van Meter; Michael C. Frühwald; Holger Hauch; Arnulf Pekrun; Bernhard Radlwimmer; Tim Niehues; Gregor Von Komorowski

Glioblastoma (GBM) is a brain tumor that carries a dismal prognosis and displays considerable heterogeneity. We have recently identified recurrent H3F3A mutations affecting two critical amino acids (K27 and G34) of histone H3.3 in one-third of pediatric GBM. Here, we show that each H3F3A mutation defines an epigenetic subgroup of GBM with a distinct global methylation pattern, and that they are mutually exclusive with IDH1 mutations, which characterize a third mutation-defined subgroup. Three further epigenetic subgroups were enriched for hallmark genetic events of adult GBM and/or established transcriptomic signatures. We also demonstrate that the two H3F3A mutations give rise to GBMs in separate anatomic compartments, with differential regulation of transcription factors OLIG1, OLIG2, and FOXG1, possibly reflecting different cellular origins.


Nature Genetics | 2012

De novo germline and postzygotic mutations in AKT3, PIK3R2 and PIK3CA cause a spectrum of related megalencephaly syndromes

Jean-Baptiste Rivière; Ghayda M. Mirzaa; Brian J. O'Roak; Margaret Beddaoui; Diana Alcantara; Robert Conway; Judith St-Onge; Jeremy Schwartzentruber; Karen W. Gripp; Sarah M. Nikkel; Christopher T. Sullivan; Thomas R Ward; Hailly Butler; Nancy Kramer; Beate Albrecht; Christine M. Armour; Linlea Armstrong; Oana Caluseriu; Cheryl Cytrynbaum; Beth A. Drolet; A. Micheil Innes; Julie Lauzon; Angela E. Lin; Grazia M.S. Mancini; Wendy S. Meschino; James Reggin; Anand Saggar; Tally Lerman-Sagie; Gökhan Uyanik; Rosanna Weksberg

Megalencephaly-capillary malformation (MCAP) and megalencephaly-polymicrogyria-polydactyly-hydrocephalus (MPPH) syndromes are sporadic overgrowth disorders associated with markedly enlarged brain size and other recognizable features. We performed exome sequencing in 3 families with MCAP or MPPH, and our initial observations were confirmed in exomes from 7 individuals with MCAP and 174 control individuals, as well as in 40 additional subjects with megalencephaly, using a combination of Sanger sequencing, restriction enzyme assays and targeted deep sequencing. We identified de novo germline or postzygotic mutations in three core components of the phosphatidylinositol 3-kinase (PI3K)-AKT pathway. These include 2 mutations in AKT3, 1 recurrent mutation in PIK3R2 in 11 unrelated families with MPPH and 15 mostly postzygotic mutations in PIK3CA in 23 individuals with MCAP and 1 with MPPH. Our data highlight the central role of PI3K-AKT signaling in vascular, limb and brain development and emphasize the power of massively parallel sequencing in a challenging context of phenotypic and genetic heterogeneity combined with postzygotic mosaicism.


Nature Genetics | 2013

Recurrent somatic alterations of FGFR1 and NTRK2 in pilocytic astrocytoma

David T. W. Jones; Barbara Hutter; Natalie Jäger; Andrey Korshunov; Marcel Kool; Hans-Jörg Warnatz; Thomas Zichner; Sally R. Lambert; Marina Ryzhova; Dong Anh Khuong Quang; Adam M. Fontebasso; Adrian M. Stütz; Sonja Hutter; Marc Zuckermann; Dominik Sturm; Jan Gronych; Bärbel Lasitschka; Sabine Schmidt; Huriye Şeker-Cin; Hendrik Witt; Marc Sultan; Meryem Ralser; Paul A. Northcott; Volker Hovestadt; Sebastian Bender; Elke Pfaff; Sebastian Stark; Damien Faury; Jeremy Schwartzentruber; Jacek Majewski

Pilocytic astrocytoma, the most common childhood brain tumor, is typically associated with mitogen-activated protein kinase (MAPK) pathway alterations. Surgically inaccessible midline tumors are therapeutically challenging, showing sustained tendency for progression and often becoming a chronic disease with substantial morbidities. Here we describe whole-genome sequencing of 96 pilocytic astrocytomas, with matched RNA sequencing (n = 73), conducted by the International Cancer Genome Consortium (ICGC) PedBrain Tumor Project. We identified recurrent activating mutations in FGFR1 and PTPN11 and new NTRK2 fusion genes in non-cerebellar tumors. New BRAF-activating changes were also observed. MAPK pathway alterations affected all tumors analyzed, with no other significant mutations identified, indicating that pilocytic astrocytoma is predominantly a single-pathway disease. Notably, we identified the same FGFR1 mutations in a subset of H3F3A-mutated pediatric glioblastoma with additional alterations in the NF1 gene. Our findings thus identify new potential therapeutic targets in distinct subsets of pilocytic astrocytoma and childhood glioblastoma.


Nature | 2012

Clonal selection drives genetic divergence of metastatic medulloblastoma

Xiaochong Wu; Paul A. Northcott; Adrian Dubuc; Adam J. Dupuy; David Shih; Hendrik Witt; Sidney Croul; Eric Bouffet; Daniel W. Fults; Charles G. Eberhart; Livia Garzia; Timothy Van Meter; David Zagzag; Nada Jabado; Jeremy Schwartzentruber; Jacek Majewski; Todd E. Scheetz; Stefan M. Pfister; Andrey Korshunov; Xiao-Nan Li; Stephen W. Scherer; Yoon-Jae Cho; Keiko Akagi; Tobey J. MacDonald; Jan Koster; Martin McCabe; Aaron L. Sarver; V. Peter Collins; William A. Weiss; David A. Largaespada

Medulloblastoma, the most common malignant paediatric brain tumour, arises in the cerebellum and disseminates through the cerebrospinal fluid in the leptomeningeal space to coat the brain and spinal cord. Dissemination, a marker of poor prognosis, is found in up to 40% of children at diagnosis and in most children at the time of recurrence. Affected children therefore are treated with radiation to the entire developing brain and spinal cord, followed by high-dose chemotherapy, with the ensuing deleterious effects on the developing nervous system. The mechanisms of dissemination through the cerebrospinal fluid are poorly studied, and medulloblastoma metastases have been assumed to be biologically similar to the primary tumour. Here we show that in both mouse and human medulloblastoma, the metastases from an individual are extremely similar to each other but are divergent from the matched primary tumour. Clonal genetic events in the metastases can be demonstrated in a restricted subclone of the primary tumour, suggesting that only rare cells within the primary tumour have the ability to metastasize. Failure to account for the bicompartmental nature of metastatic medulloblastoma could be a major barrier to the development of effective targeted therapies.


Nature Genetics | 2014

Recurrent somatic mutations in ACVR1 in pediatric midline high-grade astrocytoma

Adam M. Fontebasso; Simon Papillon-Cavanagh; Jeremy Schwartzentruber; Hamid Nikbakht; Noha Gerges; Pierre‑Olivier Fiset; Denise Bechet; Damien Faury; Nicolas De Jay; Lori A. Ramkissoon; Aoife Corcoran; David T. W. Jones; Dominik Sturm; Pascal Johann; Tadanori Tomita; Stewart Goldman; Mahmoud Nagib; Liliana Goumnerova; Daniel C. Bowers; Jeffrey R. Leonard; Joshua B. Rubin; Tord D. Alden; Samuel R. Browd; J. Russell Geyer; Sarah Leary; George I. Jallo; Kenneth Cohen; Nalin Gupta; Michael D. Prados; Anne Sophie Carret

Pediatric midline high-grade astrocytomas (mHGAs) are incurable with few treatment targets identified. Most tumors harbor mutations encoding p.Lys27Met in histone H3 variants. In 40 treatment-naive mHGAs, 39 analyzed by whole-exome sequencing, we find additional somatic mutations specific to tumor location. Gain-of-function mutations in ACVR1 occur in tumors of the pons in conjunction with histone H3.1 p.Lys27Met substitution, whereas FGFR1 mutations or fusions occur in thalamic tumors associated with histone H3.3 p.Lys27Met substitution. Hyperactivation of the bone morphogenetic protein (BMP)-ACVR1 developmental pathway in mHGAs harboring ACVR1 mutations led to increased levels of phosphorylated SMAD1, SMAD5 and SMAD8 and upregulation of BMP downstream early-response genes in tumor cells. Global DNA methylation profiles were significantly associated with the p.Lys27Met alteration, regardless of the mutant histone H3 variant and irrespective of tumor location, supporting the role of this substitution in driving the epigenetic phenotype. This work considerably expands the number of potential treatment targets and further justifies pretreatment biopsy in pediatric mHGA as a means to orient therapeutic efforts in this disease.


Cancer Discovery | 2015

Biallelic Mutations in BRCA1 Cause a New Fanconi Anemia Subtype

Sarah L. Sawyer; Lei Tian; Kähkönen M; Jeremy Schwartzentruber; Martin Kircher; Jacek Majewski; Dyment Da; Innes Am; Kym M. Boycott; Lisa A. Moreau; Moilanen Js; Roger A. Greenberg

UNLABELLED Deficiency in BRCA-dependent DNA interstrand crosslink (ICL) repair is intimately connected to breast cancer susceptibility and to the rare developmental syndrome Fanconi anemia. Bona fide Fanconi anemia proteins, BRCA2 (FANCD1), PALB2 (FANCN), and BRIP1 (FANCJ), interact with BRCA1 during ICL repair. However, the lack of detailed phenotypic and cellular characterization of a patient with biallelic BRCA1 mutations has precluded assignment of BRCA1 as a definitive Fanconi anemia susceptibility gene. Here, we report the presence of biallelic BRCA1 mutations in a woman with multiple congenital anomalies consistent with a Fanconi anemia-like disorder and breast cancer at age 23. Patient cells exhibited deficiency in BRCA1 and RAD51 localization to DNA-damage sites, combined with radial chromosome formation and hypersensitivity to ICL-inducing agents. Restoration of these functions was achieved by ectopic introduction of a BRCA1 transgene. These observations provide evidence in support of BRCA1 as a new Fanconi anemia gene (FANCS). SIGNIFICANCE We establish that biallelic BRCA1 mutations cause a distinct FA-S, which has implications for risk counselling in families where both parents harbor BRCA1 mutations. The genetic basis of hereditary cancer susceptibility syndromes provides diagnostic information, insights into treatment strategies, and more accurate recurrence risk counseling to families.


American Journal of Human Genetics | 2014

FORGE Canada Consortium: Outcomes of a 2-Year National Rare-Disease Gene-Discovery Project

Chandree L. Beaulieu; Jacek Majewski; Jeremy Schwartzentruber; Mark Samuels; Bridget A. Fernandez; Francois P. Bernier; Michael Brudno; Bartha Maria Knoppers; Janet Marcadier; David A. Dyment; Shelin Adam; Dennis E. Bulman; Steve J.M. Jones; Denise Avard; Minh Thu Nguyen; François Rousseau; Christian R. Marshall; Richard F. Wintle; Yaoqing Shen; Stephen W. Scherer; Jan M. Friedman; Jacques L. Michaud; Kym M. Boycott

Inherited monogenic disease has an enormous impact on the well-being of children and their families. Over half of the children living with one of these conditions are without a molecular diagnosis because of the rarity of the disease, the marked clinical heterogeneity, and the reality that there are thousands of rare diseases for which causative mutations have yet to be identified. It is in this context that in 2010 a Canadian consortium was formed to rapidly identify mutations causing a wide spectrum of pediatric-onset rare diseases by using whole-exome sequencing. The FORGE (Finding of Rare Disease Genes) Canada Consortium brought together clinicians and scientists from 21 genetics centers and three science and technology innovation centers from across Canada. From nation-wide requests for proposals, 264 disorders were selected for study from the 371 submitted; disease-causing variants (including in 67 genes not previously associated with human disease; 41 of these have been genetically or functionally validated, and 26 are currently under study) were identified for 146 disorders over a 2-year period. Here, we present our experience with four strategies employed for gene discovery and discuss FORGEs impact in a number of realms, from clinical diagnostics to the broadening of the phenotypic spectrum of many diseases to the biological insight gained into both disease states and normal human development. Lastly, on the basis of this experience, we discuss the way forward for rare-disease genetic discovery both in Canada and internationally.


Clinical Genetics | 2016

Utility of whole‐exome sequencing for those near the end of the diagnostic odyssey: time to address gaps in care

Sarah L. Sawyer; Taila Hartley; David A. Dyment; Chandree L. Beaulieu; Jeremy Schwartzentruber; Amanda Smith; H.M. Bedford; G. Bernard; Francois P. Bernier; Bernard Brais; Dennis E. Bulman; J. Warman Chardon; David Chitayat; Johnny Deladoëy; Bridget A. Fernandez; P. Frosk; Michael T. Geraghty; B. Gerull; William T. Gibson; R.M. Gow; G.E. Graham; Jane Green; Elise Héon; Gabriella A. Horvath; A.M. Innes; N. Jabado; R.H. Kim; R.K. Koenekoop; A. Khan; O.J. Lehmann

An accurate diagnosis is an integral component of patient care for children with rare genetic disease. Recent advances in sequencing, in particular whole‐exome sequencing (WES), are identifying the genetic basis of disease for 25–40% of patients. The diagnostic rate is probably influenced by when in the diagnostic process WES is used. The Finding Of Rare Disease GEnes (FORGE) Canada project was a nation‐wide effort to identify mutations for childhood‐onset disorders using WES. Most children enrolled in the FORGE project were toward the end of the diagnostic odyssey. The two primary outcomes of FORGE were novel gene discovery and the identification of mutations in genes known to cause disease. In the latter instance, WES identified mutations in known disease genes for 105 of 362 families studied (29%), thereby informing the impact of WES in the setting of the diagnostic odyssey. Our analysis of this dataset showed that these known disease genes were not identified prior to WES enrollment for two key reasons: genetic heterogeneity associated with a clinical diagnosis and atypical presentation of known, clinically recognized diseases. What is becoming increasingly clear is that WES will be paradigm altering for patients and families with rare genetic diseases.


Nature Genetics | 2012

Mutations in NMNAT1 cause Leber congenital amaurosis and identify a new disease pathway for retinal degeneration

Robert K. Koenekoop; Hui Wang; Jacek Majewski; Xia Wang; Irma Lopez; Huanan Ren; Yiyun Chen; Yumei Li; Gerald A. Fishman; Mohammed Genead; Jeremy Schwartzentruber; Naimesh Solanki; Elias I. Traboulsi; Jingliang Cheng; Clare V. Logan; Martin McKibbin; Bruce E. Hayward; David A. Parry; Colin A. Johnson; Mohammed Nageeb; James A. Poulter; Moin D. Mohamed; Hussain Jafri; Yasmin Rashid; Graham R. Taylor; Vafa Keser; Graeme Mardon; Huidan Xu; Chris F. Inglehearn; Qing Fu

Leber congenital amaurosis (LCA) is a blinding retinal disease that presents within the first year after birth. Using exome sequencing, we identified mutations in the nicotinamide adenine dinucleotide (NAD) synthase gene NMNAT1 encoding nicotinamide mononucleotide adenylyltransferase 1 in eight families with LCA, including the family in which LCA was originally linked to the LCA9 locus. Notably, all individuals with NMNAT1 mutations also have macular colobomas, which are severe degenerative entities of the central retina (fovea) devoid of tissue and photoreceptors. Functional assays of the proteins encoded by the mutant alleles identified in our study showed that the mutations reduce the enzymatic activity of NMNAT1 in NAD biosynthesis and affect protein folding. Of note, recent characterization of the slow Wallerian degeneration (Wlds) mouse model, in which prolonged axonal survival after injury is observed, identified NMNAT1 as a neuroprotective protein when ectopically expressed. Our findings identify a new disease mechanism underlying LCA and provide the first link between endogenous NMNAT1 dysfunction and a human nervous system disorder.

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Kym M. Boycott

Children's Hospital of Eastern Ontario

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Dennis E. Bulman

Children's Hospital of Eastern Ontario

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Chandree L. Beaulieu

Children's Hospital of Eastern Ontario

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David A. Dyment

Children's Hospital of Eastern Ontario

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A. Micheil Innes

Alberta Children's Hospital

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Lysanne Patry

Université de Montréal

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