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Dive into the research topics where Amélie Piton is active.

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Featured researches published by Amélie Piton.


American Journal of Human Genetics | 2013

XLID-Causing Mutations and Associated Genes Challenged in Light of Data From Large-Scale Human Exome Sequencing

Amélie Piton; Claire Redin; Jean-Louis Mandel

Because of the unbalanced sex ratio (1.3-1.4 to 1) observed in intellectual disability (ID) and the identification of large ID-affected families showing X-linked segregation, much attention has been focused on the genetics of X-linked ID (XLID). Mutations causing monogenic XLID have now been reported in over 100 genes, most of which are commonly included in XLID diagnostic gene panels. Nonetheless, the boundary between true mutations and rare non-disease-causing variants often remains elusive. The sequencing of a large number of control X chromosomes, required for avoiding false-positive results, was not systematically possible in the past. Such information is now available thanks to large-scale sequencing projects such as the National Heart, Lung, and Blood (NHLBI) Exome Sequencing Project, which provides variation information on 10,563 X chromosomes from the general population. We used this NHLBI cohort to systematically reassess the implication of 106 genes proposed to be involved in monogenic forms of XLID. We particularly question the implication in XLID of ten of them (AGTR2, MAGT1, ZNF674, SRPX2, ATP6AP2, ARHGEF6, NXF5, ZCCHC12, ZNF41, and ZNF81), in which truncating variants or previously published mutations are observed at a relatively high frequency within this cohort. We also highlight 15 other genes (CCDC22, CLIC2, CNKSR2, FRMPD4, HCFC1, IGBP1, KIAA2022, KLF8, MAOA, NAA10, NLGN3, RPL10, SHROOM4, ZDHHC15, and ZNF261) for which replication studies are warranted. We propose that similar reassessment of reported mutations (and genes) with the use of data from large-scale human exome sequencing would be relevant for a wide range of other genetic diseases.


Journal of Medical Genetics | 2014

Efficient strategy for the molecular diagnosis of intellectual disability using targeted high-throughput sequencing

Claire Redin; Bénédicte Gérard; Julia Lauer; Yvan Herenger; Jean Muller; Angélique Quartier; Alice Masurel-Paulet; Marjolaine Willems; Gaetan Lesca; Salima El-Chehadeh; Stéphanie Le Gras; Serge Vicaire; Muriel Philipps; Michael Dumas; Véronique Geoffroy; Claire Feger; Nicolas Haumesser; Yves Alembik; Magalie Barth; Dominique Bonneau; Estelle Colin; Hélène Dollfus; Bérénice Doray; Marie-Ange Delrue; Valérie Drouin-Garraud; Elisabeth Flori; Mélanie Fradin; Christine Francannet; Alice Goldenberg; Serge Lumbroso

Background Intellectual disability (ID) is characterised by an extreme genetic heterogeneity. Several hundred genes have been associated to monogenic forms of ID, considerably complicating molecular diagnostics. Trio-exome sequencing was recently proposed as a diagnostic approach, yet remains costly for a general implementation. Methods We report the alternative strategy of targeted high-throughput sequencing of 217 genes in which mutations had been reported in patients with ID or autism as the major clinical concern. We analysed 106 patients with ID of unknown aetiology following array-CGH analysis and other genetic investigations. Ninety per cent of these patients were males, and 75% sporadic cases. Results We identified 26 causative mutations: 16 in X-linked genes (ATRX, CUL4B, DMD, FMR1, HCFC1, IL1RAPL1, IQSEC2, KDM5C, MAOA, MECP2, SLC9A6, SLC16A2, PHF8) and 10 de novo in autosomal-dominant genes (DYRK1A, GRIN1, MED13L, TCF4, RAI1, SHANK3, SLC2A1, SYNGAP1). We also detected four possibly causative mutations (eg, in NLGN3) requiring further investigations. We present detailed reasoning for assigning causality for each mutation, and associated patients’ clinical information. Some genes were hit more than once in our cohort, suggesting they correspond to more frequent ID-associated conditions (KDM5C, MECP2, DYRK1A, TCF4). We highlight some unexpected genotype to phenotype correlations, with causative mutations being identified in genes associated to defined syndromes in patients deviating from the classic phenotype (DMD, TCF4, MECP2). We also bring additional supportive (HCFC1, MED13L) or unsupportive (SHROOM4, SRPX2) evidences for the implication of previous candidate genes or mutations in cognitive disorders. Conclusions With a diagnostic yield of 25% targeted sequencing appears relevant as a first intention test for the diagnosis of ID, but importantly will also contribute to a better understanding regarding the specific contribution of the many genes implicated in ID and autism.


Neurology | 2016

Delineating the GRIN1 phenotypic spectrum A distinct genetic NMDA receptor encephalopathy

Johannes R. Lemke; Kirsten Geider; Katherine L. Helbig; Henrike O. Heyne; Hannah Schütz; Julia Hentschel; Carolina Courage; Christel Depienne; Caroline Nava; Delphine Héron; Rikke S. Møller; Helle Hjalgrim; Dennis Lal; Bernd A. Neubauer; Peter Nürnberg; Holger Thiele; G. Kurlemann; Georgianne L. Arnold; Vikas Bhambhani; Deborah Bartholdi; Christeen Ramane J. Pedurupillay; Doriana Misceo; Eirik Frengen; Petter Strømme; Dennis J. Dlugos; Emily S. Doherty; Emilia K. Bijlsma; Claudia Ruivenkamp; Mariette J.V. Hoffer; Amy Goldstein

Objective: To determine the phenotypic spectrum caused by mutations in GRIN1 encoding the NMDA receptor subunit GluN1 and to investigate their underlying functional pathophysiology. Methods: We collected molecular and clinical data from several diagnostic and research cohorts. Functional consequences of GRIN1 mutations were investigated in Xenopus laevis oocytes. Results: We identified heterozygous de novo GRIN1 mutations in 14 individuals and reviewed the phenotypes of all 9 previously reported patients. These 23 individuals presented with a distinct phenotype of profound developmental delay, severe intellectual disability with absent speech, muscular hypotonia, hyperkinetic movement disorder, oculogyric crises, cortical blindness, generalized cerebral atrophy, and epilepsy. Mutations cluster within transmembrane segments and result in loss of channel function of varying severity with a dominant-negative effect. In addition, we describe 2 homozygous GRIN1 mutations (1 missense, 1 truncation), each segregating with severe neurodevelopmental phenotypes in consanguineous families. Conclusions: De novo GRIN1 mutations are associated with severe intellectual disability with cortical visual impairment as well as oculomotor and movement disorders being discriminating phenotypic features. Loss of NMDA receptor function appears to be the underlying disease mechanism. The identification of both heterozygous and homozygous mutations blurs the borders of dominant and recessive inheritance of GRIN1-associated disorders.


PeerJ | 2015

VaRank: a simple and powerful tool for ranking genetic variants.

Véronique Geoffroy; Cécile Pizot; Claire Redin; Amélie Piton; Nasim Vasli; Corinne Stoetzel; André Blavier; Jocelyn Laporte; Jean Muller

Background. Most genetic disorders are caused by single nucleotide variations (SNVs) or small insertion/deletions (indels). High throughput sequencing has broadened the catalogue of human variation, including common polymorphisms, rare variations or disease causing mutations. However, identifying one variation among hundreds or thousands of others is still a complex task for biologists, geneticists and clinicians. Results. We have developed VaRank, a command-line tool for the ranking of genetic variants detected by high-throughput sequencing. VaRank scores and prioritizes variants annotated either by Alamut Batch or SnpEff. A barcode allows users to quickly view the presence/absence of variants (with homozygote/heterozygote status) in analyzed samples. VaRank supports the commonly used VCF input format for variants analysis thus allowing it to be easily integrated into NGS bioinformatics analysis pipelines. VaRank has been successfully applied to disease-gene identification as well as to molecular diagnostics setup for several hundred patients. Conclusions. VaRank is implemented in Tcl/Tk, a scripting language which is platform-independent but has been tested only on Unix environment. The source code is available under the GNU GPL, and together with sample data and detailed documentation can be downloaded from http://www.lbgi.fr/VaRank/.


Human Molecular Genetics | 2015

Exome sequencing reveals a nonsense mutation in TEX15 causing spermatogenic failure in a Turkish family

Ozlem Okutman; Jean Muller; Yoni Baert; Munevver Serdarogullari; Meral Gultomruk; Amélie Piton; Charlotte Rombaut; Moncef Benkhalifa; Marius Teletin; Valerie Skory; Emre Bakircioglu; Ellen Goossens; Mustafa Bahceci; Stéphane Viville

Infertility is a global healthcare problem, and despite long years of assisted reproductive activities, a significant number of cases remain idiopathic. Our currently restricted understanding of basic mechanisms driving human gametogenesis severely limits the improvement of clinical care for infertile patients. Using exome sequencing, we identified a nonsense mutation leading to a premature stop in the TEX15 locus (c.2130T>G, p.Y710*) in a consanguineous Turkish family comprising eight siblings in which three brothers were identified as infertile. TEX15 displays testis-specific expression, maps to chromosome 8, contains four exons and encodes a 2789-amino acid protein with uncertain function. The mutation, which should lead to early translational termination at the first exon of TEX15, co-segregated with the infertility phenotype, and our data strongly suggest that it is the cause of spermatogenic defects in the family. All three affected brothers presented a phenotype reminiscent of the one observed in KO mice. Indeed, previously reported results demonstrated that disruption of the orthologous gene in mice caused a drastic reduction in testis size and meiotic arrest in the first wave of spermatogenesis in males while female KO mice were fertile. The data from our study of one Turkish family suggested that the identified mutation correlates with a decrease in sperm count over time. A diagnostic test identifying the mutation in man could provide an indication of spermatogenic failure and prompt patients to undertake sperm cryopreservation at an early age.


Human Mutation | 2016

Expanding the Phenotype Associated with NAA10-Related N-Terminal Acetylation Deficiency

Chloé Saunier; Svein Isungset Støve; Bernt Popp; Bénédicte Gérard; Marina Blenski; Nicholas AhMew; Charlotte de Bie; Paula Goldenberg; Bertrand Isidor; Boris Keren; Bruno Leheup; Laetitia Lampert; Cyril Mignot; Kamer Tezcan; Grazia M.S. Mancini; Caroline Nava; Melissa P. Wasserstein; Ange Line Bruel; Julien Thevenon; Alice Masurel; Yannis Duffourd; Paul Kuentz; Frédéric Huet; Jean Baptiste Rivière; Marjon van Slegtenhorst; Laurence Faivre; Amélie Piton; André Reis; Thomas Arnesen; Christel Thauvin-Robinet

N‐terminal acetylation is a common protein modification in eukaryotes associated with numerous cellular processes. Inherited mutations in NAA10, encoding the catalytic subunit of the major N‐terminal acetylation complex NatA have been associated with diverse, syndromic X‐linked recessive disorders, whereas de novo missense mutations have been reported in one male and one female individual with severe intellectual disability but otherwise unspecific phenotypes. Thus, the full genetic and clinical spectrum of NAA10 deficiency is yet to be delineated. We identified three different novel and one known missense mutation in NAA10, de novo in 11 females, and due to maternal germ line mosaicism in another girl and her more severely affected and deceased brother. In vitro enzymatic assays for the novel, recurrent mutations p.(Arg83Cys) and p.(Phe128Leu) revealed reduced catalytic activity. X‐inactivation was random in five females. The core phenotype of X‐linked NAA10‐related N‐terminal‐acetyltransferase deficiency in both males and females includes developmental delay, severe intellectual disability, postnatal growth failure with severe microcephaly, and skeletal or cardiac anomalies. Genotype–phenotype correlations within and between both genders are complex and may include various factors such as location and nature of mutations, enzymatic stability and activity, and X‐inactivation in females.


European Journal of Human Genetics | 2015

Ten new cases further delineate the syndromic intellectual disability phenotype caused by mutations in DYRK1A.

Lucas Bronicki; Claire Redin; Séverine Drunat; Amélie Piton; Michael J. Lyons; Sandrine Passemard; Clarisse Baumann; Laurence Faivre; Julien Thevenon; Jean-Baptiste Rivière; Bertrand Isidor; Grace Gan; Christine Francannet; Marjolaine Willems; Murat Gunel; Julie R. Jones; Joseph G. Gleeson; Jean-Louis Mandel; Roger E. Stevenson; Michael J. Friez; Arthur S. Aylsworth

The dual-specificity tyrosine-phosphorylation-regulated kinase 1A (DYRK1A) gene, located on chromosome 21q22.13 within the Down syndrome critical region, has been implicated in syndromic intellectual disability associated with Down syndrome and autism. DYRK1A has a critical role in brain growth and development primarily by regulating cell proliferation, neurogenesis, neuronal plasticity and survival. Several patients have been reported with chromosome 21 aberrations such as partial monosomy, involving multiple genes including DYRK1A. In addition, seven other individuals have been described with chromosomal rearrangements, intragenic deletions or truncating mutations that disrupt specifically DYRK1A. Most of these patients have microcephaly and all have significant intellectual disability. In the present study, we report 10 unrelated individuals with DYRK1A-associated intellectual disability (ID) who display a recurrent pattern of clinical manifestations including primary or acquired microcephaly, ID ranging from mild to severe, speech delay or absence, seizures, autism, motor delay, deep-set eyes, poor feeding and poor weight gain. We identified unique truncating and non-synonymous mutations (three nonsense, four frameshift and two missense) in DYRK1A in nine patients and a large chromosomal deletion that encompassed DYRK1A in one patient. On the basis of increasing identification of mutations in DYRK1A, we suggest that this gene be considered potentially causative in patients presenting with ID, primary or acquired microcephaly, feeding problems and absent or delayed speech with or without seizures.


European Journal of Human Genetics | 2014

20 ans après : a second mutation in MAOA identified by targeted high-throughput sequencing in a family with altered behavior and cognition

Amélie Piton; Hélène Poquet; Claire Redin; Alice Masurel; Julia Lauer; Jean Muller; Julien Thevenon; Yvan Herenger; Sophie Chancenotte; Marlène Bonnet; Jean-Michel Pinoit; Frédéric Huet; Christel Thauvin-Robinet; Anne-Sophie Jaeger; Stephanie Gras; Bernard Jost; Bénédicte Gérard; Katell Peoc'h; Jean-Marie Launay; Laurence Faivre; Jean-Louis Mandel

Intellectual disability (ID) is characterized by an extraordinary genetic heterogeneity, with >250 genes that have been implicated in monogenic forms of ID. Because this complexity precluded systematic testing for mutations and because clinical features are often non-specific, for some of these genes only few cases or families have been unambiguously documented. It is the case of the X-linked gene encoding monoamine oxidase A (MAOA), for which only one nonsense mutation has been identified in Brunner syndrome, characterized in a single family by mild non-dysmorphic ID and impulsive, violent and aggressive behaviors. We have performed targeted high-throughput sequencing of 220 genes, including MAOA, in patients with undiagnosed ID. We identified a c.797_798delinsTT (p.C266F) missense mutation in MAOA in a boy with autism spectrum disorder, attention deficit and autoaggressive behavior. Two maternal uncles carry the mutation and have severe ID, with a history of maltreatment in early childhood. This novel missense mutation decreases MAOA enzymatic activity, leading to abnormal levels of urinary monoamines. The identification of this new point mutation confirms, for the first time since 1993, the monogenic implication of the MAOA gene in ID of various degrees, autism and behavioral disturbances. The variable expressivity of the mutation observed in male patients of this family may involve gene–environment interactions, and the identification of a perturbation in monoamine metabolism should be taken into account when prescribing psychoactive drugs in such patients.


Human Mutation | 2016

De Novo Truncating Mutations in the Kinetochore-Microtubules Attachment Gene CHAMP1 Cause Syndromic Intellectual Disability

Bertrand Isidor; Sébastien Küry; Jill A. Rosenfeld; Thomas Besnard; Sébastien Schmitt; Shelagh Joss; Sally Davies; Robert Roger Lebel; Alex Henderson; Christian P. Schaaf; Haley Streff; Yaping Yang; Vani Jain; Nodoka Chida; Xénia Latypova; Cédric Le Caignec; Benjamin Cogné; Sandra Mercier; Marie Vincent; Estelle Colin; Dominique Bonneau; Anne-Sophie Denommé; P. Parent; Brigitte Gilbert-Dussardier; Sylvie Odent; Annick Toutain; Amélie Piton; Christian Dina; Audrey Donnart; Pierre Lindenbaum

A rare syndromic form of intellectual disability with impaired speech was recently found associated with mutations in CHAMP1 (chromosome alignment‐maintaining phosphoprotein 1), the protein product of which is directly involved in microtubule‐kinetochore attachment. Through whole‐exome sequencing in six unrelated nonconsanguineous families having a sporadic case of intellectual disability, we identified six novel de novo truncating mutations in CHAMP1: c.1880C>G p.(Ser627*), c.1489C>T; p.(Arg497*), c.1876_1877delAG; p.(Ser626Leufs*4), c.1043G>A; p.(Trp348*), c.1002G>A; p.(Trp334*), and c.958_959delCC; p.(Pro320*). Our clinical observations confirm the phenotypic homogeneity of the syndrome, which represents therefore a distinct clinical entity. Besides, our functional studies show that CHAMP1 protein variants are delocalized from chromatin and are unable to bind to two of its direct partners, POGZ and HP1. These data suggest a pathogenic mechanism of the CHAMP1‐associated intellectual disability syndrome mediated by direct interacting partners of CHAMP1, several of which are involved in chromo/kinetochore‐related disorders.


Epilepsia | 2016

The molecular and phenotypic spectrum of IQSEC2-related epilepsy.

Ayelet Zerem; Kazuhiro Haginoya; Dorit Lev; Lubov Blumkin; Sara Kivity; Ilan Linder; Cheryl Shoubridge; Elizabeth E. Palmer; Michael Field; Jackie Boyle; David Chitayat; William D. Gaillard; Eric H. Kossoff; Marjolaine Willems; David Geneviève; Frederic Tran-Mau-Them; Orna Epstein; Eli Heyman; Sarah Dugan; Alice Masurel-Paulet; Amélie Piton; Tjitske Kleefstra; Rolph Pfundt; Ryo Sato; Andreas Tzschach; Naomichi Matsumoto; Hirotomo Saitsu; Esther Leshinsky-Silver; Tally Lerman-Sagie

IQSEC2 is an X‐linked gene associated with intellectual disability (ID) and epilepsy. Herein we characterize the epilepsy/epileptic encephalopathy of patients with IQSEC2 pathogenic variants.

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Claire Redin

University of Strasbourg

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Jean Muller

University of Strasbourg

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