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Dive into the research topics where Yvonne G. Weber is active.

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Featured researches published by Yvonne G. Weber.


Nature Genetics | 2009

15q13.3 microdeletions increase risk of idiopathic generalized epilepsy

Ingo Helbig; Mefford Hc; Andrew J. Sharp; Michel Guipponi; Marco Fichera; Andre Franke; Hiltrud Muhle; Carolien G.F. de Kovel; Carl Baker; Sarah von Spiczak; Katherine L. Kron; Ines Steinich; Ailing A. Kleefuß-Lie; Costin Leu; Verena Gaus; Bettina Schmitz; Karl Martin Klein; Philipp S. Reif; Felix Rosenow; Yvonne G. Weber; Holger Lerche; Fritz Zimprich; Lydia Urak; Karoline Fuchs; Martha Feucht; Pierre Genton; Pierre Thomas; Frank Visscher; Gerrit Jan De Haan; Rikke S. Møller

We identified 15q13.3 microdeletions encompassing the CHRNA7 gene in 12 of 1,223 individuals with idiopathic generalized epilepsy (IGE), which were not detected in 3,699 controls (joint P = 5.32 × 10−8). Most deletion carriers showed common IGE syndromes without other features previously associated with 15q13.3 microdeletions, such as intellectual disability, autism or schizophrenia. Our results indicate that 15q13.3 microdeletions constitute the most prevalent risk factor for common epilepsies identified to date.


Brain | 2010

Recurrent microdeletions at 15q11.2 and 16p13.11 predispose to idiopathic generalized epilepsies

Carolien G.F. de Kovel; Holger Trucks; Ingo Helbig; Mefford Hc; Carl Baker; Costin Leu; Christian Kluck; Hiltrud Muhle; Sarah von Spiczak; Philipp Ostertag; Tanja Obermeier; Ailing A. Kleefuß-Lie; Kerstin Hallmann; Michael Steffens; Verena Gaus; Karl Martin Klein; Hajo M. Hamer; Felix Rosenow; Eva H. Brilstra; Dorothée Kasteleijn-Nolst Trenité; Marielle Swinkels; Yvonne G. Weber; Iris Unterberger; Fritz Zimprich; Lydia Urak; Martha Feucht; Karoline Fuchs; Rikke S. Møller; Helle Hjalgrim; Arvid Suls

Idiopathic generalized epilepsies account for 30% of all epilepsies. Despite a predominant genetic aetiology, the genetic factors predisposing to idiopathic generalized epilepsies remain elusive. Studies of structural genomic variations have revealed a significant excess of recurrent microdeletions at 1q21.1, 15q11.2, 15q13.3, 16p11.2, 16p13.11 and 22q11.2 in various neuropsychiatric disorders including autism, intellectual disability and schizophrenia. Microdeletions at 15q13.3 have recently been shown to constitute a strong genetic risk factor for common idiopathic generalized epilepsy syndromes, implicating that other recurrent microdeletions may also be involved in epileptogenesis. This study aimed to investigate the impact of five microdeletions at the genomic hotspot regions 1q21.1, 15q11.2, 16p11.2, 16p13.11 and 22q11.2 on the genetic risk to common idiopathic generalized epilepsy syndromes. The candidate microdeletions were assessed by high-density single nucleotide polymorphism arrays in 1234 patients with idiopathic generalized epilepsy from North-western Europe and 3022 controls from the German population. Microdeletions were validated by quantitative polymerase chain reaction and their breakpoints refined by array comparative genomic hybridization. In total, 22 patients with idiopathic generalized epilepsy (1.8%) carried one of the five novel microdeletions compared with nine controls (0.3%) (odds ratio = 6.1; 95% confidence interval 2.8-13.2; chi(2) = 26.7; 1 degree of freedom; P = 2.4 x 10(-7)). Microdeletions were observed at 1q21.1 [Idiopathic generalized epilepsy (IGE)/control: 1/1], 15q11.2 (IGE/control: 12/6), 16p11.2 IGE/control: 1/0, 16p13.11 (IGE/control: 6/2) and 22q11.2 (IGE/control: 2/0). Significant associations with IGEs were found for the microdeletions at 15q11.2 (odds ratio = 4.9; 95% confidence interval 1.8-13.2; P = 4.2 x 10(-4)) and 16p13.11 (odds ratio = 7.4; 95% confidence interval 1.3-74.7; P = 0.009). Including nine patients with idiopathic generalized epilepsy in this cohort with known 15q13.3 microdeletions (IGE/control: 9/0), parental transmission could be examined in 14 families. While 10 microdeletions were inherited (seven maternal and three paternal transmissions), four microdeletions occurred de novo at 15q13.3 (n = 1), 16p13.11 (n = 2) and 22q11.2 (n = 1). Eight of the transmitting parents were clinically unaffected, suggesting that the microdeletion itself is not sufficient to cause the epilepsy phenotype. Although the microdeletions investigated are individually rare (<1%) in patients with idiopathic generalized epilepsy, they collectively seem to account for a significant fraction of the genetic variance in common idiopathic generalized epilepsy syndromes. The present results indicate an involvement of microdeletions at 15q11.2 and 16p13.11 in epileptogenesis and strengthen the evidence that recurrent microdeletions at 15q11.2, 15q13.3 and 16p13.11 confer a pleiotropic susceptibility effect to a broad range of neuropsychiatric disorders.


Journal of Clinical Investigation | 2008

GLUT1 mutations are a cause of paroxysmal exertion-induced dyskinesias and induce hemolytic anemia by a cation leak

Yvonne G. Weber; Alexander Storch; Thomas V. Wuttke; Knut Brockmann; Judith S. Kempfle; Snezana Maljevic; Lucia Margari; Christoph Kamm; Susanne A. Schneider; Stephan M. Huber; Arnulf Pekrun; Robert Roebling; Guiscard Seebohm; Saisudha Koka; Camelia Lang; Eduard Kraft; Dragica Blazevic; Alberto Salvo‐Vargas; Michael Fauler; Felix M. Mottaghy; Alexander Münchau; Mark J. Edwards; Anna Presicci; Francesco Margari; Thomas Gasser; Florian Lang; Kailash P. Bhatia; Frank Lehmann-Horn; Holger Lerche

Paroxysmal dyskinesias are episodic movement disorders that can be inherited or are sporadic in nature. The pathophysiology underlying these disorders remains largely unknown but may involve disrupted ion homeostasis due to defects in cell-surface channels or nutrient transporters. In this study, we describe a family with paroxysmal exertion-induced dyskinesia (PED) over 3 generations. Their PED was accompanied by epilepsy, mild developmental delay, reduced CSF glucose levels, hemolytic anemia with echinocytosis, and altered erythrocyte ion concentrations. Using a candidate gene approach, we identified a causative deletion of 4 highly conserved amino acids (Q282_S285del) in the pore region of the glucose transporter 1 (GLUT1). Functional studies in Xenopus oocytes and human erythrocytes revealed that this mutation decreased glucose transport and caused a cation leak that alters intracellular concentrations of sodium, potassium, and calcium. We screened 4 additional families, in which PED is combined with epilepsy, developmental delay, or migraine, but not with hemolysis or echinocytosis, and identified 2 additional GLUT1 mutations (A275T, G314S) that decreased glucose transport but did not affect cation permeability. Combining these data with brain imaging studies, we propose that the dyskinesias result from an exertion-induced energy deficit that may cause episodic dysfunction of the basal ganglia, and that the hemolysis with echinocytosis may result from alterations in intracellular electrolytes caused by a cation leak through mutant GLUT1.


Brain | 2008

Paroxysmal exercise-induced dyskinesia and epilepsy is due to mutations in SLC2A1, encoding the glucose transporter GLUT1

Arvid Suls; Peter Dedeken; Karolien Goffin; Hilde Van Esch; Patrick Dupont; David Cassiman; Judith S. Kempfle; Thomas V. Wuttke; Yvonne G. Weber; Holger Lerche; Zaid Afawi; Wim Vandenberghe; Amos D. Korczyn; Samuel F. Berkovic; Dana Ekstein; Sara Kivity; Philippe Ryvlin; Lieve Claes; Liesbet Deprez; Snezana Maljevic; Alberto Vargas; Tine Van Dyck; Dirk Goossens; Jurgen Del-Favero; Koen Van Laere; Wim Van Paesschen

Paroxysmal exercise-induced dyskinesia (PED) can occur in isolation or in association with epilepsy, but the genetic causes and pathophysiological mechanisms are still poorly understood. We performed a clinical evaluation and genetic analysis in a five-generation family with co-occurrence of PED and epilepsy (n = 39), suggesting that this combination represents a clinical entity. Based on a whole genome linkage analysis we screened SLC2A1, encoding the glucose transporter of the blood-brain-barrier, GLUT1 and identified heterozygous missense and frameshift mutations segregating in this and three other nuclear families with a similar phenotype. PED was characterized by choreoathetosis, dystonia or both, affecting mainly the legs. Predominant epileptic seizure types were primary generalized. A median CSF/blood glucose ratio of 0.52 (normal >0.60) in the patients and a reduced glucose uptake by mutated transporters compared with the wild-type as determined in Xenopus oocytes confirmed a pathogenic role of these mutations. Functional imaging studies implicated alterations in glucose metabolism in the corticostriate pathways in the pathophysiology of PED and in the frontal lobe cortex in the pathophysiology of epileptic seizures. Three patients were successfully treated with a ketogenic diet. In conclusion, co-occurring PED and epilepsy can be due to autosomal dominant heterozygous SLC2A1 mutations, expanding the phenotypic spectrum associated with GLUT1 deficiency and providing a potential new treatment option for this clinical syndrome.


Epilepsia | 2012

Targeted next generation sequencing as a diagnostic tool in epileptic disorders

Johannes R. Lemke; Erik Riesch; Tim Scheurenbrand; Max Schubach; Christian Wilhelm; Isabelle Steiner; Jörg Hansen; Carolina Courage; Sabina Gallati; Sarah Bürki; Susi Strozzi; Barbara Goeggel Simonetti; Sebastian Grunt; Maja Steinlin; Michael Alber; Markus Wolff; Thomas Klopstock; Eva C. Prott; Rüdiger Lorenz; Christiane Spaich; Sabine Rona; Maya Lakshminarasimhan; Judith Kröll; Thomas Dorn; Günter Krämer; Matthis Synofzik; Felicitas Becker; Yvonne G. Weber; Holger Lerche; Detlef Böhm

Purpose:  Epilepsies have a highly heterogeneous background with a strong genetic contribution. The variety of unspecific and overlapping syndromic and nonsyndromic phenotypes often hampers a clear clinical diagnosis and prevents straightforward genetic testing. Knowing the genetic basis of a patient’s epilepsy can be valuable not only for diagnosis but also for guiding treatment and estimating recurrence risks.


Nature Genetics | 2013

Mutations in GRIN2A cause idiopathic focal epilepsy with rolandic spikes

Johannes R. Lemke; Dennis Lal; Eva M. Reinthaler; Isabelle Steiner; Michael Nothnagel; Michael Alber; Kirsten Geider; Bodo Laube; Michael Schwake; Katrin Finsterwalder; Andre Franke; Markus Schilhabel; Johanna A. Jähn; Hiltrud Muhle; Rainer Boor; Wim Van Paesschen; Roberto Horacio Caraballo; Natalio Fejerman; Sarah Weckhuysen; Jan Larsen; Rikke S. Møller; Helle Hjalgrim; Laura Addis; Shan Tang; Elaine Hughes; Deb K. Pal; Kadi Veri; Ulvi Vaher; Tiina Talvik; Petia Dimova

Idiopathic focal epilepsy (IFE) with rolandic spikes is the most common childhood epilepsy, comprising a phenotypic spectrum from rolandic epilepsy (also benign epilepsy with centrotemporal spikes, BECTS) to atypical benign partial epilepsy (ABPE), Landau-Kleffner syndrome (LKS) and epileptic encephalopathy with continuous spike and waves during slow-wave sleep (CSWS). The genetic basis is largely unknown. We detected new heterozygous mutations in GRIN2A in 27 of 359 affected individuals from 2 independent cohorts with IFE (7.5%; P = 4.83 × 10−18, Fishers exact test). Mutations occurred significantly more frequently in the more severe phenotypes, with mutation detection rates ranging from 12/245 (4.9%) in individuals with BECTS to 9/51 (17.6%) in individuals with CSWS (P = 0.009, Cochran-Armitage test for trend). In addition, exon-disrupting microdeletions were found in 3 of 286 individuals (1.0%; P = 0.004, Fishers exact test). These results establish alterations of the gene encoding the NMDA receptor NR2A subunit as a major genetic risk factor for IFE.


Annals of Neurology | 2009

Early-onset absence epilepsy caused by mutations in the glucose transporter GLUT1†

Arvid Suls; Saul A. Mullen; Yvonne G. Weber; Kristien Verhaert; Berten Ceulemans; Renzo Guerrini; Thomas V. Wuttke; Alberto Salvo‐Vargas; Liesbet Deprez; Lieve Claes; Albena Jordanova; Samuel F. Berkovic; Holger Lerche; Ingrid E. Scheffer

Absence epilepsies of childhood are heterogeneous with most cases following complex inheritance. Those cases with onset before 4 years of age represent a poorly studied subset. We screened 34 patients with early‐onset absence epilepsy for mutations in SLC2A1, the gene encoding the GLUT1 glucose transporter. Mutations leading to reduced protein function were found in 12% (4/34) of patients. Two mutations arose de novo, and two were familial. These findings suggest GLUT1 deficiency underlies a significant proportion of early‐onset absence epilepsy, which has both genetic counseling and treatment implications because the ketogenic diet is effective in GLUT1 deficiency. Ann Neurol 2009;66:415–419


Annals of Neurology | 2006

A mutation in the GABAA receptor α1-subunit is associated with absence epilepsy

Snezana Maljevic; Klaus Krampfl; Joana Cobilanschi; Nikola Tilgen; Susanne Beyer; Yvonne G. Weber; Friedrich Schlesinger; Daniel Ursu; Werner Melzer; Patrick Cossette; Johannes Bufler; Holger Lerche; Armin Heils

To detect mutations in GABRA1 in idiopathic generalized epilepsy.


Nature Genetics | 2015

De novo loss- or gain-of-function mutations in KCNA2 cause epileptic encephalopathy.

Steffen Syrbe; Ulrike B. S. Hedrich; Erik Riesch; Tania Djémié; Stephan Müller; R. S. Moller; Bridget Maher; Laura Hernandez-Hernandez; Matthis Synofzik; Hande Caglayan; Mutluay Arslan; José M. Serratosa; Michael Nothnagel; Patrick May; Roland Krause; Heidrun Löffler; Katja Detert; Thomas Dorn; Heinrich Vogt; Günter Krämer; Ludger Schöls; Primus-Eugen Mullis; Tarja Linnankivi; Anna-Elina Lehesjoki; Katalin Sterbova; Dana Craiu; Dorota Hoffman-Zacharska; Christian Korff; Yvonne G. Weber; Maja Steinlin

Epileptic encephalopathies are a phenotypically and genetically heterogeneous group of severe epilepsies accompanied by intellectual disability and other neurodevelopmental features. Using next-generation sequencing, we identified four different de novo mutations in KCNA2, encoding the potassium channel KV1.2, in six isolated patients with epileptic encephalopathy (one mutation recurred three times independently). Four individuals presented with febrile and multiple afebrile, often focal seizure types, multifocal epileptiform discharges strongly activated by sleep, mild to moderate intellectual disability, delayed speech development and sometimes ataxia. Functional studies of the two mutations associated with this phenotype showed almost complete loss of function with a dominant-negative effect. Two further individuals presented with a different and more severe epileptic encephalopathy phenotype. They carried mutations inducing a drastic gain-of-function effect leading to permanently open channels. These results establish KCNA2 as a new gene involved in human neurodevelopmental disorders through two different mechanisms, predicting either hyperexcitability or electrical silencing of KV1.2-expressing neurons.


Human Molecular Genetics | 2012

Genome-wide association analysis of genetic generalized epilepsies implicates susceptibility loci at 1q43, 2p16.1, 2q22.3 and 17q21.32

Michael Steffens; Costin Leu; Ann-Kathrin Ruppert; Federico Zara; Pasquale Striano; Angela Robbiano; Giuseppe Capovilla; Paolo Tinuper; Antonio Gambardella; Amedeo Bianchi; Angela La Neve; Giovanni Crichiutti; Carolien G.F. de Kovel; Dorothée Kasteleijn-Nolst Trenité; Gerrit-Jan de Haan; Dick Lindhout; Verena Gaus; Bettina Schmitz; Dieter Janz; Yvonne G. Weber; Felicitas Becker; Holger Lerche; Bernhard J. Steinhoff; Ailing A. Kleefuß-Lie; Wolfram S. Kunz; Rainer Surges; Christian E. Elger; Hiltrud Muhle; Sarah von Spiczak; Philipp Ostertag

Genetic generalized epilepsies (GGEs) have a lifetime prevalence of 0.3% and account for 20-30% of all epilepsies. Despite their high heritability of 80%, the genetic factors predisposing to GGEs remain elusive. To identify susceptibility variants shared across common GGE syndromes, we carried out a two-stage genome-wide association study (GWAS) including 3020 patients with GGEs and 3954 controls of European ancestry. To dissect out syndrome-related variants, we also explored two distinct GGE subgroups comprising 1434 patients with genetic absence epilepsies (GAEs) and 1134 patients with juvenile myoclonic epilepsy (JME). Joint Stage-1 and 2 analyses revealed genome-wide significant associations for GGEs at 2p16.1 (rs13026414, P(meta) = 2.5 × 10(-9), OR[T] = 0.81) and 17q21.32 (rs72823592, P(meta) = 9.3 × 10(-9), OR[A] = 0.77). The search for syndrome-related susceptibility alleles identified significant associations for GAEs at 2q22.3 (rs10496964, P(meta) = 9.1 × 10(-9), OR[T] = 0.68) and at 1q43 for JME (rs12059546, P(meta) = 4.1 × 10(-8), OR[G] = 1.42). Suggestive evidence for an association with GGEs was found in the region 2q24.3 (rs11890028, P(meta) = 4.0 × 10(-6)) nearby the SCN1A gene, which is currently the gene with the largest number of known epilepsy-related mutations. The associated regions harbor high-ranking candidate genes: CHRM3 at 1q43, VRK2 at 2p16.1, ZEB2 at 2q22.3, SCN1A at 2q24.3 and PNPO at 17q21.32. Further replication efforts are necessary to elucidate whether these positional candidate genes contribute to the heritability of the common GGE syndromes.

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Ingo Helbig

Children's Hospital of Philadelphia

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