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Dive into the research topics where Alice Goldenberg is active.

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Featured researches published by Alice Goldenberg.


Nature | 2010

A new highly penetrant form of obesity due to deletions on chromosome 16p11.2

Robin G. Walters; Sébastien Jacquemont; Armand Valsesia; A.J. de Smith; Danielle Martinet; Johanna C. Andersson; Mario Falchi; Fangfang Chen; Joris Andrieux; Stéphane Lobbens; Bruno Delobel; Fanny Stutzmann; J. S. El-Sayed Moustafa; Jean-Claude Chèvre; Cécile Lecoeur; Vincent Vatin; Sonia Bouquillon; Jessica L. Buxton; Odile Boute; M. Holder-Espinasse; Jean-Marie Cuisset; M.-P. Lemaitre; A.-E. Ambresin; A. Brioschi; M. Gaillard; V. Giusti; Florence Fellmann; Alessandra Ferrarini; Nouchine Hadjikhani; Dominique Campion

Obesity has become a major worldwide challenge to public health, owing to an interaction between the Western ‘obesogenic’ environment and a strong genetic contribution. Recent extensive genome-wide association studies (GWASs) have identified numerous single nucleotide polymorphisms associated with obesity, but these loci together account for only a small fraction of the known heritable component. Thus, the ‘common disease, common variant’ hypothesis is increasingly coming under challenge. Here we report a highly penetrant form of obesity, initially observed in 31 subjects who were heterozygous for deletions of at least 593 kilobases at 16p11.2 and whose ascertainment included cognitive deficits. Nineteen similar deletions were identified from GWAS data in 16,053 individuals from eight European cohorts. These deletions were absent from healthy non-obese controls and accounted for 0.7% of our morbid obesity cases (body mass index (BMI) ≥ 40 kg m-2 or BMI standard deviation score ≥ 4; P = 6.4 × 10-8, odds ratio 43.0), demonstrating the potential importance in common disease of rare variants with strong effects. This highlights a promising strategy for identifying missing heritability in obesity and other complex traits: cohorts with extreme phenotypes are likely to be enriched for rare variants, thereby improving power for their discovery. Subsequent analysis of the loci so identified may well reveal additional rare variants that further contribute to the missing heritability, as recently reported for SIM1 (ref. 3). The most productive approach may therefore be to combine the ‘power of the extreme’ in small, well-phenotyped cohorts, with targeted follow-up in case-control and population cohorts.


Archives of General Psychiatry | 2009

Recurrent Rearrangements in Synaptic and Neurodevelopmental Genes and Shared Biologic Pathways in Schizophrenia, Autism, and Mental Retardation

Audrey Guilmatre; Christèle Dubourg; A.L. Mosca; Solenn Legallic; Alice Goldenberg; Valérie Drouin-Garraud; Valérie Layet; Antoine Rosier; Sylvain Briault; Frédérique Bonnet-Brilhault; Frédéric Laumonnier; Sylvie Odent; Gael Le Vacon; Géraldine Joly-Hélas; Véronique David; Claude Bendavid; Jean-Michel Pinoit; C. Henry; Caterina Impallomeni; Eva Germanò; Gaetano Tortorella; Gabriella Di Rosa; Catherine Barthélémy; Christian R. Andres; Laurence Faivre; Thierry Frebourg; Pascale Saugier Veber; Dominique Campion

CONTEXT Results of comparative genomic hybridization studies have suggested that rare copy number variations (CNVs) at numerous loci are involved in the cause of mental retardation, autism spectrum disorders, and schizophrenia. OBJECTIVES To provide an estimate of the collective frequency of a set of recurrent or overlapping CNVs in 3 different groups of cases compared with healthy control subjects and to assess whether each CNV is present in more than 1 clinical category. DESIGN Case-control study. SETTING Academic research. PARTICIPANTS We investigated 28 candidate loci previously identified by comparative genomic hybridization studies for gene dosage alteration in 247 cases with mental retardation, in 260 cases with autism spectrum disorders, in 236 cases with schizophrenia or schizoaffective disorder, and in 236 controls. MAIN OUTCOME MEASURES Collective and individual frequencies of the analyzed CNVs in cases compared with controls. RESULTS Recurrent or overlapping CNVs were found in cases at 39.3% of the selected loci. The collective frequency of CNVs at these loci is significantly increased in cases with autism, in cases with schizophrenia, and in cases with mental retardation compared with controls (P < .001, P = .01, and P = .001, respectively, Fisher exact test). Individual significance (P = .02 without correction for multiple testing) was reached for the association between autism and a 350-kilobase deletion located at 22q11 and spanning the PRODH and DGCR6 genes. CONCLUSIONS Weakly to moderately recurrent CNVs (transmitted or occurring de novo) seem to be causative or contributory factors for these diseases. Most of these CNVs (which contain genes involved in neurotransmission or in synapse formation and maintenance) are present in the 3 pathologic conditions (schizophrenia, autism, and mental retardation), supporting the existence of shared biologic pathways in these neurodevelopmental disorders.


Journal of Medical Genetics | 2007

Cardio-facio-cutaneous and Noonan syndromes due to mutations in the RAS/MAPK signalling pathway: genotype–phenotype relationships and overlap with Costello syndrome

Caroline Nava; Nadine Hanna; Caroline Michot; Sabrina Pereira; Nathalie Pouvreau; Tetsuya Niihori; Yoko Aoki; Yoichi Matsubara; Benoit Arveiler; Didier Lacombe; Eric Pasmant; Béatrice Parfait; Clarisse Baumann; Delphine Héron; Sabine Sigaudy; Annick Toutain; Marlène Rio; Alice Goldenberg; Bruno Leheup; Alain Verloes; Hélène Cavé

Cardio-facio-cutaneous (CFC) syndrome, Noonan syndrome (NS), and Costello syndrome (CS) are clinically related developmental disorders that have been recently linked to mutations in the RAS/MEK/ERK signalling pathway. This study was a mutation analysis of the KRAS, BRAF, MEK1 and MEK2 genes in a total of 130 patients (40 patients with a clinical diagnosis of CFC, 20 patients without HRAS mutations from the French Costello family support group, and 70 patients with NS without PTPN11 or SOS1 mutations). BRAF mutations were found in 14/40 (35%) patients with CFC and 8/20 (40%) HRAS-negative patients with CS. KRAS mutations were found in 1/40 (2.5%) patients with CFC, 2/20 (10%) HRAS-negative patients with CS and 4/70 patients with NS (5.7%). MEK1 mutations were found in 4/40 patients with CFC (10%), 4/20 (20%) HRAS-negative patients with CS and 3/70 (4.3%) patients with NS, and MEK2 mutations in 4/40 (10%) patients with CFC. Analysis of the major phenotypic features suggests significant clinical overlap between CS and CFC. The phenotype associated with MEK mutations seems less severe, and is compatible with normal mental development. Features considered distinctive for CS were also found to be associated with BRAF or MEK mutations. Because of its particular cancer risk, the term “Costello syndrome” should only be used for patients with proven HRAS mutation. These results confirm that KRAS is a minor contributor to NS and show that MEK is involved in some cases of NS, demonstrating a phenotypic continuum between the clinical entities. Although some associated features appear to be characteristic of a specific gene, no simple rule exists to distinguish NS from CFC easily.


Nature Genetics | 2011

Germline deletion of the miR-17 ∼ 92 cluster causes skeletal and growth defects in humans

Loïc de Pontual; Evelyn Yao; Patrick Callier; Laurence Faivre; Valérie Drouin; Sandra Cariou; Arie van Haeringen; David Geneviève; Alice Goldenberg; Myriam Oufadem; Sylvie Manouvrier; Arnold Munnich; Joana A. Vidigal; Michel Vekemans; Stanislas Lyonnet; Alexandra Henrion-Caude; Andrea Ventura; Jeanne Amiel

MicroRNAs (miRNAs) are key regulators of gene expression in animals and plants. Studies in a variety of model organisms show that miRNAs modulate developmental processes. To our knowledge, the only hereditary condition known to be caused by a miRNA is a form of adult-onset non-syndromic deafness, and no miRNA mutation has yet been found to be responsible for any developmental defect in humans. Here we report the identification of germline hemizygous deletions of MIR17HG, encoding the miR-17∼92 polycistronic miRNA cluster, in individuals with microcephaly, short stature and digital abnormalities. We demonstrate that haploinsufficiency of miR-17∼92 is responsible for these developmental abnormalities by showing that mice harboring targeted deletion of the miR-17∼92 cluster phenocopy several key features of the affected humans. These findings identify a regulatory function for miR-17∼92 in growth and skeletal development and represent the first example of an miRNA gene responsible for a syndromic developmental defect in humans.


Journal of Medical Genetics | 2010

MEF2C haploinsufficiency caused by either microdeletion of the 5q14.3 region or mutation is responsible for severe mental retardation with stereotypic movements, epilepsy and/or cerebral malformations

Nathalie Le Meur; Muriel Holder-Espinasse; Sylvie Jaillard; Alice Goldenberg; Sylvie Joriot; Patrizia Amati-Bonneau; Agnès Guichet; Magalie Barth; Aude Charollais; Hubert Journel; Stéphane Auvin; Cécile Boucher; Jean-Pierre Kerckaert; Véronique David; Sylvie Manouvrier-Hanu; Pascale Saugier-Veber; Thierry Frebourg; Christèle Dubourg; Joris Andrieux; Dominique Bonneau

Background Over the last few years, array-comparative genomic hybridisation (CGH) has considerably improved our ability to detect cryptic unbalanced rearrangements in patients with syndromic mental retardation. Method Molecular karyotyping of six patients with syndromic mental retardation was carried out using whole-genome oligonucleotide array-CGH. Results 5q14.3 microdeletions ranging from 216 kb to 8.8 Mb were detected in five unrelated patients with the following phenotypic similarities: severe mental retardation with absent speech, hypotonia and stereotypic movements. Facial dysmorphic features, epilepsy and/or cerebral malformations were also present in most of these patients. The minimal common deleted region of these 5q14 microdeletions encompassed only MEF2C, the gene for a protein known to act in brain as a neurogenesis effector, which regulates excitatory synapse number. In a patient with a similar phenotype, an MEF2C nonsense mutation was subsequently identified. Conclusion Taken together, these results strongly suggest that haploinsufficiency of MEF2C is responsible for severe mental retardation with stereotypic movements, seizures and/or cerebral malformations.


Journal of Medical Genetics | 2003

The mitochondrial DNA G13513A MELAS mutation in the NADH dehydrogenase 5 gene is a frequent cause of Leigh-like syndrome with isolated complex I deficiency

M Chol; Sophie Lebon; Paule Bénit; Dominique Chretien; P. de Lonlay; Alice Goldenberg; Sylvie Odent; Lucie Hertz-Pannier; C Vincent-Delorme; Valérie Cormier-Daire; Pierre Rustin; Agnès Rötig; Arnold Munnich

Leigh syndrome is a subacute necrotising encephalomyopathy frequently ascribed to mitochondrial respiratory chain deficiency. This condition is genetically heterogeneous, as mutations in both mitochondrial (mt) and nuclear genes have been reported. Here, we report the G13513A transition in the ND5 mtDNA gene in three unrelated children with complex I deficiency and a peculiar MRI aspect distinct from typical Leigh syndrome. Brain MRI consistently showed a specific involvement of the substantia nigra and medulla oblongata sparing the basal ganglia. Variable degrees of heteroplasmy were found in all tissues tested and a high percentage of mutant mtDNA was observed in muscle. The asymptomatic mothers presented low levels of mutant mtDNA in blood leucocytes. This mutation, which affects an evolutionary conserved amino acid (D393N), has been previously reported in adult patients with MELAS or LHON/MELAS syndromes, emphasising the clinical heterogeneity of mitochondrial DNA mutations. Since the G13513A mutation was found in 21% of our patients with Leigh syndrome and complex I deficiency (3/14), it appears that this mutation represents a frequent cause of Leigh-like syndrome, which should be systematically tested for molecular diagnosis in affected children and for genetic counselling in their maternal relatives.


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.


The Journal of Pediatrics | 2003

Antenatal manifestations of mitochondrial respiratory chain deficiency

Jürgen-Christoph von Kleist-Retzow; Valérie Cormier-Daire; Géraldine Viot; Alice Goldenberg; Becky Mardach; Jeanne Amiel; Philippe Saada; Yves Dumez; Francis Brunelle; Jean-Marie Saudubray; Dominique Chretien; Agnès Rötig; Pierre Rustin; Arnold Munnich; Pascale de Lonlay

OBJECTIVE To review the antenatal manifestations of disorders of oxidative phosphorylation. STUDY DESIGN A total of 300 cases of proven respiratory chain enzyme deficiency were retrospectively reviewed for fetal development, based on course and duration of pregnancy, antenatal ultrasonography and birth weight, length, and head circumference. Particular attention was given to fetal movements, oligo/hydramnios, fetal cardiac rhythm, fetal heart ultrasound, and ultrasonography/echo Doppler signs of brain, facial, trunk, limb, and organ anomalies. RESULTS Retrospective analyses detected low birth weight (<3rd percentile for gestational age) in 22.7% of cases (68/300, P<.000001). Intrauterine growth retardation was either isolated (48/300, 16%) or associated with otherwise unexplained anomalies (20/300, 6.7%, P<.0001). Antenatal anomalies were usually multiple and involved several organs sharing no common function or embryologic origin. They included polyhydramnios (6/20), oligoamnios (2/20), arthrogryposis (1/20), decreased fetal movements (1/20), ventricular septal defects (2/20), hypertrophic cardiomyopathy (4/20), cardiac rhythm anomalies (4/20), hydronephrosis (3/20), vertebral abnormalities, anal atresia, cardiac abnormalities, tracheoesophageal fistula/atresia, renal agenesis and dysplasia, and limb defects (VACTERL) association (2/20), and a complex gastrointestinal malformation (1/20). CONCLUSIONS Although a number of metabolic diseases undergo a symptom-free period, respiratory chain deficiency may have an early antenatal expression, presumably related to the time course of the disease gene expression in the embryofetal period. The mechanism triggering malformations is unknown and may include decreased ATP formation and/or an alteration of apoptotic events controlled by the mitochondria.


Nature Genetics | 2012

Mutations in NMNAT1 cause Leber congenital amaurosis with early-onset severe macular and optic atrophy

Isabelle Perrault; Sylvain Hanein; Xavier Zanlonghi; Valérie Serre; Michael Nicouleau; Sabine Defoort-Delhemmes; Nathalie Delphin; Lucas Fares-Taie; Sylvie Gerber; Olivia Xerri; Catherine Edelson; Alice Goldenberg; Alice Duncombe; Gylène Le Meur; Christian P. Hamel; Eduardo Silva; Patrick Nitschke; Patrick Calvas; Arnold Munnich; O. Roche; Hélène Dollfus; Josseline Kaplan; Jean-Michel Rozet

In addition to its activity in nicotinamide adenine dinucleotide (NAD+) synthesis, the nuclear nicotinamide mononucleotide adenyltransferase NMNAT1 acts as a chaperone that protects against neuronal activity–induced degeneration. Here we report that compound heterozygous and homozygous NMNAT1 mutations cause severe neonatal neurodegeneration of the central retina and early-onset optic atrophy in 22 unrelated individuals. Their clinical presentation is consistent with Leber congenital amaurosis and suggests that the mutations affect neuroprotection of photoreceptor cells.


American Journal of Human Genetics | 2012

Exome Sequencing Identifies PDE4D Mutations as Another Cause of Acrodysostosis

Caroline Michot; Carine Le Goff; Alice Goldenberg; Avinash Abhyankar; Céline Klein; Esther Kinning; Anne-Marie Guerrot; Philippe Flahaut; Alice Duncombe; Genevieve Baujat; Stanislas Lyonnet; Caroline Thalassinos; Patrick Nitschke; Jean-Laurent Casanova; Martine Le Merrer; Arnold Munnich; Valérie Cormier-Daire

Acrodysostosis is a rare autosomal-dominant condition characterized by facial dysostosis, severe brachydactyly with cone-shaped epiphyses, and short stature. Moderate intellectual disability and resistance to multiple hormones might also be present. Recently, a recurrent mutation (c.1102C>T [p.Arg368*]) in PRKAR1A has been identified in three individuals with acrodysostosis and resistance to multiple hormones. After studying ten unrelated acrodysostosis cases, we report here de novo PRKAR1A mutations in five out of the ten individuals (we found c.1102C>T [p.Arg368(∗)] in four of the ten and c.1117T>C [p.Tyr373His] in one of the ten). We performed exome sequencing in two of the five remaining individuals and selected phosphodiesterase 4D (PDE4D) as a candidate gene. PDE4D encodes a class IV cyclic AMP (cAMP)-specific phosphodiesterase that regulates cAMP concentration. Exome analysis detected heterozygous PDE4D mutations (c.673C>A [p.Pro225Thr] and c.677T>C [p.Phe226Ser]) in these two individuals. Screening of PDE4D identified heterozygous mutations (c.568T>G [p.Ser190Ala] and c.1759A>C [p.Thr587Pro]) in two additional acrodysostosis cases. These mutations occurred de novo in all four cases. The four individuals with PDE4D mutations shared common clinical features, namely characteristic midface and nasal hypoplasia and moderate intellectual disability. Metabolic screening was normal in three of these four individuals. However, resistance to parathyroid hormone and thyrotropin was consistently observed in the five cases with PRKAR1A mutations. Finally, our study further supports the key role of the cAMP signaling pathway in skeletogenesis.

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Arnold Munnich

Université catholique de Louvain

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Jeanne Amiel

Necker-Enfants Malades Hospital

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Stanislas Lyonnet

Necker-Enfants Malades Hospital

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