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Dive into the research topics where André Mégarbané is active.

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Featured researches published by André Mégarbané.


Nature Genetics | 2001

Identification of the gene altered in Berardinelli-Seip congenital lipodystrophy on chromosome 11q13.

Jocelyne Magré; Marc Delepine; Eliane Khallouf; Tobias Gedde-Dahl; Lionel Van Maldergem; Eric M. Sobel; Jeanette C. Papp; Muriel Meier; André Mégarbané; Alain Bachy; A. Verloes; F. H. D'abronzo; E. Seemanova; Roger Assan; N. Baudic; Charlotte Bourut; Paul Czernichow; Frédéric Huet; Florin Grigorescu; M. De Kerdanet; Didier Lacombe; P. Labrune; M. Lanza; H. Loret; Fumihiko Matsuda; J. Navarro; A. Nivelon-Chevalier; Meraida Polak; J.-J. Robert; P. Tric

Congenital generalized lipodystrophy, or Berardinelli–Seip syndrome (BSCL), is a rare autosomal recessive disease characterized by a near-absence of adipose tissue from birth or early infancy and severe insulin resistance. Other clinical and biological features include acanthosis nigricans, hyperandrogenism, muscular hypertrophy, hepatomegaly, altered glucose tolerance or diabetes mellitus, and hypertriglyceridemia. A locus (BSCL1) has been mapped to 9q34 with evidence of heterogeneity. Here, we report a genome screen of nine BSCL families from two geographical clusters (in Lebanon and Norway). We identified a new disease locus, designated BSCL2, within the 2.5-Mb interval flanked by markers D11S4076 and D11S480 on chromosome 11q13. Analysis of 20 additional families of various ethnic origins led to the identification of 11 families in which the disease cosegregates with the 11q13 locus; the remaining families provide confirmation of linkage to 9q34. Sequence analysis of genes located in the 11q13 interval disclosed mutations in a gene homologous to the murine guanine nucleotide-binding protein (G protein), γ3-linked gene (Gng3lg) in all BSCL2-linked families. BSCL2 is most highly expressed in brain and testis and encodes a protein (which we have called seipin) of unknown function. Most of the variants are null mutations and probably result in a severe disruption of the protein. These findings are of general importance for understanding the molecular mechanisms underlying regulation of body fat distribution and insulin resistance.


Science | 2008

Mutations in the Pericentrin (PCNT) Gene Cause Primordial Dwarfism

Anita Rauch; Christian Thiel; Detlev Schindler; Ursula Wick; Yanick J. Crow; Arif B. Ekici; Anthonie J. van Essen; Timm O. Goecke; Lihadh Al-Gazali; Krystyna H. Chrzanowska; Christiane Zweier; Han G. Brunner; Kristin Becker; Cynthia J. Curry; Bruno Dallapiccola; Koenraad Devriendt; Arnd Dörfler; Esther Kinning; André Mégarbané; Peter Meinecke; Robert K. Semple; Stephanie Spranger; Annick Toutain; Richard C. Trembath; Egbert Voss; Louise C. Wilson; Raoul C. M. Hennekam; Francis de Zegher; Helmuth Günther Dörr; André Reis

Fundamental processes influencing human growth can be revealed by studying extreme short stature. Using genetic linkage analysis, we find that biallelic loss-of-function mutations in the centrosomal pericentrin (PCNT) gene on chromosome 21q22.3 cause microcephalic osteodysplastic primordial dwarfism type II (MOPD II) in 25 patients. Adults with this rare inherited condition have an average height of 100 centimeters and a brain size comparable to that of a 3-month-old baby, but are of near-normal intelligence. Absence of PCNT results in disorganized mitotic spindles and missegregation of chromosomes. Mutations in related genes are known to cause primary microcephaly (MCPH1, CDK5RAP2, ASPM, and CENPJ).


American Journal of Human Genetics | 2007

Complex Inheritance Pattern Resembling Autosomal Recessive Inheritance Involving a Microdeletion in Thrombocytopenia–Absent Radius Syndrome

Eva Klopocki; Harald Schulze; Gabriele Strauß; Claus-Eric Ott; Judith G. Hall; Fabienne Trotier; Silke Fleischhauer; Lynn Greenhalgh; Ruth Newbury-Ecob; Luitgard M. Neumann; Rolf Habenicht; Rainer König; Eva Seemanova; André Mégarbané; Hans-Hilger Ropers; Reinhard Ullmann; Denise Horn; Stefan Mundlos

Thrombocytopenia-absent radius (TAR) syndrome is characterized by hypomegakaryocytic thrombocytopenia and bilateral radial aplasia in the presence of both thumbs. Other frequent associations are congenital heart disease and a high incidence of cows milk intolerance. Evidence for autosomal recessive inheritance comes from families with several affected individuals born to unaffected parents, but several other observations argue for a more complex pattern of inheritance. In this study, we describe a common interstitial microdeletion of 200 kb on chromosome 1q21.1 in all 30 investigated patients with TAR syndrome, detected by microarray-based comparative genomic hybridization. Analysis of the parents revealed that this deletion occurred de novo in 25% of affected individuals. Intriguingly, inheritance of the deletion along the maternal line as well as the paternal line was observed. The absence of this deletion in a cohort of control individuals argues for a specific role played by the microdeletion in the pathogenesis of TAR syndrome. We hypothesize that TAR syndrome is associated with a deletion on chromosome 1q21.1 but that the phenotype develops only in the presence of an additional as-yet-unknown modifier (mTAR).


Nature Genetics | 2006

BBS10 encodes a vertebrate-specific chaperonin-like protein and is a major BBS locus

Corinne Stoetzel; Virginie Laurier; Erica E. Davis; Jean Muller; Suzanne Rix; Jose L. Badano; Carmen C. Leitch; Nabiha Salem; Eliane Chouery; Sandra Corbani; Nadine Jalk; Serge Vicaire; Pierre Sarda; Christian P. Hamel; Didier Lacombe; Muriel Holder; Sylvie Odent; Susan Holder; Alice S. Brooks; Nursel Elcioglu; Eduardo Silva; Béatrice Rossillion; Sabine Sigaudy; Thomy de Ravel; Richard Alan Lewis; Bruno Leheup; Alain Verloes; Patrizia Amati-Bonneau; André Mégarbané; Olivier Poch

Bardet-Biedl syndrome (BBS) is a genetically heterogeneous ciliopathy. Although nine BBS genes have been cloned, they explain only 40–50% of the total mutational load. Here we report a major new BBS locus, BBS10, that encodes a previously unknown, rapidly evolving vertebrate-specific chaperonin-like protein. We found BBS10 to be mutated in about 20% of an unselected cohort of families of various ethnic origins, including some families with mutations in other BBS genes, consistent with oligogenic inheritance. In zebrafish, mild suppression of bbs10 exacerbated the phenotypes of other bbs morphants.


American Journal of Human Genetics | 2004

ADAMTS10 Mutations in Autosomal Recessive Weill-Marchesani Syndrome

Nathalie Dagoneau; Catherine Benoist-Lasselin; Céline Huber; L. Faivre; André Mégarbané; Abdulrahman Alswaid; Hélène Dollfus; Yves Alembik; Arnold Munnich; Laurence Legeai-Mallet; Valérie Cormier-Daire

Weill-Marchesani syndrome (WMS) is characterized by the association of short stature; brachydactyly; joint stiffness; eye anomalies, including microspherophakia and ectopia of the lenses; and, occasionally, heart defects. We have recently mapped a gene for the autosomal recessive form of WMS to chromosome 19p13.3-p13.2, in a 12.4-cM interval. Here, we report null mutations in a member of the extracellular matrix protease family, the gene encoding ADAMTS10, a disintegrin and metalloprotease with thrombospondin motifs. A total of three distinct mutations were identified in two consanguineous families and in one sporadic WMS case, including one nonsense mutation (R237X) and two splice mutations (1190+1G-->A and 810+1G-->A). ADAMTS10 expression studies using reverse-transcriptase polymerase chain reaction, northern blot, and dot-blot analyses showed that ADAMTS10 is expressed in skin, fetal chondrocytes, and fetal and adult heart. Moreover, electron microscopy and immunological studies of the skin fibroblasts from the patients confirmed impairment of the extracellular matrix. We conclude, therefore, that ADAMTS10 plays a major role in growth and in skin, lens, and heart development in humans.


Nature Genetics | 2003

Fraser syndrome and mouse blebbed phenotype caused by mutations in FRAS1/Fras1 encoding a putative extracellular matrix protein.

Lm McGregor; Vile Makela; S Darling; Sofia Vrontou; Georges Chalepakis; Catherine Roberts; Nicola Smart; Paul Rutland; Natalie J. Prescott; Jason Hopkins; Elizabeth Bentley; Alison Shaw; Emma Roberts; Robert F. Mueller; Shalini Jadeja; Nicole Philip; John Nelson; Christine Francannet; Antonio Perez-Aytes; André Mégarbané; Bronwyn Kerr; Brandon J. Wainwright; Adrian S. Woolf; Robin M. Winter; Peter J. Scambler

Fraser syndrome (OMIM 219000) is a multisystem malformation usually comprising cryptophthalmos, syndactyly and renal defects. Here we report autozygosity mapping and show that the locus FS1 at chromosome 4q21 is associated with Fraser syndrome, although the condition is genetically heterogeneous. Mutation analysis identified five frameshift mutations in FRAS1, which encodes one member of a family of novel proteins related to an extracellular matrix (ECM) blastocoelar protein found in sea urchin. The FRAS1 protein contains a series of N-terminal cysteine-rich repeat motifs previously implicated in BMP metabolism, suggesting that it has a role in both structure and signal propagation in the ECM. It has been speculated that Fraser syndrome is a human equivalent of the blebbed phenotype in the mouse, which has been associated with mutations in at least five loci including bl. As mapping data were consistent with homology of FRAS1 and bl, we screened DNA from bl/bl mice and identified a premature termination of mouse Fras1. Thus, the bl mouse is a model for Fraser syndrome in humans, a disorder caused by disrupted epithelial integrity in utero.


Journal of Medical Genetics | 2002

Genotype-phenotype relationships in Berardinelli-Seip congenital lipodystrophy

L. Van Maldergem; Jocelyne Magré; T. E. Khallouf; Tobias Gedde-Dahl; Marc Delepine; O. Trygstad; E. Seemanova; T. Stephenson; C. S. Albott; F. Bonnici; Vanessa R. Panz; J.-L. Medina; P. Bogalho; Frédéric Huet; S. Savasta; Alain Verloes; J.-J. Robert; H. Loret; M. De Kerdanet; Nadia Tubiana-Rufi; André Mégarbané; J. A. Maassen; Meraida Polak; Didier Lacombe; C. R. Kahn; E. L. Silveira; F. H. D'abronzo; Florin Grigorescu; Mark Lathrop; Jacqueline Capeau

Generalised lipodystrophy of the Berardinelli-Seip type (BSCL) is a rare autosomal recessive human disorder with severe adverse metabolic consequences. A gene on chromosome 9 (BSCL1) has recently been identified, predominantly in African-American families. More recently, mutations in a previously undescribed gene of unknown function (BSCL2) on chromosome 11, termed seipin, have been found to be responsible for this disorder in a number of European and Middle Eastern families. We have studied the genotype/phenotype relationships in 70 affected subjects from 44 apparently unrelated pedigrees of diverse ethnic origin. In all subjects, hepatic dysfunction, hyperlipidaemia, diabetes mellitus, and hypertrophic cardiomyopathy were significant contributors to morbidity with no clear differences in their prevalence between subjects with BSCL1 or BSCL2 and those with evidence against cosegregation with either chromosome 9 or 11 (designated BSCLX). BSCL2 appears to be a more severe disorder than BSCL1 with a higher incidence of premature death and a lower prevalence of partial and/or delayed onset of lipodystrophy. Notably, subjects with BSCL2 had a significantly higher prevalence of intellectual impairment than those with BSCL1 or BSCLX (p<0.0001, OR 17.0, CI 3.6 to 79.0). The higher prevalence of intellectual impairment and the increased risk of premature death in BSCL2 compared to BSCL1 emphasise the importance of molecular diagnosis of this syndrome and have clear implications for genetic counselling.


American Journal of Human Genetics | 2007

Mutation in WNT10A Is Associated with an Autosomal Recessive Ectodermal Dysplasia: The Odonto-onycho-dermal Dysplasia

Lynn Adaimy; Eliane Chouery; Hala Mégarbané; Salman Mroueh; Valérie Delague; Elsa Nicolas; Hanen Belguith; Philippe de Mazancourt; André Mégarbané

Odonto-onycho-dermal dysplasia is a rare autosomal recessive syndrome in which the presenting phenotype is dry hair, severe hypodontia, smooth tongue with marked reduction of fungiform and filiform papillae, onychodysplasia, keratoderma and hyperhidrosis of palms and soles, and hyperkeratosis of the skin. We studied three consanguineous Lebanese Muslim Shiite families that included six individuals affected with odonto-onycho-dermal dysplasia. Using a homozygosity-mapping strategy, we assigned the disease locus to an ~9-cM region at chromosome 2q35-q36.2, located between markers rs16853834 and D2S353, with a maximum multipoint LOD score of 5.7. Screening of candidate genes in this region led us to identify the same c.697G-->T (p.Glu233X) homozygous nonsense mutation in exon 3 of the WNT10A gene in all patients. At the protein level, the mutation is predicted to result in a premature truncated protein of 232 aa instead of 417 aa. This is the first report to our knowledge of a human phenotype resulting from a mutation in WNT10A, and it is the first demonstration of an ectodermal dysplasia caused by an altered WNT signaling pathway, expanding the list of WNT-related diseases.


Nature Genetics | 2005

Mutations of the catalytic subunit of RAB3GAP cause Warburg Micro syndrome

Irene A. Aligianis; Colin A. Johnson; Paul Gissen; Dongrong Chen; Daniel J. Hampshire; Katrin Hoffmann; Esther N Maina; Neil V. Morgan; Louise Tee; Jenny Morton; John R. Ainsworth; Denise Horn; Elisabeth Rosser; Trevor Cole; Irene Stolte-Dijkstra; Karen Fieggen; Jill Clayton-Smith; André Mégarbané; Julian Shield; Ruth Newbury-Ecob; William B. Dobyns; John M. Graham; Klaus W. Kjaer; Mette Warburg; Jacqueline Bond; Richard C. Trembath; Laura W. Harris; Yoshimi Takai; Stefan Mundlos; David Tannahill

Warburg Micro syndrome (WARBM1) is a severe autosomal recessive disorder characterized by developmental abnormalities of the eye and central nervous system and by microgenitalia. We identified homozygous inactivating mutations in RAB3GAP, encoding RAB3 GTPase activating protein, a key regulator of the Rab3 pathway implicated in exocytic release of neurotransmitters and hormones, in 12 families with Micro syndrome. We hypothesize that the underlying pathogenesis of Micro syndrome is a failure of exocytic release of ocular and neurodevelopmental trophic factors.


Journal of Medical Genetics | 2005

Revisiting the craniosynostosis-radial ray hypoplasia association: Baller-Gerold syndrome caused by mutations in the RECQL4 gene

L. Van Maldergem; H A Siitonen; N Jalkh; E Chouery; M De Roy; V Delague; Maximilian Muenke; Ethylin Wang Jabs; Juanliang Cai; L. L. Wang; S E Plon; C. Fourneau; M Kestilä; Yves Gillerot; André Mégarbané; Alain Verloes

Baller-Gerold syndrome (BGS) is a rare autosomal recessive condition with radial aplasia/hypoplasia and craniosynostosis (OMIM 218600). Of >20 cases reported so far, a few appear atypical and have been reassigned to other nosologic entities, including Fanconi anaemia, Roberts SC phocomelia, and Pfeiffer syndromes after demonstration of corresponding cytogenetic or molecular abnormalities. Clinical overlap between BGS, Rothmund-Thomson syndrome (RTS), and RAPADILINO syndrome is noticeable. Because patients with RAPADILINO syndrome and a subset of patients with RTS have RECQL4 mutations, we reassessed two previously reported BGS families and found causal mutations in RECQL4 in both. In the first family, four affected offspring had craniosynostosis and radial defect and one of them developed poikiloderma. In this family, compound heterozygosity for a R1021W missense mutation and a g.2886delT frameshift mutation of exon 9 was found. In the second family, the affected male had craniosynostosis, radial ray defect, poikiloderma, and short stature. He had a homozygous splice site mutation (IVS17-2A>C). In both families, the affected offspring had craniosynostosis, radial defects, and growth retardation, and two developed poikiloderma. Our results confirm that BGS in a subgroup of patients is due to RECQL4 mutations and could be integrated into a clinical spectrum that encompasses RTS and RAPADILINO syndrome.

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Nadine Jalkh

Saint Joseph University

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Gérard Lefranc

University of Montpellier

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Nabiha Salem

Saint Joseph University

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Valérie Cormier-Daire

Necker-Enfants Malades Hospital

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