Sophie Thomas
Paris Descartes University
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Publication
Featured researches published by Sophie Thomas.
Nature Genetics | 2009
Sabina Benko; Judy Fantes; Jeanne Amiel; Dirk-Jan Kleinjan; Sophie Thomas; Jacqueline Ramsay; Negar Jamshidi; Abdelkader Essafi; Simon Heaney; Christopher T. Gordon; David J. McBride; Christelle Golzio; Malcolm Fisher; Paul Perry; Véronique Abadie; Carmen Ayuso; Muriel Holder-Espinasse; Nicky Kilpatrick; Melissa Lees; Arnaud Picard; I. Karen Temple; Paul Q. Thomas; Marie-Paule Vazquez; Michel Vekemans; Hugues Roest Crollius; Nicholas D. Hastie; Arnold Munnich; Heather Etchevers; Anna Pelet; Peter G. Farlie
Pierre Robin sequence (PRS) is an important subgroup of cleft palate. We report several lines of evidence for the existence of a 17q24 locus underlying PRS, including linkage analysis results, a clustering of translocation breakpoints 1.06–1.23 Mb upstream of SOX9, and microdeletions both ∼1.5 Mb centromeric and ∼1.5 Mb telomeric of SOX9. We have also identified a heterozygous point mutation in an evolutionarily conserved region of DNA with in vitro and in vivo features of a developmental enhancer. This enhancer is centromeric to the breakpoint cluster and maps within one of the microdeletion regions. The mutation abrogates the in vitro enhancer function and alters binding of the transcription factor MSX1 as compared to the wild-type sequence. In the developing mouse mandible, the 3-Mb region bounded by the microdeletions shows a regionally specific chromatin decompaction in cells expressing Sox9. Some cases of PRS may thus result from developmental misexpression of SOX9 due to disruption of very-long-range cis-regulatory elements.
Nature Genetics | 2010
Enza Maria Valente; Clare V. Logan; Soumaya Mougou-Zerelli; Jeong Ho Lee; Jennifer L. Silhavy; Francesco Brancati; Miriam Iannicelli; Lorena Travaglini; Sveva Romani; Barbara Illi; Matthew Adams; Katarzyna Szymanska; Annalisa Mazzotta; Ji Eun Lee; Jerlyn Tolentino; Dominika Swistun; Carmelo Salpietro; Carmelo Fede; Stacey Gabriel; Carsten Russ; Kristian Cibulskis; Carrie Sougnez; Friedhelm Hildebrandt; Edgar A. Otto; Susanne Held; Bill H. Diplas; Erica E. Davis; Mario Mikula; Charles M. Strom; Bruria Ben-Zeev
Joubert syndrome (JBTS), related disorders (JSRDs) and Meckel syndrome (MKS) are ciliopathies. We now report that MKS2 and CORS2 (JBTS2) loci are allelic and caused by mutations in TMEM216, which encodes an uncharacterized tetraspan transmembrane protein. Individuals with CORS2 frequently had nephronophthisis and polydactyly, and two affected individuals conformed to the oro-facio-digital type VI phenotype, whereas skeletal dysplasia was common in fetuses affected by MKS. A single G218T mutation (R73L in the protein) was identified in all cases of Ashkenazi Jewish descent (n = 10). TMEM216 localized to the base of primary cilia, and loss of TMEM216 in mutant fibroblasts or after knockdown caused defective ciliogenesis and centrosomal docking, with concomitant hyperactivation of RhoA and Dishevelled. TMEM216 formed a complex with Meckelin, which is encoded by a gene also mutated in JSRDs and MKS. Disruption of tmem216 expression in zebrafish caused gastrulation defects similar to those in other ciliary morphants. These data implicate a new family of proteins in the ciliopathies and further support allelism between ciliopathy disorders.
Nature Genetics | 2011
Audrey Putoux; Sophie Thomas; Karlien L.M. Coene; Erica E. Davis; Yasemin Alanay; Gonul Ogur; Elif Uz; Daniela Buzas; Céline Gomes; Sophie Patrier; Christopher L. Bennett; Nadia Elkhartoufi; Marie-Hélène Saint Frison; Luc Rigonnot; Nicole Joyé; Solenn Pruvost; Gülen Eda Utine; Koray Boduroglu; Patrick Nitschke; Laura Fertitta; Christel Thauvin-Robinet; Arnold Munnich; Valérie Cormier-Daire; Raoul C. M. Hennekam; Estelle Colin; Nurten Akarsu; Christine Bole-Feysot; Nicolas Cagnard; Alain Schmitt; Nicolas Goudin
KIF7, the human ortholog of Drosophila Costal2, is a key component of the Hedgehog signaling pathway. Here we report mutations in KIF7 in individuals with hydrolethalus and acrocallosal syndromes, two multiple malformation disorders with overlapping features that include polydactyly, brain abnormalities and cleft palate. Consistent with a role of KIF7 in Hedgehog signaling, we show deregulation of most GLI transcription factor targets and impaired GLI3 processing in tissues from individuals with KIF7 mutations. KIF7 is also a likely contributor of alleles across the ciliopathy spectrum, as sequencing of a diverse cohort identified several missense mutations detrimental to protein function. In addition, in vivo genetic interaction studies indicated that knockdown of KIF7 could exacerbate the phenotype induced by knockdown of other ciliopathy transcripts. Our data show the role of KIF7 in human primary cilia, especially in the Hedgehog pathway through the regulation of GLI targets, and expand the clinical spectrum of ciliopathies.
American Journal of Human Genetics | 2007
Christelle Golzio; Sophie Thomas; Soumaya Mougou-Zrelli; Bettina Grattagliano-Bessières; Maryse Bonnière; Sophie Delahaye; Arnold Munnich; Férechté Encha-Razavi; Stanislas Lyonnet; Michel Vekemans; Tania Attié-Bitach; Heather Etchevers
Retinoic acid (RA) is a potent teratogen in all vertebrates when tight homeostatic controls on its endogenous dose, location, or timing are perturbed during early embryogenesis. STRA6 encodes an integral cell-membrane protein that favors RA uptake from soluble retinol-binding protein; its transcription is directly regulated by RA levels. Molecular analysis of STRA6 was undertaken in two human fetuses from consanguineous families we previously described with Matthew-Wood syndrome in a context of severe microphthalmia, pulmonary agenesis, bilateral diaphragmatic eventration, duodenal stenosis, pancreatic malformations, and intrauterine growth retardation. The fetuses had either a homozygous insertion/deletion in exon 2 or a homozygous insertion in exon 7 predicting a premature stop codon in STRA6 transcripts. Five other fetuses presenting at least one of the two major signs of clinical anophthalmia or pulmonary hypoplasia with at least one of the two associated signs of diaphragmatic closure defect or cardiopathy had no STRA6 mutations. These findings suggest a molecular basis for the prenatal manifestations of Matthew-Wood syndrome and suggest that phenotypic overlap with other associations may be due to genetic heterogeneity of elements common to the RA- and fibroblast growth factor-signaling cascades.
Journal of Medical Genetics | 2011
Sabina Benko; Christopher T. Gordon; Delphine Mallet; Rajini Sreenivasan; Christel Thauvin-Robinet; Atle Brendehaug; Sophie Thomas; Ove Bruland; Michel David; Marc Nicolino; Audrey Labalme; Damien Sanlaville; Patrick Callier; Valérie Malan; Frédéric Huet; Frédérique Dijoud; Arnold Munnich; Laurence Faivre; Jeanne Amiel; Vincent R. Harley; Gunnar Houge; Yves Morel; Stanislas Lyonnet
Background The early gonad is bipotential and can differentiate into either a testis or an ovary. In XY embryos, the SRY gene triggers testicular differentiation and subsequent male development via its action on a single gene, SOX9. The supporting cell lineage of the bipotential gonad will differentiate as testicular Sertoli cells if SOX9 is expressed and conversely will differentiate as ovarian granulosa cells when SOX9 expression is switched off. Results Through copy number variation mapping this study identified duplications upstream of the SOX9 gene in three families with an isolated 46,XX disorder of sex development (DSD) and an overlapping deletion in one family with two probands with an isolated 46,XY DSD. The region of overlap between these genomic alterations, and previously reported deletions and duplications at the SOX9 locus associated with syndromic and isolated cases of 46,XX and 46,XY DSD, reveal a minimal non-coding 78 kb sex determining region located in a gene desert 517–595 kb upstream of the SOX9 promoter. Conclusions These data indicate that a non-coding regulatory region critical for gonadal SOX9 expression and subsequent normal sex development is located far upstream of the SOX9 promoter. Its copy number variations are the genetic basis of isolated 46,XX and 46,XY DSDs of variable severity (ranging from mild to complete sex reversal). It is proposed that this region contains a gonad specific SOX9 transcriptional enhancer(s), the gain or loss of which results in genomic imbalance sufficient to activate or inactivate SOX9 gonadal expression in a tissue specific manner, switch sex determination, and result in isolated DSD.
American Journal of Human Genetics | 2010
Valérie Malan; Diana Rajan; Sophie Thomas; Adam Shaw; Hélène Louis Picard; Valérie Layet; Marianne Till; Arie van Haeringen; Geert Mortier; Sheela Nampoothiri; Silvija Puseljic; Laurence Legeai-Mallet; Nigel P. Carter; Michel Vekemans; Arnold Munnich; Raoul C. M. Hennekam; Laurence Colleaux; Valérie Cormier-Daire
By using a combination of array comparative genomic hybridization and a candidate gene approach, we identified nuclear factor I/X (NFIX) deletions or nonsense mutation in three sporadic cases of a Sotos-like overgrowth syndrome with advanced bone age, macrocephaly, developmental delay, scoliosis, and unusual facies. Unlike the aforementioned human syndrome, Nfix-deficient mice are unable to gain weight and die in the first 3 postnatal weeks, while they also present with a spinal deformation and decreased bone mineralization. These features prompted us to consider NFIX as a candidate gene for Marshall-Smith syndrome (MSS), a severe malformation syndrome characterized by failure to thrive, respiratory insufficiency, accelerated osseous maturation, kyphoscoliosis, osteopenia, and unusual facies. Distinct frameshift and splice NFIX mutations that escaped nonsense-mediated mRNA decay (NMD) were identified in nine MSS subjects. NFIX belongs to the Nuclear factor one (NFI) family of transcription factors, but its specific function is presently unknown. We demonstrate that NFIX is normally expressed prenatally during human brain development and skeletogenesis. These findings demonstrate that allelic NFIX mutations trigger distinct phenotypes, depending specifically on their impact on NMD.
Human Molecular Genetics | 2008
Sophie Thomas; Marie Thomas; Patrick Wincker; Candice Babarit; Pu-Ting Xu; Marcy C. Speer; Arnold Munnich; Stanislas Lyonnet; Michel Vekemans; Heather Etchevers
The fields of both developmental and stem cell biology explore how functionally distinct cell types arise from a self-renewing founder population. Multipotent, proliferative human neural crest cells (hNCC) develop toward the end of the first month of pregnancy. It is assumed that most differentiate after migrating throughout the organism, although in animal models neural crest stem cells reportedly persist in postnatal tissues. Molecular pathways leading over time from an invasive mesenchyme to differentiated progeny such as the dorsal root ganglion, the maxillary bone or the adrenal medulla are altered in many congenital diseases. To identify additional components of such pathways, we derived and maintained self-renewing hNCC lines from pharyngulas. We show that, unlike their animal counterparts, hNCC are able to self-renew ex vivo under feeder-free conditions. While cross species comparisons showed extensive overlap between human, mouse and avian NCC transcriptomes, some molecular cascades are only active in the human cells, correlating with phenotypic differences. Furthermore, we found that the global hNCC molecular profile is highly similar to that of pluripotent embryonic stem cells when compared with other stem cell populations or hNCC derivatives. The pluripotency markers NANOG, POU5F1 and SOX2 are also expressed by hNCC, and a small subset of transcripts can unambiguously identify hNCC among other cell types. The hNCC molecular profile is thus both unique and globally characteristic of uncommitted stem cells.
Human Mutation | 2014
Sophie Thomas; Kevin J. Wright; Stéphanie Le Corre; Alessia Micalizzi; Marta Romani; Avinash Abhyankar; Julien Saada; Isabelle Perrault; Jeanne Amiel; Julie Litzler; Emilie Filhol; Nadia Elkhartoufi; Mandy Kwong; Jean-Laurent Casanova; Nathalie Boddaert; Wolfgang Baehr; Stanislas Lyonnet; Arnold Munnich; Lydie Burglen; Nicolas Chassaing; Ferechté Encha-Ravazi; Michel Vekemans; Joseph G. Gleeson; Enza Maria Valente; Peter K. Jackson; Iain A. Drummond; Sophie Saunier; Tania Attié-Bitach
Joubert syndrome (JS) is characterized by a distinctive cerebellar structural defect, namely the « molar tooth sign ». JS is genetically heterogeneous, involving 20 genes identified to date, which are all required for cilia biogenesis and/or function. In a consanguineous family with JS associated with optic nerve coloboma, kidney hypoplasia, and polydactyly, combined exome sequencing and mapping identified a homozygous splice‐site mutation in PDE6D, encoding a prenyl‐binding protein. We found that pde6d depletion in zebrafish leads to renal and retinal developmental anomalies and wild‐type but not mutant PDE6D is able to rescue this phenotype. Proteomic analysis identified INPP5E, whose mutations also lead to JS or mental retardation, obesity, congenital retinal dystrophy, and micropenis syndromes, as novel prenyl‐dependent cargo of PDE6D. Mutant PDE6D shows reduced binding to INPP5E, which fails to localize to primary cilia in patient fibroblasts and tissues. Furthermore, mutant PDE6D is unable to bind to GTP‐bound ARL3, which acts as a cargo‐release factor for PDE6D‐bound INPP5E. Altogether, these results indicate that PDE6D is required for INPP5E ciliary targeting and suggest a broader role for PDE6D in targeting other prenylated proteins to the cilia. This study identifies PDE6D as a novel JS disease gene and provides the first evidence of prenyl‐binding‐dependent trafficking in ciliopathies.
Nature Medicine | 2012
Jeremy C. McIntyre; Erica E. Davis; Ariell M. Joiner; Corey L. Williams; I-Chun Tsai; Paul M. Jenkins; Dyke P. McEwen; Lian Zhang; John Escobado; Sophie Thomas; Katarzyna Szymanska; Colin A. Johnson; Philip L. Beales; Eric D. Green; James C. Mullikin; Nisc Comparative Sequencing Program; Aniko Sabo; Donna M. Muzny; Richard A. Gibbs; Tania Attié-Bitach; Bradley K. Yoder; Randall R. Reed; Nicholas Katsanis; Jeffrey R. Martens
Cilia are evolutionarily conserved microtubule-based organelles that are crucial for diverse biological functions, including motility, cell signaling and sensory perception. In humans, alterations in the formation and function of cilia manifest clinically as ciliopathies, a growing class of pleiotropic genetic disorders. Despite the substantial progress that has been made in identifying genes that cause ciliopathies, therapies for these disorders are not yet available to patients. Although mice with a hypomorphic mutation in the intraflagellar transport protein IFT88 (Ift88Tg737Rpw mice, also known as ORPK mice) have been well studied, the relevance of IFT88 mutations to human pathology is unknown. We show that a mutation in IFT88 causes a hitherto unknown human ciliopathy. In vivo complementation assays in zebrafish and mIMCD3 cells show the pathogenicity of this newly discovered allele. We further show that ORPK mice are functionally anosmic as a result of the loss of cilia on their olfactory sensory neurons (OSNs). Notably, adenoviral-mediated expression of IFT88 in mature, fully differentiated OSNs of ORPK mice is sufficient to restore ciliary structures and rescue olfactory function. These studies are the first to use in vivo therapeutic treatment to reestablish cilia in a mammalian ciliopathy. More broadly, our studies indicate that gene therapy is a viable option for cellular and functional rescue of the complex ciliary organelle in established differentiated cells.
Human Mutation | 2009
Soumaya Mougou-Zerelli; Sophie Thomas; Emmanuelle Szenker; Sophie Audollent; Nadia Elkhartoufi; Candice Babarit; S. Romano; Rémi Salomon; Jeanne Amiel; Chantal Esculpavit; Marie Gonzales; Estelle Escudier; Bruno Leheup; Philippe Loget; Sylvie Odent; Joëlle Roume; Marion Gerard; Anne-Lise Delezoide; Suonavy Khung; Sophie Patrier; Marie-Pierre Cordier; Raymonde Bouvier; Jelena Martinovic; Marie-Claire Gubler; Nathalie Boddaert; Arnold Munnich; Férechté Encha-Razavi; Enza Maria Valente; Ali Saad; Sophie Saunier
Meckel‐Gruber syndrome (MKS) is a lethal fetal disorder characterized by diffuse renal cystic dysplasia, polydactyly, a brain malformation that is usually occipital encephalocele, and/or vermian agenesis, with intrahepatic biliary duct proliferation. Joubert syndrome (JBS) is a viable neurological disorder with a characteristic “molar tooth sign” (MTS) on axial images reflecting cerebellar vermian hypoplasia/dysplasia. Both conditions are classified as ciliopathies with an autosomal recessive mode of inheritance. Allelism of MKS and JBS has been reported for TMEM67/MKS3, CEP290/MKS4, and RPGRIP1L/MKS5. Recently, one homozygous splice mutation with a founder effect was reported in the CC2D2A gene in Finnish fetuses with MKS, defining the 6th locus for MKS. Shortly thereafter, CC2D2A mutations were also reported in JBS. The analysis of the CC2D2A gene in our series of MKS fetuses, identified 14 novel truncating mutations in 11 cases. These results confirm the involvement of CC2D2A in MKS and reveal a major contribution of CC2D2A to the disease. We also identified three missense CC2D2A mutations in two JBS cases. Therefore, and in accordance with the data reported regarding RPGRIP1L, our results indicate phenotype–genotype correlations, as missense and presumably hypomorphic mutations lead to JBS while all null alleles lead to MKS. Hum Mutat 30:1–9, 2009.