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Dive into the research topics where Yasemin Alanay is active.

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Featured researches published by Yasemin Alanay.


American Journal of Human Genetics | 2010

Mutations in the Gene Encoding the RER Protein FKBP65 Cause Autosomal-Recessive Osteogenesis Imperfecta

Yasemin Alanay; Hrispima Avaygan; Natalia Camacho; G. Eda Utine; Koray Boduroglu; Dilek Aktas; Mehmet Alikasifoglu; Ergul Tuncbilek; Diclehan Orhan; Filiz Bakar; Bernard Zabel; Andrea Superti-Furga; Leena Bruckner-Tuderman; Cindy J.R. Curry; Shawna M. Pyott; Peter H. Byers; David R. Eyre; Dustin Baldridge; Brendan Lee; Amy E. Merrill; Elaine C. Davis; Daniel H. Cohn; Nurten Akarsu; Deborah Krakow

Osteogenesis imperfecta is a clinically and genetically heterogeneous brittle bone disorder that results from defects in the synthesis, structure, or posttranslational modification of type I procollagen. Dominant forms of OI result from mutations in COL1A1 or COL1A2, which encode the chains of the type I procollagen heterotrimer. The mildest form of OI typically results from diminished synthesis of structurally normal type I procollagen, whereas moderately severe to lethal forms of OI usually result from structural defects in one of the type I procollagen chains. Recessively inherited OI, usually phenotypically severe, has recently been shown to result from defects in the prolyl-3-hydroxylase complex that lead to the absence of a single 3-hydroxyproline at residue 986 of the alpha1(I) triple helical domain. We studied a cohort of five consanguineous Turkish families, originating from the Black Sea region of Turkey, with moderately severe recessively inherited OI and identified a novel locus for OI on chromosome 17. In these families, and in a Mexican-American family, homozygosity for mutations in FKBP10, which encodes FKBP65, a chaperone that participates in type I procollagen folding, was identified. Further, we determined that FKBP10 mutations affect type I procollagen secretion. These findings identify a previously unrecognized mechanism in the pathogenesis of OI.


Nature Genetics | 2011

KIF7 mutations cause fetal hydrolethalus and acrocallosal syndromes

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 | 2011

Mutations in the TGFβ Binding-Protein-Like Domain 5 of FBN1 Are Responsible for Acromicric and Geleophysic Dysplasias

Carine Le Goff; Clémentine Mahaut; Lauren W. Wang; Slimane Allali; Avinash Abhyankar; Sacha A. Jensen; Louise Zylberberg; Gwenaëlle Collod-Béroud; Damien Bonnet; Yasemin Alanay; Angela F. Brady; Marie-Pierre Cordier; Koenraad Devriendt; David Geneviève; Pelin Özlem Simsek Kiper; Hiroshi Kitoh; Deborah Krakow; Sally Ann Lynch; Martine Le Merrer; André Mégarbané; Geert Mortier; Sylvie Odent; Michel Polak; Marianne Rohrbach; David Sillence; Irene Stolte-Dijkstra; Andrea Superti-Furga; David L. Rimoin; Vicken Topouchian; Sheila Unger

Geleophysic (GD) and acromicric dysplasia (AD) belong to the acromelic dysplasia group and are both characterized by severe short stature, short extremities, and stiff joints. Although AD has an unknown molecular basis, we have previously identified ADAMTSL2 mutations in a subset of GD patients. After exome sequencing in GD and AD cases, we selected fibrillin 1 (FBN1) as a candidate gene, even though mutations in this gene have been described in Marfan syndrome, which is characterized by tall stature and arachnodactyly. We identified 16 heterozygous FBN1 mutations that are all located in exons 41 and 42 and encode TGFβ-binding protein-like domain 5 (TB5) of FBN1 in 29 GD and AD cases. Microfibrillar network disorganization and enhanced TGFβ signaling were consistent features in GD and AD fibroblasts. Importantly, a direct interaction between ADAMTSL2 and FBN1 was demonstrated, suggesting a disruption of this interaction as the underlying mechanism of GD and AD phenotypes. Although enhanced TGFβ signaling caused by FBN1 mutations can trigger either Marfan syndrome or GD and AD, our findings support the fact that TB5 mutations in FBN1 are responsible for short stature phenotypes.


American Journal of Medical Genetics Part A | 2004

Phenotypic and Molecular Characterization of Bruck Syndrome (Osteogenesis Imperfecta With Contractures of the Large Joints) Caused by a Recessive Mutation in PLOD2

Russia Ha-Vinh; Yasemin Alanay; Ruud A. Bank; Ana Belinda Campos-Xavier; Andreas Zankl; Andrea Superti-Furga; Luisa Bonafé

Bruck syndrome (BS) is a recessively‐inherited phenotypic disorder featuring the unusual combination of skeletal changes resembling osteogenesis imperfecta (OI) with congenital contractures of the large joints. Clinical heterogeneity is apparent in cases reported thus far. While the genes coding for collagen 1 chains are unaffected in BS, there is biochemical evidence for a defect in the hydroxylation of lysine residues in collagen 1 telopeptides. One BS locus has been mapped at 17p12, but more recently, two mutations in the lysyl hydroxylase 2 gene (PLOD2, 3q23‐q24) have been identified in BS, showing genetic heterogeneity. The proportion of BS cases linked to 17p22 (BS type 1) or caused by mutations in PLOD2 (BS type 2) is still uncertain, and phenotypic correlations are lacking. We report on a boy who had congenital contractures with pterygia at birth and severe OI‐like osteopenia and multiple fractures. His urine contained high amounts of hydroxyproline but low amounts of collagen crosslinks degradation products; and he was shown to be homozygous for a novel mutation leading to an Arg598His substitution in PLOD2. The mutation is adjacent to the two mutations previously reported (Gly601Val and Thr608Ile), suggesting a functionally important hotspot in PLOD2. The combination of pterygia with bone fragility, as illustrated by this case, is difficult to explain; it suggests that telopeptide lysyl hydroxylation must be involved in prenatal joint formation and morphogenesis. Collagen degradation products in urine and mutation analysis of PLOD2 may be used to diagnose BS and differentiate it from OI.


Nature Genetics | 2011

Genetic deficiency of tartrate-resistant acid phosphatase associated with skeletal dysplasia, cerebral calcifications and autoimmunity

Ekkehart Lausch; Andreas R. Janecke; Matthias Bros; Stefanie Trojandt; Yasemin Alanay; Corinne De Laet; Christian C.A. Hübner; Peter Meinecke; Gen Nishimura; Mari Matsuo; Yoshiko Hirano; Sylvie Tenoutasse; Andrea Kiss; Rafael Fabiano Machado Rosa; Sharon Unger; Raffaele Renella; Luisa Bonafé; Jürgen Spranger; Sheila Unger; Bernhard Zabel; Andrea Superti-Furga

Vertebral and metaphyseal dysplasia, spasticity with cerebral calcifications, and strong predisposition to autoimmune diseases are the hallmarks of the genetic disorder spondyloenchondrodysplasia. We mapped a locus in five consanguineous families to chromosome 19p13 and identified mutations in ACP5, which encodes tartrate-resistant phosphatase (TRAP), in 14 affected individuals and showed that these mutations abolish enzyme function in the serum and cells of affected individuals. Phosphorylated osteopontin, a protein involved in bone reabsorption and in immune regulation, accumulates in serum, urine and cells cultured from TRAP-deficient individuals. Case-derived dendritic cells exhibit an altered cytokine profile and are more potent than matched control cells in stimulating allogeneic T cell proliferation in mixed lymphocyte reactions. These findings shed new light on the role of osteopontin and its regulation by TRAP in the pathogenesis of common autoimmune disorders.


American Journal of Human Genetics | 2012

Haploinsufficiency of a Spliceosomal GTPase Encoded by EFTUD2 Causes Mandibulofacial Dysostosis with Microcephaly

Lijia Huang; Jeremy Schwartzentruber; Stuart Douglas; Danielle C. Lynch; Chandree L. Beaulieu; Maria Leine Guion-Almeida; Roseli Maria Zechi-Ceide; Blanca Gener; Gabriele Gillessen-Kaesbach; Caroline Nava; Geneviève Baujat; Denise Horn; Usha Kini; Almuth Caliebe; Yasemin Alanay; Gülen Eda Utine; Dorit Lev; Jürgen Kohlhase; Arthur W. Grix; Dietmar R. Lohmann; Ute Hehr; Detlef Böhm; Jacek Majewski; Dennis E. Bulman; Dagmar Wieczorek; Kym M. Boycott

Mandibulofacial dysostosis with microcephaly (MFDM) is a rare sporadic syndrome comprising craniofacial malformations, microcephaly, developmental delay, and a recognizable dysmorphic appearance. Major sequelae, including choanal atresia, sensorineural hearing loss, and cleft palate, each occur in a significant proportion of affected individuals. We present detailed clinical findings in 12 unrelated individuals with MFDM; these 12 individuals compose the largest reported cohort to date. To define the etiology of MFDM, we employed whole-exome sequencing of four unrelated affected individuals and identified heterozygous mutations or deletions of EFTUD2 in all four. Validation studies of eight additional individuals with MFDM demonstrated causative EFTUD2 mutations in all affected individuals tested. A range of EFTUD2-mutation types, including null alleles and frameshifts, is seen in MFDM, consistent with haploinsufficiency; segregation is de novo in all cases assessed to date. U5-116kD, the protein encoded by EFTUD2, is a highly conserved spliceosomal GTPase with a central regulatory role in catalytic splicing and post-splicing-complex disassembly. MFDM is the first multiple-malformation syndrome attributed to a defect of the major spliceosome. Our findings significantly extend the range of reported spliceosomal phenotypes in humans and pave the way for further investigation in related conditions such as Treacher Collins syndrome.


American Journal of Human Genetics | 2011

Craniosynostosis and multiple skeletal anomalies in humans and zebrafish result from a defect in the localized degradation of retinoic acid.

Kathrin Laue; Hans-Martin Pogoda; Philip B. Daniel; Arie van Haeringen; Yasemin Alanay; Simon von Ameln; Martin Rachwalski; Timothy R. Morgan; Mary J. Gray; Martijn H. Breuning; Gregory M. Sawyer; Andrew J. Sutherland-Smith; Peter G. J. Nikkels; Christian Kubisch; Wilhelm Bloch; Bernd Wollnik; Matthias Hammerschmidt; Stephen P. Robertson

Excess exogenous retinoic acid (RA) has been well documented to have teratogenic effects in the limb and craniofacial skeleton. Malformations that have been observed in this context include craniosynostosis, a common developmental defect of the skull that occurs in 1 in 2500 individuals and results from premature fusion of the cranial sutures. Despite these observations, a physiological role for RA during suture formation has not been demonstrated. Here, we present evidence that genetically based alterations in RA signaling interfere with human development. We have identified human null and hypomorphic mutations in the gene encoding the RA-degrading enzyme CYP26B1 that lead to skeletal and craniofacial anomalies, including fusions of long bones, calvarial bone hypoplasia, and craniosynostosis. Analyses of murine embryos exposed to a chemical inhibitor of Cyp26 enzymes and zebrafish lines with mutations in cyp26b1 suggest that the endochondral bone fusions are due to unrestricted chondrogenesis at the presumptive sites of joint formation within cartilaginous templates, whereas craniosynostosis is induced by a defect in osteoblastic differentiation. Ultrastructural analysis, in situ expression studies, and in vitro quantitative RT-PCR experiments of cellular markers of osseous differentiation indicate that the most likely cause for these phenomena is aberrant osteoblast-osteocyte transitioning. This work reveals a physiological role for RA in partitioning skeletal elements and in the maintenance of cranial suture patency.


Journal of Medical Genetics | 2006

A molecular and clinical study of Larsen syndrome caused by mutations in FLNB

Louise S. Bicknell; Claire Farrington-Rock; Yousef Shafeghati; Patrick Rump; Yasemin Alanay; Yves Alembik; Navid Al-Madani; Helen V. Firth; Mohammad Hassan Karimi-Nejad; Chong Ae Kim; Kathryn Leask; Melissa Maisenbacher; Ellen Moran; John G. Pappas; Paolo Prontera; Thomy de Ravel; Jean-Pierre Fryns; Elizabeth Sweeney; Alan Fryer; Sheila Unger; Louise C. Wilson; Ralph S. Lachman; David L. Rimoin; Daniel H. Cohn; Deborah Krakow; Stephen P. Robertson

Background: Larsen syndrome is an autosomal dominant osteochondrodysplasia characterised by large-joint dislocations and craniofacial anomalies. Recently, Larsen syndrome was shown to be caused by missense mutations or small inframe deletions in FLNB, encoding the cytoskeletal protein filamin B. To further delineate the molecular causes of Larsen syndrome, 20 probands with Larsen syndrome together with their affected relatives were evaluated for mutations in FLNB and their phenotypes studied. Methods: Probands were screened for mutations in FLNB using a combination of denaturing high-performance liquid chromatography, direct sequencing and restriction endonuclease digestion. Clinical and radiographical features of the patients were evaluated. Results and discussion: The clinical signs most frequently associated with a FLNB mutation are the presence of supernumerary carpal and tarsal bones and short, broad, spatulate distal phalanges, particularly of the thumb. All individuals with Larsen syndrome-associated FLNB mutations are heterozygous for either missense or small inframe deletions. Three mutations are recurrent, with one mutation, 5071G→A, observed in 6 of 20 subjects. The distribution of mutations within the FLNB gene is non-random, with clusters of mutations leading to substitutions in the actin-binding domain and filamin repeats 13–17 being the most common cause of Larsen syndrome. These findings collectively define autosomal dominant Larsen syndrome and demonstrate clustering of causative mutations in FLNB.


American Journal of Human Genetics | 2010

Disruption of ALX1 Causes Extreme Microphthalmia and Severe Facial Clefting: Expanding the Spectrum of Autosomal-Recessive ALX-Related Frontonasal Dysplasia

Elif Uz; Yasemin Alanay; Dilek Aktas; Ibrahim Vargel; Safak Gucer; Gökhan Tunçbilek; Ferdinand von Eggeling; Engin Yilmaz; Ozgur Deren; Nicole Posorski; Hilal Özdağ; Thomas Liehr; Sevim Balci; Mehmet Alikasifoglu; Bernd Wollnik; Nurten Akarsu

We present an autosomal-recessive frontonasal dysplasia (FND) characterized by bilateral extreme microphthalmia, bilateral oblique facial cleft, complete cleft palate, hypertelorism, wide nasal bridge with hypoplasia of the ala nasi, and low-set, posteriorly rotated ears in two distinct families. Using Affymetrix 250K SNP array genotyping and homozygosity mapping, we mapped this clinical entity to chromosome 12q21. In one of the families, three siblings were affected, and CNV analysis of the critical region showed a homozygous 3.7 Mb deletion containing the ALX1 (CART1) gene, which encodes the aristaless-like homeobox 1 transcription factor. In the second family we identified a homozygous donor-splice-site mutation (c.531+1G > A) in the ALX1 gene, providing evidence that complete loss of function of ALX1 protein causes severe disruption of early craniofacial development. Unlike loss of its murine ortholog, loss of human ALX1 does not result in neural-tube defects; however, it does severely affect the orchestrated fusion between frontonasal, nasomedial, nasolateral, and maxillary processes during early-stage embryogenesis. This study further expands the spectrum of the recently recognized autosomal-recessive ALX-related FND phenotype in humans.


Human Molecular Genetics | 2009

ALX4 dysfunction disrupts craniofacial and epidermal development

Hülya Kayserili; Elif Uz; Carien M. Niessen; Ibrahim Vargel; Yasemin Alanay; Gökhan Tunçbilek; Gökhan Yigit; Oya Uyguner; Sukru Candan; Hamza Okur; Serkan Kaygin; Sevim Balci; Emin Mavili; Mehmet Alikasifoglu; Ingo Haase; Bernd Wollnik; Nurten Akarsu

Genetic control of craniofacial morphogenesis requires a complex interaction of numerous genes encoding factors essential for patterning and differentiation. We present two Turkish families with a new autosomal recessive frontofacial dysostosis syndrome characterized by total alopecia, a large skull defect, coronal craniosynostosis, hypertelorism, severely depressed nasal bridge and ridge, bifid nasal tip, hypogonadism, callosal body agenesis and mental retardation. Using homozygosity mapping, we mapped the entity to chromosome 11p11.2-q12.3 and subsequently identified a homozygous c.793C-->T nonsense mutation in the human ortholog of the mouse aristaless-like homeobox 4 (ALX4) gene. This mutation is predicted to result in a premature stop codon (p.R265X) of ALX4 truncating 146 amino acids of the protein including a part of the highly conserved homeodomain and the C-terminal paired tail domain. Although the RNA is stable and not degraded by nonsense-mediated RNA decay, the mutant protein is likely to be non-functional. In a skin biopsy of an affected individual, we observed a hypomorphic interfollicular epidermis with reduced suprabasal layers associated with impaired interfollicular epidermal differentiation. Hair follicle-like structures were present but showed altered differentiation. Our data indicate that ALX4 plays a critical role both in craniofacial development as in skin and hair follicle development in human.

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Deborah Krakow

University of California

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Bernd Wollnik

University of Göttingen

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