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Featured researches published by Lydie Da Costa.


American Journal of Human Genetics | 2006

Ribosomal Protein S24 Gene Is Mutated in Diamond-Blackfan Anemia

Hanna T. Gazda; Agnieszka Grabowska; Lilia B. Merida-Long; Elzbieta Latawiec; Hal E. Schneider; Jeffrey M. Lipton; Adrianna Vlachos; Eva Atsidaftos; Sarah E. Ball; Karen A. Orfali; Edyta Niewiadomska; Lydie Da Costa; Gil Tchernia; Charlotte M. Niemeyer; Joerg J. Meerpohl; Joachim Stahl; Gerhard Schratt; Bertil Glader; Karen Backer; Carolyn Wong; David G. Nathan; Alan H. Beggs; Colin A. Sieff

Diamond-Blackfan anemia (DBA) is a rare congenital red-cell aplasia characterized by anemia, bone-marrow erythroblastopenia, and congenital anomalies and is associated with heterozygous mutations in the ribosomal protein (RP) S19 gene (RPS19) in approximately 25% of probands. We report identification of de novo nonsense and splice-site mutations in another RP, RPS24 (encoded by RPS24 [10q22-q23]) in approximately 2% of RPS19 mutation-negative probands. This finding strongly suggests that DBA is a disorder of ribosome synthesis and that mutations in other RP or associated genes that lead to disrupted ribosomal biogenesis and/or function may also cause DBA.


Human Mutation | 2010

The ribosomal basis of diamond‐blackfan anemia: mutation and database update

Ilenia Boria; Emanuela Garelli; Hanna T. Gazda; Anna Aspesi; Paola Quarello; Elisa Pavesi; Daniela Ferrante; Joerg J. Meerpohl; Mutlu Kartal; Lydie Da Costa; Alexis Proust; Thierry Leblanc; Maud Simansour; Niklas Dahl; Anne-Sophie Fröjmark; Dagmar Pospisilova; Radek Cmejla; Alan H. Beggs; Mee Rie Sheen; Michael Landowski; Christopher Buros; Catherine Clinton; Lori J. Dobson; Adrianna Vlachos; Eva Atsidaftos; Jeffrey M. Lipton; Steven R. Ellis; Ugo Ramenghi; Irma Dianzani

Diamond‐Blackfan Anemia (DBA) is characterized by a defect of erythroid progenitors and, clinically, by anemia and malformations. DBA exhibits an autosomal dominant pattern of inheritance with incomplete penetrance. Currently nine genes, all encoding ribosomal proteins (RP), have been found mutated in approximately 50% of patients. Experimental evidence supports the hypothesis that DBA is primarily the result of defective ribosome synthesis. By means of a large collaboration among six centers, we report here a mutation update that includes nine genes and 220 distinct mutations, 56 of which are new. The DBA Mutation Database now includes data from 355 patients. Of those where inheritance has been examined, 125 patients carry a de novo mutation and 72 an inherited mutation. Mutagenesis may be ascribed to slippage in 65.5% of indels, whereas CpG dinucleotides are involved in 23% of transitions. Using bioinformatic tools we show that gene conversion mechanism is not common in RP genes mutagenesis, notwithstanding the abundance of RP pseudogenes. Genotype–phenotype analysis reveals that malformations are more frequently associated with mutations in RPL5 and RPL11 than in the other genes. All currently reported DBA mutations together with their functional and clinical data are included in the DBA Mutation Database. Hum Mutat 31:1269–1279, 2010.


American Journal of Human Genetics | 2010

A Dominant Mutation in the Gene Encoding the Erythroid Transcription Factor KLF1 Causes a Congenital Dyserythropoietic Anemia

Lionel Arnaud; Carole Saison; Virginie Helias; Nicole Lucien; Dominique Steschenko; Marie-Catherine Giarratana; Claude Préhu; Bernard Foliguet; Lory Montout; Alexandre G. de Brevern; Alain Francina; Pierre Ripoche; Odile Fenneteau; Lydie Da Costa; Thierry Peyrard; Gail Coghlan; Niels Ove Illum; Henrik Birgens; Hannah Tamary; Achille Iolascon; Jean Delaunay; Gil Tchernia; Jean-Pierre Cartron

The congenital dyserythropoietic anemias (CDAs) are inherited red blood cell disorders whose hallmarks are ineffective erythropoiesis, hemolysis, and morphological abnormalities of erythroblasts in bone marrow. We have identified a missense mutation in KLF1 of patients with a hitherto unclassified CDA. KLF1 is an erythroid transcription factor, and extensive studies in mouse models have shown that it plays a critical role in the expression of globin genes, but also in the expression of a wide spectrum of genes potentially essential for erythropoiesis. The unique features of this CDA confirm the key role of KLF1 during human erythroid differentiation. Furthermore, we show that the mutation has a dominant-negative effect on KLF1 transcriptional activity and unexpectedly abolishes the expression of the water channel AQP1 and the adhesion molecule CD44. Thus, the study of this disease-causing mutation in KLF1 provides further insights into the roles of this transcription factor during erythropoiesis in humans.


Blood Reviews | 2013

Hereditary spherocytosis, elliptocytosis, and other red cell membrane disorders☆

Lydie Da Costa; Julie Galimand; Odile Fenneteau; Narla Mohandas

Hereditary spherocytosis and elliptocytosis are the two most common inherited red cell membrane disorders resulting from mutations in genes encoding various red cell membrane and skeletal proteins. Red cell membrane, a composite structure composed of lipid bilayer linked to spectrin-based membrane skeleton is responsible for the unique features of flexibility and mechanical stability of the cell. Defects in various proteins involved in linking the lipid bilayer to membrane skeleton result in loss in membrane cohesion leading to surface area loss and hereditary spherocytosis while defects in proteins involved in lateral interactions of the spectrin-based skeleton lead to decreased mechanical stability, membrane fragmentation and hereditary elliptocytosis. The disease severity is primarily dependent on the extent of membrane surface area loss. Both these diseases can be readily diagnosed by various laboratory approaches that include red blood cell cytology, flow cytometry, ektacytometry, electrophoresis of the red cell membrane proteins, and mutational analysis of gene encoding red cell membrane proteins.


Free Radical Biology and Medicine | 1998

Reactive oxygen species activate focal adhesion kinase, paxillin and p130cas tyrosine phosphorylation in endothelial cells.

Alexia Gozin; Elisabeth Franzini; Valérie Andrieu; Lydie Da Costa; Emmanuelle Rollet-Labelle; Catherine Pasquier

Reactive oxygen species (ROS), particularly hydroxyl radical (HO*), increase neutrophil adherence to hypoxanthine-xanthine oxidase (HX-XO)-treated human umbilical vein endothelial cells (HUVEC) in culture. This adherence is inhibited by the tyrosine kinase inhibitors genistein (30 microM) and herbimycin A (0.9 microM), suggesting the involvement of tyrosine kinase. Phosphorylation of several HUVEC proteins in the range of 120-130 and 70 kDa was found to depend on the XO concentration and stimulation time. This phosphorylation was inhibited by the antioxidants dimethylthiourea (DMTU, 0.75 to 7.5 mM) and pentoxifylline (Ptx, 0.1 mM), and by the iron chelators desferrioxamine (DF, 1 mM) and hydroxybenzyl ethylene diamine (HBED, 0.5 mM), suggesting the involvement of HO*. Three tyrosine-phosphorylated proteins, focal adhesion kinase (p125FAK), paxillin (PAX) and p130cas were isolated and characterized by immunoprecipitation and western blotting. Antioxidants and iron chelators reduced their phosphorylation. HUVEC treated with ROS for 15 min showed actin stress fiber formation. Cytochalasin D (5 microM) inhibited tyrosine phosphorylation and PMN-HUVEC adherence, showing the importance of cytoskeleton integrity in these two functions. In conclusion, HO*, which is involved in increased PMN-HUVEC adhesion, also increases tyrosine phosphorylation on three major cytoskeleton proteins which seem to play a role in this adhesion.


Annals of Hematology | 2011

Additional erythrocytic and reticulocytic parameters helpful for diagnosis of hereditary spherocytosis: results of a multicentre study.

François Mullier; Elodie Lainey; Odile Fenneteau; Lydie Da Costa; Françoise Schillinger; Nicolas Bailly; Yvan Cornet; Christian Chatelain; Jean-Michel Dogné; Bernard Chatelain

Hereditary spherocytosis (HS) is characterised by weakened vertical linkages between the membrane skeleton and the red blood cell’s lipid bilayer, leading to the release of microparticles. All the reference tests suffer from specific limitations. The aim of this study was to develop easy to use diagnostic tool for screening of hereditary spherocytosis based on routinely acquired haematological parameters like percentage of microcytes, percentage of hypochromic cells, reticulocyte counts, and percentage of immature reticulocytes. The levels of haemoglobin, mean cell volume, mean corpuscular haemoglobin concentration, reticulocytes (Ret), immature reticulocytes fraction (IRF), hypochromic erythrocytes (Hypo-He) and microcytic erythrocytes (MicroR) were determined on EDTA samples on Sysmex instruments from a cohort of 45 confirmed SH. The HS group was then compared with haemolytical disorders, microcytic anaemia, healthy individuals and routine samples (n = 1,488). HS is characterised by a high Ret count without an equally elevated IRF. All 45 HS have Ret >80,000/μl and Ret(109/L)/IRF (%) greater than 7.7 (rule 1). Trait and mild HS had a Ret/IRF ratio greater than 19. Moderate and severe HS had increased MicroR and MicroR/Hypo-He (rule 2). Combination of both rules gave predictive positive value and negative predictive value of respectively 75% and 100% (n = 1,488), which is much greater than single parameters or existing rules. This simple and fast diagnostic method could be used as an excellent screening tool for HS. It is also valid for mild HS, neonates and ABO incompatibilities and overcomes the lack of sensitivity of electrophoresis in ankyrin deficiencies.


PLOS Genetics | 2014

Ribosomal protein mutations induce autophagy through S6 kinase inhibition of the insulin pathway

Harry F. G. Heijnen; Richard van Wijk; Tamara C. Pereboom; Yvonne J. Goos; Cor Seinen; Brigitte A. van Oirschot; Rowie van Dooren; Marc Gastou; Rachel H. Giles; Wouter W. van Solinge; Taco W. Kuijpers; Hanna T. Gazda; Marc Bierings; Lydie Da Costa; Alyson W. MacInnes

Mutations affecting the ribosome lead to several diseases known as ribosomopathies, with phenotypes that include growth defects, cytopenia, and bone marrow failure. Diamond-Blackfan anemia (DBA), for example, is a pure red cell aplasia linked to the mutation of ribosomal protein (RP) genes. Here we show the knock-down of the DBA-linked RPS19 gene induces the cellular self-digestion process of autophagy, a pathway critical for proper hematopoiesis. We also observe an increase of autophagy in cells derived from DBA patients, in CD34+ erythrocyte progenitor cells with RPS19 knock down, in the red blood cells of zebrafish embryos with RP-deficiency, and in cells from patients with Shwachman-Diamond syndrome (SDS). The loss of RPs in all these models results in a marked increase in S6 kinase phosphorylation that we find is triggered by an increase in reactive oxygen species (ROS). We show that this increase in S6 kinase phosphorylation inhibits the insulin pathway and AKT phosphorylation activity through a mechanism reminiscent of insulin resistance. While stimulating RP-deficient cells with insulin reduces autophagy, antioxidant treatment reduces S6 kinase phosphorylation, autophagy, and stabilization of the p53 tumor suppressor. Our data suggest that RP loss promotes the aberrant activation of both S6 kinase and p53 by increasing intracellular ROS levels. The deregulation of these signaling pathways is likely playing a major role in the pathophysiology of ribosomopathies.


American Journal of Hematology | 2015

A biomimetic microfluidic chip to study the circulation and mechanical retention of red blood cells in the spleen

Julien Picot; Papa Alioune Ndour; Sophie Lefevre; Wassim El Nemer; Harvey Tawfik; Julie Galimand; Lydie Da Costa; Jean-Antoine Ribeil; Mariane de Montalembert; Valentine Brousse; Bruno Le Pioufle; Pierre Buffet; Caroline Le Van Kim; Olivier Français

Red blood cells (RBCs) are deformable and flow through vessels narrower than their own size. Their deformability is most stringently challenged when they cross micrometer‐wide slits in the spleen. In several inherited or acquired RBC disorders, blockade of small vessels by stiff RBCs can trigger organ damage, but a functional spleen is expected to clear these abnormal RBCs from the circulation before they induce such complications. We analyzed flow behavior of RBCs in a microfluidic chip that replicates the mechanical constraints imposed on RBCs as they cross the human spleen. Polymer microchannels obtained by soft lithography with a hydraulic diameter of 25 μm drove flow into mechanical filtering units where RBCs flew either slowly through 5‐ to 2‐μm‐wide slits or rapidly along 10‐μm‐wide channels, these parallel paths mimicking the splenic microcirculation. Stiff heated RBCs accumulated in narrow slits seven times more frequently than normal RBCs infused simultaneously. Stage‐dependent retention of Plasmodium falciparum‐infected RBCs was also observed in these slits. We also analyzed RBCs from patients with hereditary spherocytosis and observed retention for those having the most altered mechanical properties as determined by ektacytometry. Thus, in keeping with previous observations in vivo and ex vivo, the chip successfully discriminated poorly deformable RBCs based on their distinct mechanical properties and on the intensity of the cell alteration. Applications to the exploration of the pathogenesis of malaria, hereditary spherocytosis, sickle cell disease and other RBC disorders are envisioned.Am. J. Hematol. 90:339–345, 2015.


symposium on computer architecture and high performance computing | 2004

Scheduling in Bag-of-Task grids: the PAUA case

Walfredo Cirne; Francisco Vilar Brasileiro; Lydie Da Costa; Daniel Paranhos; Elizeu Santos-Neto; Nazareno Andrade; C.A.F. De Rose; Tiago C. Ferreto; Miranda Mowbray; R. Scheer; J. Jornada

In this paper we discuss the difficulties involved in the scheduling of applications on computational grids. We highlight two main sources of difficulties: 1) the size of the grid rules out the possibility of using a centralized scheduler; 2) since resources are managed by different parties, the scheduler must consider several different policies. Thus, we argue that scheduling applications on a grid require the orchestration of several schedulers, with possibly conflicting goals. We discuss how we have addressed this issue in the context of PAUA, a grid for Bag-of-Tasks applications (i.e. parallel applications whose tasks are independent) that we are currently deploying throughout Brazil.


Gene | 2014

Dissecting the transcriptional phenotype of ribosomal protein deficiency: implications for Diamond-Blackfan Anemia

Anna Aspesi; Elisa Pavesi; Elisa Robotti; Rossella Crescitelli; Ilenia Boria; Federica Avondo; Hélène Moniz; Lydie Da Costa; Narla Mohandas; Paola Roncaglia; Ugo Ramenghi; Antonella Ronchi; Stefano Gustincich; Simone Merlin; Emilio Marengo; Steven R. Ellis; Antonia Follenzi; Claudio Santoro; Irma Dianzani

Defects in genes encoding ribosomal proteins cause Diamond Blackfan Anemia (DBA), a red cell aplasia often associated with physical abnormalities. Other bone marrow failure syndromes have been attributed to defects in ribosomal components but the link between erythropoiesis and the ribosome remains to be fully defined. Several lines of evidence suggest that defects in ribosome synthesis lead to “ribosomal stress” with p53 activation and either cell cycle arrest or induction of apoptosis. Pathways independent of p53 have also been proposed to play a role in DBA pathogenesis. We took an unbiased approach to identify p53-independent pathways activated by defects in ribosome synthesis by analyzing global gene expression in various cellular models of DBA. Ranking-Principal Component Analysis (Ranking-PCA) was applied to the identified datasets to determine whether there are common sets of genes whose expression is altered in these different cellular models. We observed consistent changes in the expression of genes involved in cellular amino acid metabolic process, negative regulation of cell proliferation and cell redox homeostasis. These data indicate that cells respond to defects in ribosome synthesis by changing the level of expression of a limited subset of genes involved in critical cellular processes. Moreover, our data support a role for p53-independent pathways in the pathophysiology of DBA.

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Narla Mohandas

Lawrence Berkeley National Laboratory

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Hanna T. Gazda

Boston Children's Hospital

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Gil Tchernia

French Institute of Health and Medical Research

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Jeffrey M. Lipton

The Feinstein Institute for Medical Research

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