Christelle Arrondel
French Institute of Health and Medical Research
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Featured researches published by Christelle Arrondel.
The New England Journal of Medicine | 2011
Olivia Boyer; Fabien Nevo; Emmanuelle Plaisier; Benoît Funalot; Olivier Gribouval; Geneviève Benoit; Evelyne Huynh Cong; Christelle Arrondel; Marie-Josèphe Tête; Rodrick Montjean; Laurence Richard; Alexandre Karras; Claire Pouteil-Noble; Leila Balafrej; Alain Bonnardeaux; Guillaume Canaud; Christophe Charasse; Jacques Dantal; Georges Deschênes; Patrice Deteix; Odile Dubourg; Philippe Petiot; Dominique Pouthier; Eric LeGuern; Anne Guiochon-Mantel; Isabelle Broutin; Marie-Claire Gubler; Sophie Saunier; Pierre Ronco; Jean-Michel Vallat
BACKGROUNDnCharcot-Marie-Tooth neuropathy has been reported to be associated with renal diseases, mostly focal segmental glomerulosclerosis (FSGS). However, the common mechanisms underlying the neuropathy and FSGS remain unknown. Mutations in INF2 were recently identified in patients with autosomal dominant FSGS. INF2 encodes a formin protein that interacts with the Rho-GTPase CDC42 and myelin and lymphocyte protein (MAL) that are implicated in essential steps of myelination and myelin maintenance. We therefore hypothesized that INF2 may be responsible for cases of Charcot-Marie-Tooth neuropathy associated with FSGS.nnnMETHODSnWe performed direct genotyping of INF2 in 16 index patients with Charcot-Marie-Tooth neuropathy and FSGS who did not have a mutation in PMP22 or MPZ, encoding peripheral myelin protein 22 and myelin protein zero, respectively. Histologic and functional studies were also conducted.nnnRESULTSnWe identified nine new heterozygous mutations in 12 of the 16 index patients (75%), all located in exons 2 and 3, encoding the diaphanous-inhibitory domain of INF2. Patients presented with an intermediate form of Charcot-Marie-Tooth neuropathy as well as a glomerulopathy with FSGS on kidney biopsy. Immunohistochemical analysis revealed strong INF2 expression in Schwann-cell cytoplasm and podocytes. Moreover, we demonstrated that INF2 colocalizes and interacts with MAL in Schwann cells. The INF2 mutants perturbed the INF2-MAL-CDC42 pathway, resulting in cytoskeleton disorganization, enhanced INF2 binding to CDC42 and mislocalization of INF2, MAL, and CDC42.nnnCONCLUSIONSnINF2 mutations appear to cause many cases of FSGS-associated Charcot-Marie-Tooth neuropathy, showing that INF2 is involved in a disease affecting both the kidney glomerulus and the peripheral nervous system. These findings provide new insights into the pathophysiological mechanisms linking formin proteins to podocyte and Schwann-cell function. (Funded by the Agence Nationale de la Recherche and others.).
Nature Genetics | 2014
Kalman Tory; Dóra K. Menyhárd; Stéphanie Woerner; Fabien Nevo; Olivier Gribouval; Andrea Kerti; Pál Stráner; Christelle Arrondel; Evelyne Huynh Cong; Tivadar Tulassay; Géraldine Mollet; András Perczel; Corinne Antignac
Monogenic disorders result from defects in a single gene. According to Mendels laws, these disorders are inherited in either a recessive or dominant fashion. Autosomal-recessive disorders require a disease-causing variant on both alleles, and according to our current understanding, their pathogenicities are not influenced by each other. Here we present an autosomal-recessive disorder, nephrotic syndrome type 2 (MIM 600995), in which the pathogenicity of an NPHS2 allele encoding p.Arg229Gln depends on the trans-associated mutation. We show that, contrary to expectations, this allele leads to a disease phenotype only when it is associated specifically with certain 3′ NPHS2 mutations because of an altered heterodimerization and mislocalization of the encoded p.Arg229Gln podocin. The disease-associated 3′ mutations exert a dominant-negative effect on p.Arg229Gln podocin but behave as recessive alleles when associated with wild-type podocin. Therefore, the transmission rates for couples carrying the disease-associated mutations and p.Arg229Gln may be substantially different from those expected in autosomal-recessive disorders.
Journal of The American Society of Nephrology | 2014
Evelyne Huynh Cong; Albane A. Bizet; Olivia Boyer; Stéphanie Woerner; Olivier Gribouval; Emilie Filhol; Christelle Arrondel; Sophie Thomas; Flora Silbermann; Guillaume Canaud; J. Hachicha; Nasr Ben Dhia; Marie-Noelle Peraldi; Kais Harzallah; Daouia Iftene; Laurent Daniel; Marjolaine Willems; Laure-Hélène Noël; Christine Bole-Feysot; Patrick Nitschke; Marie-Claire Gubler; Géraldine Mollet; Sophie Saunier; Corinne Antignac
Several genes, mainly involved in podocyte cytoskeleton regulation, have been implicated in familial forms of primary FSGS. We identified a homozygous missense mutation (p.P209L) in the TTC21B gene in seven families with FSGS. Mutations in this ciliary gene were previously reported to cause nephronophthisis, a chronic tubulointerstitial nephropathy. Notably, tubular basement membrane thickening reminiscent of that observed in nephronophthisis was present in patients with FSGS and the p.P209L mutation. We demonstrated that the TTC21B gene product IFT139, an intraflagellar transport-A component, mainly localizes at the base of the primary cilium in developing podocytes from human fetal tissue and in undifferentiated cultured podocytes. In contrast, in nonciliated adult podocytes and differentiated cultured cells, IFT139 relocalized along the extended microtubule network. We further showed that knockdown of IFT139 in podocytes leads to primary cilia defects, abnormal cell migration, and cytoskeleton alterations, which can be partially rescued by p.P209L overexpression, indicating its hypomorphic effect. Our results demonstrate the involvement of a ciliary gene in a glomerular disorder and point to a critical function of IFT139 in podocytes. Altogether, these data suggest that this homozygous TTC21B p.P209L mutation leads to a novel hereditary kidney disorder with both glomerular and tubulointerstitial damages.
Human Mutation | 2012
Olivier Gribouval; Vincent Morinière; Audrey Pawtowski; Christelle Arrondel; Satu-Leena Sallinen; Carola Saloranta; Carol L. Clericuzio; Géraldine Viot; Julia Tantau; Sophie Blesson; Sylvie Cloarec; Marie Christine Machet; David Chitayat; Christelle Thauvin; Nicole Laurent; Julian Roy Sampson; Jonathan A. Bernstein; Alix Clemenson; Fabienne Prieur; Laurent Daniel; Annie Levy-Mozziconacci; Katherine Lachlan; Jean Luc Alessandri; François Cartault; Jean Pierre Rivière; Nicole Picard; Clarisse Baumann; Anne Lise Delezoide; Maria Belar Ortega; Nicolas Chassaing
Autosomal recessive renal tubular dysgenesis (RTD) is a severe disorder of renal tubular development characterized by early onset and persistent fetal anuria leading to oligohydramnios and the Potter sequence, associated with skull ossification defects. Early death occurs in most cases from anuria, pulmonary hypoplasia, and refractory arterial hypotension. The disease is linked to mutations in the genes encoding several components of the renin–angiotensin system (RAS): AGT (angiotensinogen), REN (renin), ACE (angiotensin‐converting enzyme), and AGTR1 (angiotensin II receptor type 1). Here, we review the series of 54 distinct mutations identified in 48 unrelated families. Most of them are novel and ACE mutations are the most frequent, observed in two‐thirds of families (64.6%). The severity of the clinical course was similar whatever the mutated gene, which underlines the importance of a functional RAS in the maintenance of blood pressure and renal blood flow during the life of a human fetus. Renal hypoperfusion, whether genetic or secondary to a variety of diseases, precludes the normal development/ differentiation of proximal tubules. The identification of the disease on the basis of precise clinical and histological analyses and the characterization of the genetic defects allow genetic counseling and early prenatal diagnosis. Hum Mutat 33:316–326, 2012.
American Journal of Human Genetics | 2014
Estelle Colin; Evelyne Huynh Cong; Géraldine Mollet; Agnès Guichet; Olivier Gribouval; Christelle Arrondel; Olivia Boyer; Laurent Daniel; Marie-Claire Gubler; Zelal Ekinci; Michel Tsimaratos; Brigitte Chabrol; Nathalie Boddaert; Alain Verloes; Arnaud Chevrollier; Naïg Gueguen; Valérie Desquiret-Dumas; Marc Ferré; Vincent Procaccio; Laurence Richard; Benoît Funalot; Anne Moncla; Dominique Bonneau; Corinne Antignac
Galloway-Mowat syndrome is a rare autosomal-recessive condition characterized by nephrotic syndrome associated with microcephaly and neurological impairment. Through a combination of autozygosity mapping and whole-exome sequencing, we identified WDR73 as a gene in which mutations cause Galloway-Mowat syndrome in two unrelated families. WDR73 encodes a WD40-repeat-containing protein of unknown function. Here, we show that WDR73 was present in the brain and kidney and was located diffusely in the cytoplasm during interphase but relocalized to spindle poles and astral microtubules during mitosis. Fibroblasts from one affected child and WDR73-depleted podocytes displayed abnormal nuclear morphology, low cell viability, and alterations of the microtubule network. These data suggest that WDR73 plays a crucial role in the maintenance of cell architecture and cell survival. Altogether, WDR73 mutations cause Galloway-Mowat syndrome in a particular subset of individuals presenting with late-onset nephrotic syndrome, postnatal microcephaly, severe intellectual disability, and homogenous brain MRI features. WDR73 is another example of a gene involved in a disease affecting both the kidney glomerulus and the CNS.
Journal of Clinical Investigation | 2017
Svjetlana Lovric; Sara Goncalves; Heon Yung Gee; Babak Oskouian; Honnappa Srinivas; Won Il Choi; Shirlee Shril; Shazia Ashraf; Weizhen Tan; Jia Rao; Merlin Airik; David Schapiro; Daniela A. Braun; Carolin E. Sadowski; Eugen Widmeier; Tilman Jobst-Schwan; Johanna Magdalena Schmidt; Vladimir Girik; Guido Capitani; Jung H. Suh; Noelle Lachaussée; Christelle Arrondel; Julie Patat; Olivier Gribouval; Monica Furlano; Olivia Boyer; Alain Schmitt; Vincent Vuiblet; Seema Hashmi; Rainer Wilcken
Steroid-resistant nephrotic syndrome (SRNS) causes 15% of chronic kidney disease cases. A mutation in 1 of over 40 monogenic genes can be detected in approximately 30% of individuals with SRNS whose symptoms manifest before 25 years of age. However, in many patients, the genetic etiology remains unknown. Here, we have performed whole exome sequencing to identify recessive causes of SRNS. In 7 families with SRNS and facultative ichthyosis, adrenal insufficiency, immunodeficiency, and neurological defects, we identified 9 different recessive mutations in SGPL1, which encodes sphingosine-1-phosphate (S1P) lyase. All mutations resulted in reduced or absent SGPL1 protein and/or enzyme activity. Overexpression of cDNA representing SGPL1 mutations resulted in subcellular mislocalization of SGPL1. Furthermore, expression of WT human SGPL1 rescued growth of SGPL1-deficient dpl1&Dgr; yeast strains, whereas expression of disease-associated variants did not. Immunofluorescence revealed SGPL1 expression in mouse podocytes and mesangial cells. Knockdown of Sgpl1 in rat mesangial cells inhibited cell migration, which was partially rescued by VPC23109, an S1P receptor antagonist. In Drosophila, Sply mutants, which lack SGPL1, displayed a phenotype reminiscent of nephrotic syndrome in nephrocytes. WT Sply, but not the disease-associated variants, rescued this phenotype. Together, these results indicate that SGPL1 mutations cause a syndromic form of SRNS.
American Journal of Human Genetics | 2017
Lara De Tomasi; Pierre David; Camille Humbert; Flora Silbermann; Christelle Arrondel; Frédéric Tores; Stéphane Fouquet; Audrey Desgrange; Olivier Niel; Christine Bole-Feysot; Patrick Nitschke; Joëlle Roume; Marie-Pierre Cordier; Christine Pietrement; Bertrand Isidor; Philippe Khau Van Kien; Marie Gonzales; Marie-Hélène Saint-Frison; Jelena Martinovic; Robert Novo; Juliette Piard; Christelle Cabrol; Ishwar C. Verma; Ratna D. Puri; Hubert Journel; Jacqueline Aziza; Laurent Gavard; Marie-Hélène Said-Menthon; Laurence Heidet; Sophie Saunier
Congenital anomalies of the kidney and urinary tract (CAKUT) constitute a major cause of chronic kidney disease in children and 20% of prenatally detected anomalies. CAKUT encompass a spectrum of developmental kidney defects, including renal agenesis, hypoplasia, and cystic and non-cystic dysplasia. More than 50 genes have been reported as mutated in CAKUT-affected case subjects. However, the pathophysiological mechanisms leading to bilateral kidney agenesis (BKA) remain largely elusive. Whole-exome or targeted exome sequencing of 183 unrelated familial and/or severe CAKUT-affected case subjects, including 54 fetuses with BKA, led to the identification of 16 heterozygous variants in GREB1L (growth regulation by estrogen in breast cancer 1-like), a gene reported as a target of retinoic acid signaling. Four loss-of-function and 12 damaging missense variants, 14 being absent from GnomAD, were identified. Twelve of them were present in familial or simplex BKA-affected case subjects. Female BKA-affected fetuses also displayed uterus agenesis. We demonstrated a significant association between GREB1L variants and BKA. By in situ hybridization, we showed expression of Greb1l in the nephrogenic zone in developing mouse kidney. We generated a Greb1l knock-out mouse model by CRISPR-Cas9. Analysis at E13.5 revealed lack of kidneys and genital tract anomalies in male and female Greb1l-/- embryos and a slight decrease in ureteric bud branching in Greb1l+/- embryos. We showed that Greb1l invalidation in mIMCD3 cells affected tubulomorphogenesis in 3D-collagen culture, a phenotype rescued by expression of the wild-type human protein. This demonstrates that GREB1L plays a major role in early metanephros and genital development in mice and humans.
PLOS Genetics | 2018
Sara Goncalves; Julie Patat; Maria Clara Guida; Noelle Lachaussée; Christelle Arrondel; Martin Helmstädter; Olivia Boyer; Olivier Gribouval; Marie-Claire Gubler; Géraldine Mollet; Marlène Rio; Marina Charbit; Christine Bole-Feysot; Patrick Nitschke; Tobias B. Huber; Patricia G Wheeler; Devon Haynes; Jane Juusola; Thierry Billette de Villemeur; Caroline Nava; Alexandra Afenjar; Boris Keren; Rolf Bodmer; Corinne Antignac; Matias Simons
Recent evidence suggests that the presence of more than one pathogenic mutation in a single patient is more common than previously anticipated. One of the challenges hereby is to dissect the contribution of each gene mutation, for which animal models such as Drosophila can provide a valuable aid. Here, we identified three families with mutations in ADD3, encoding for adducin-γ, with intellectual disability, microcephaly, cataracts and skeletal defects. In one of the families with additional cardiomyopathy and steroid-resistant nephrotic syndrome (SRNS), we found a homozygous variant in KAT2B, encoding the lysine acetyltransferase 2B, with impact on KAT2B protein levels in patient fibroblasts, suggesting that this second mutation might contribute to the increased disease spectrum. In order to define the contribution of ADD3 and KAT2B mutations for the patient phenotype, we performed functional experiments in the Drosophila model. We found that both mutations were unable to fully rescue the viability of the respective null mutants of the Drosophila homologs, hts and Gcn5, suggesting that they are indeed pathogenic in flies. While the KAT2B/Gcn5 mutation additionally showed a significantly reduced ability to rescue morphological and functional defects of cardiomyocytes and nephrocytes (podocyte-like cells), this was not the case for the ADD3 mutant rescue. Yet, the simultaneous knockdown of KAT2B and ADD3 synergistically impaired kidney and heart function in flies as well as the adhesion and migration capacity of cultured human podocytes, indicating that mutations in both genes may be required for the full clinical manifestation. Altogether, our studies describe the expansion of the phenotypic spectrum in ADD3 deficiency associated with a homozygous likely pathogenic KAT2B variant and thereby identify KAT2B as a susceptibility gene for kidney and heart disease in ADD3-associated disorders.
Biochimica et Biophysica Acta | 2018
Pál Stráner; Eszter Balogh; Gusztáv Schay; Christelle Arrondel; Ágnes Mikó; Gerda L'Auné; Alexandre Benmerah; András Perczel; Dóra K. Menyhárd; Corinne Antignac; Géraldine Mollet; Kalman Tory
Interallelic interactions of membrane proteins are not taken into account while evaluating the pathogenicity of sequence variants in autosomal recessive disorders. Podocin, a membrane-anchored component of the slit diaphragm, is encoded by NPHS2, the major gene mutated in hereditary podocytopathies. We formerly showed that its R229Q variant is only pathogenic when trans-associated to specific 3 mutations and suggested the causal role of an abnormal C-terminal dimerization. Here we show by FRET analysis and size exclusion chromatography that podocin oligomerization occurs exclusively through the C-terminal tail (residues 283-382): principally through the first C-terminal helical region (H1, 283-313), which forms a coiled coil as shown by circular dichroism spectroscopy, and through the 332-348 region. We show the principal role of the oligomerization sites in mediating interallelic interactions: while the monomer-forming R286Tfs*17 podocin remains membranous irrespective of the coexpressed podocin variant identity, podocin variants with an intact H1 significantly influence each others localization (r2u202f=u202f0.68, Pu202f=u202f9.2u202f×u202f10-32). The dominant negative effect resulting in intracellular retention of the pathogenic F344Lfs*4-R229Q heterooligomer occurs in parallel with a reduction in the FRET efficiency, suggesting the causal role of a conformational rearrangement. On the other hand, oligomerization can also promote the membrane localization: it can prevent the endocytosis of F344Lfs*4 or F344* podocin mutants induced by C-terminal truncation. In conclusion, C-terminal oligomerization of podocin can mediate both a dominant negative effect and interallelic complementation. Interallelic interactions of NPHS2 are not restricted to the R229Q variant and have to be considered in compound heterozygous individuals.
PLOS Genetics | 2018
Sara Gonçalves; Julie Patat; Maria Clara Guida; Noelle Lachaussée; Christelle Arrondel; Martin Helmstädter; Olivia Boyer; Olivier Gribouval; Marie-Claire Gubler; Géraldine Mollet; Marlène Rio; Marina Charbit; Christine Bole-Feysot; Patrick Nitschke; Tobias B. Huber; Patricia G. Wheeler; Devon Haynes; Jane Juusola; Thierry Billette de Villemeur; Caroline Nava; Alexandra Afenjar; Boris Keren; Rolf Bodmer; Corinne Antignac; Matias Simons
[This corrects the article DOI: 10.1371/journal.pgen.1007386.].