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Dive into the research topics where Isabelle Desguerre is active.

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Featured researches published by Isabelle Desguerre.


The Lancet | 1999

Persistent mitochondrial dysfunction and perinatal exposure to antiretroviral nucleoside analogues

Stéphane Blanche; Marc Tardieu; Pierre Rustin; Abdelhamid Slama; Béatrice Barret; Ghislaine Firtion; Nicole Ciraru-Vigneron; Catherine Lacroix; Christine Rouzioux; Laurent Mandelbrot; Isabelle Desguerre; Agnès Rötig; Marie-Jeanne Mayaux; Jean-François Delfraissy

BACKGROUND Zidovudine is commonly administered during pregnancy to prevent mother-to-child HIV-1 transmission. We investigated mitochondrial toxic effects in children exposed to zidovudine in utero and after birth. METHODS We analysed observations of a trial of tolerance of combined zidovudine and lamivudine and preliminary results of a continuing retrospective analysis of clinical and biological symptoms of mitochondrial dysfunction in children born to HIV-1-infected women in France. Mitochondrial dysfunction was studied by spectrophotometry and polarography of respiratory-chain complexes in various tissues. FINDINGS Eight children had mitochondrial dysfunction. Five, of whom two died, presented with delayed neurological symptoms and three were symptom-free but had severe biological or neurological abnormalities. Four of these children had been exposed to combined zidovudine and lamivudine, and four to zidovudine alone. No child was infected with HIV-1. All children had abnormally low absolute or relative activities of respiratory-chain complexes I, IV, or both months or years after the end of antiretroviral treatment. No mutation currently associated with constitutional disease was detected in any patient. INTERPRETATION Our findings support the hypothesis of a link between mitochondrial dysfunction and the perinatal administration of prophylactic nucleoside analogues. Current recommendations for zidovudine monotherapy should however be maintained. Further assessment of the toxic effects of these drugs is required.


Nature Genetics | 2009

Mutations involved in Aicardi-Goutieres syndrome implicate SAMHD1 as regulator of the innate immune response

Gillian I. Rice; Jacquelyn Bond; Aruna Asipu; Rebecca L. Brunette; Iain W. Manfield; Ian M. Carr; Jonathan C. Fuller; Richard M. Jackson; Teresa Lamb; Tracy A. Briggs; Manir Ali; Hannah Gornall; Alec Aeby; Simon P Attard-Montalto; Enrico Bertini; C. Bodemer; Knut Brockmann; Louise Brueton; Peter Corry; Isabelle Desguerre; Elisa Fazzi; Angels Garcia Cazorla; Blanca Gener; B.C.J. Hamel; Arvid Heiberg; Matthew Hunter; Marjo S. van der Knaap; Ram Kumar; Lieven Lagae; Pierre Landrieu

Aicardi-Goutières syndrome is a mendelian mimic of congenital infection and also shows overlap with systemic lupus erythematosus at both a clinical and biochemical level. The recent identification of mutations in TREX1 and genes encoding the RNASEH2 complex and studies of the function of TREX1 in DNA metabolism have defined a previously unknown mechanism for the initiation of autoimmunity by interferon-stimulatory nucleic acid. Here we describe mutations in SAMHD1 as the cause of AGS at the AGS5 locus and present data to show that SAMHD1 may act as a negative regulator of the cell-intrinsic antiviral response.


Annals of Neurology | 2000

Clinical and molecular genetic spectrum of autosomal dominant Emery‐Dreifuss muscular dystrophy due to mutations of the lamin A/C gene

Gisèle Bonne; Eugenio Mercuri; A. Muchir; Andoni Urtizberea; H. M. Bécane; D. Recan; Luciano Merlini; M. Wehnert; R. Boor; U. Reuner; M. Vorgerd; E. M. Wicklein; Bruno Eymard; D. Duboc; I. Penisson-Besnier; J. M. Cuisset; X. Ferrer; Isabelle Desguerre; D. Lacombe; Kate Bushby; C. Pollitt; D. Toniolo; Michel Fardeau; Ketty Schwartz; F. Muntoni

Emery‐Dreifuss muscular dystrophy (EDMD) is characterized by early contractures of the elbows and Achilles tendons, slowly progressive muscle wasting and weakness, and life‐threatening cardiomyopathy with conduction blocks. We recently identified LMNA encoding two nuclear envelope proteins, lamins A and C, to be implicated in the autosomal dominant form of EDMD. Here, we report on the variability of the phenotype and spectrum of LMNA mutations in 53 autosomal dominant EDMD patients (36 members of 6 families and 17 sporadic cases). Twelve of the 53 patients showed cardiac involvement exclusively, although the remaining 41 all showed muscle weakness and contractures. We were able to identify a common phenotype among the patients with skeletal muscle involvement, consisting of humeroperoneal wasting and weakness, scapular winging, rigidity of the spine, and elbow and Achilles tendon contractures. The disease course was generally slow, but we observed either a milder phenotype characterized by late onset and a mild degree of weakness and contractures or a more severe phenotype with early presentation and a rapidly progressive course in a few cases. Mutation analysis identified 18 mutations in LMNA (ie, 1 nonsense mutation, 2 deletions of a codon, and 15 missense mutations). All the mutations were distributed between exons 1 and 9 in the region of LMNA that is common to lamins A and C. LMNA mutations arose de novo in 76% of the cases; 2 of these de novo mutations were typical hot spots, and 2 others were identified in 2 unrelated cases. There was no clear correlation between the phenotype and type or localization of the mutations within the gene. Moreover, a marked inter‐ and intra‐familial variability in the clinical expression of LMNA mutations exists, ranging from patients expressing the full clinical picture of EDMD to those characterized only by cardiac involvement, which points toward a significant role of possible modifier genes in the course of this disease. In conclusion, the high proportion of de novo mutations together with the large spectrum of both LMNA mutations and the expression of the disease should now prompt screening for LMNA in familial and sporadic cases of both EDMD and dilated cardiomyopathy associated with conduction system disease. Ann Neurol 2000;48:170–180


Nature Genetics | 2006

PLA2G6, encoding a phospholipase A2, is mutated in neurodegenerative disorders with high brain iron.

Neil V. Morgan; Shawn K. Westaway; Jenny Morton; Allison Gregory; Paul Gissen; Scott Sonek; Hakan Cangul; Jason Coryell; Natalie Canham; Nardo Nardocci; Giovanna Zorzi; Shanaz Pasha; Diana Rodriguez; Isabelle Desguerre; Amar Mubaidin; Enrico Bertini; Richard C. Trembath; Alessandro Simonati; Carolyn Schanen; Colin A. Johnson; Barbara Levinson; C. Geoffrey Woods; Beth Wilmot; Patricia L. Kramer; Jane Gitschier; Eamonn R. Maher; Susan J. Hayflick

Neurodegenerative disorders with high brain iron include Parkinson disease, Alzheimer disease and several childhood genetic disorders categorized as neuroaxonal dystrophies. We mapped a locus for infantile neuroaxonal dystrophy (INAD) and neurodegeneration with brain iron accumulation (NBIA) to chromosome 22q12-q13 and identified mutations in PLA2G6, encoding a calcium-independent group VI phospholipase A2, in NBIA, INAD and the related Karak syndrome. This discovery implicates phospholipases in the pathogenesis of neurodegenerative disorders with iron dyshomeostasis.


Nature Genetics | 2012

Mutations in ADAR1 cause Aicardi-Goutières syndrome associated with a type I interferon signature

Gillian I. Rice; Paul R. Kasher; Gabriella M.A. Forte; Niamh M. Mannion; Sam M. Greenwood; Marcin Szynkiewicz; Jonathan E. Dickerson; Sanjeev Bhaskar; Massimiliano Zampini; Tracy A. Briggs; Emma M. Jenkinson; Carlos A. Bacino; Roberta Battini; Enrico Bertini; Paul A. Brogan; Louise Brueton; Marialuisa Carpanelli; Corinne De Laet; Pascale de Lonlay; Mireia del Toro; Isabelle Desguerre; Elisa Fazzi; Angels García-Cazorla; Arvid Heiberg; Masakazu Kawaguchi; Ram Kumar; Jean-Pierre Lin; Charles Marques Lourenço; Alison Male; Wilson Marques

Adenosine deaminases acting on RNA (ADARs) catalyze the hydrolytic deamination of adenosine to inosine in double-stranded RNA (dsRNA) and thereby potentially alter the information content and structure of cellular RNAs. Notably, although the overwhelming majority of such editing events occur in transcripts derived from Alu repeat elements, the biological function of non-coding RNA editing remains uncertain. Here, we show that mutations in ADAR1 (also known as ADAR) cause the autoimmune disorder Aicardi-Goutières syndrome (AGS). As in Adar1-null mice, the human disease state is associated with upregulation of interferon-stimulated genes, indicating a possible role for ADAR1 as a suppressor of type I interferon signaling. Considering recent insights derived from the study of other AGS-related proteins, we speculate that ADAR1 may limit the cytoplasmic accumulation of the dsRNA generated from genomic repetitive elements.


Nature Genetics | 2001

Mutations in SEPN1 cause congenital muscular dystrophy with spinal rigidity and restrictive respiratory syndrome.

Behzad Moghadaszadeh; Nathalie Petit; Céline Jaillard; Martin Brockington; Susana Quijano Roy; Luciano Merlini; Norma B. Romero; Brigitte Estournet; Isabelle Desguerre; Denys Chaigne; Francesco Muntoni; Haluk Topaloglu; Pascale Guicheney

One form of congenital muscular dystrophy, rigid spine syndrome (MIM 602771), is a rare neuromuscular disorder characterized by early rigidity of the spine and respiratory insufficiency. A locus on 1p35–36 (RSMD1) was recently found to segregate with rigid spine muscular dystrophy 1 (ref. 1). Here we refine the locus and find evidence of linkage disequilibrium associated with SEPN1, which encodes the recently described selenoprotein N (ref. 2). Our identification and analysis of mutations in SEPN1 is the first description of a selenoprotein implicated in a human disease.


Nature Genetics | 2014

Gain-of-function mutations in IFIH1 cause a spectrum of human disease phenotypes associated with upregulated type I interferon signaling

Gillian I. Rice; Yoandris del Toro Duany; Emma M. Jenkinson; Gabriella M.A. Forte; Beverley Anderson; Giada Ariaudo; Brigitte Bader-Meunier; Roberta Battini; Michael W. Beresford; Manuela Casarano; Mondher Chouchane; Rolando Cimaz; Abigail Collins; Nuno J V Cordeiro; Russell C. Dale; Joyce Davidson; Liesbeth De Waele; Isabelle Desguerre; Laurence Faivre; Elisa Fazzi; Bertrand Isidor; Lieven Lagae; Andrew Latchman; Pierre Lebon; Chumei Li; John H. Livingston; Charles Marques Lourenço; Maria Margherita Mancardi; Alice Masurel-Paulet; Iain B. McInnes

The type I interferon system is integral to human antiviral immunity. However, inappropriate stimulation or defective negative regulation of this system can lead to inflammatory disease. We sought to determine the molecular basis of genetically uncharacterized cases of the type I interferonopathy Aicardi-Goutières syndrome and of other undefined neurological and immunological phenotypes also demonstrating an upregulated type I interferon response. We found that heterozygous mutations in the cytosolic double-stranded RNA receptor gene IFIH1 (also called MDA5) cause a spectrum of neuroimmunological features consistently associated with an enhanced interferon state. Cellular and biochemical assays indicate that these mutations confer gain of function such that mutant IFIH1 binds RNA more avidly, leading to increased baseline and ligand-induced interferon signaling. Our results demonstrate that aberrant sensing of nucleic acids can cause immune upregulation.


Nature Genetics | 2012

De novo gain-of-function KCNT1 channel mutations cause malignant migrating partial seizures of infancy.

Giulia Barcia; Matthew R. Fleming; Aline Deligniere; Valeswara-Rao Gazula; Maile R. Brown; Maéva Langouët; Haijun Chen; Jack Kronengold; Avinash Abhyankar; Roberta Cilio; Patrick Nitschke; Anna Kaminska; Nathalie Boddaert; Jean-Laurent Casanova; Isabelle Desguerre; Arnold Munnich; Olivier Dulac; Leonard K. Kaczmarek; Laurence Colleaux; Rima Nabbout

Malignant migrating partial seizures of infancy (MMPSI) is a rare epileptic encephalopathy of infancy that combines pharmacoresistant seizures with developmental delay. We performed exome sequencing in three probands with MMPSI and identified de novo gain-of-function mutations affecting the C-terminal domain of the KCNT1 potassium channel. We sequenced KCNT1 in 9 additional individuals with MMPSI and identified mutations in 4 of them, in total identifying mutations in 6 out of 12 unrelated affected individuals. Functional studies showed that the mutations led to constitutive activation of the channel, mimicking the effects of phosphorylation of the C-terminal domain by protein kinase C. In addition to regulating ion flux, KCNT1 has a non-conducting function, as its C terminus interacts with cytoplasmic proteins involved in developmental signaling pathways. These results provide a focus for future diagnostic approaches and research for this devastating condition.


American Journal of Human Genetics | 2008

CABC1 Gene Mutations Cause Ubiquinone Deficiency with Cerebellar Ataxia and Seizures

Julie Mollet; Agnès Delahodde; Valérie Serre; Dominique Chretien; Dimitri Schlemmer; Anne Lombès; Nathalie Boddaert; Isabelle Desguerre; Pascale de Lonlay; Hélène Ogier de Baulny; Arnold Munnich; Agnès Rötig

Coenzyme Q(10) (CoQ(10)) plays a pivotal role in oxidative phosphorylation (OXPHOS) in that it distributes electrons between the various dehydrogenases and the cytochrome segments of the respiratory chain. Primary coenzyme Q(10) deficiency represents a clinically heterogeneous condition suggestive of genetic heterogeneity, and several disease genes have been previously identified. The CABC1 gene, also called COQ8 or ADCK3, is the human homolog of the yeast ABC1/COQ8 gene, one of the numerous genes involved in the ubiquinone biosynthesis pathway. The exact function of the Abc1/Coq8 protein is as yet unknown, but this protein is classified as a putative protein kinase. We report here CABC1 gene mutations in four ubiquinone-deficient patients in three distinct families. These patients presented a similar progressive neurological disorder with cerebellar atrophy and seizures. In all cases, enzymological studies pointed to ubiquinone deficiency. CoQ(10) deficiency was confirmed by decreased content of ubiquinone in muscle. Various missense mutations (R213W, G272V, G272D, and E551K) modifying highly conserved amino acids of the protein and a 1 bp frameshift insertion c.[1812_1813insG] were identified. The missense mutations were introduced into the yeast ABC1/COQ8 gene and expressed in a Saccharomyces cerevisiae strain in which the ABC1/COQ8 gene was deleted. All the missense mutations resulted in a respiratory phenotype with no or decreased growth on glycerol medium and a severe reduction in ubiquinone synthesis, demonstrating that these mutations alter the protein function.


Neurology | 2008

Neurodegeneration associated with genetic defects in phospholipase A2

Allison Gregory; Shawn K. Westaway; I. E. Holm; Paul T. Kotzbauer; Penny Hogarth; Scott Sonek; J. C. Coryell; T. M. Nguyen; Nardo Nardocci; Giovanna Zorzi; D. Rodriguez; Isabelle Desguerre; Enrico Bertini; Alessandro Simonati; Barbara Levinson; Cristina Dias; Clara Barbot; Inês Carrilho; Manuela Santos; Ibrahim Malik; Jane Gitschier; Susan J. Hayflick

Objective: Mutations in the gene encoding phospholipase A2 group VI (PLA2G6) are associated with two childhood neurologic disorders: infantile neuroaxonal dystrophy (INAD) and idiopathic neurodegeneration with brain iron accumulation (NBIA). INAD is a severe progressive psychomotor disorder in which axonal spheroids are found in brain, spinal cord, and peripheral nerves. High globus pallidus iron is an inconsistent feature of INAD; however, it is a diagnostic criterion of NBIA, which describes a clinically and genetically heterogeneous group of disorders that share this hallmark feature. We sought to delineate the clinical, radiographic, pathologic, and genetic features of disease resulting from defective phospholipase A2. Methods: We identified 56 patients clinically diagnosed with INAD and 23 with idiopathic NBIA and screened their DNA for PLA2G6 mutations. Results: Eighty percent of patients with INAD had mutations in PLA2G6, whereas mutations were found in only 20% of those with idiopathic NBIA. All patients with two null mutations had a more severe phenotype. On MRI, nearly all mutation-positive patients had cerebellar atrophy, and half showed brain iron accumulation. We observed Lewy bodies and neurofibrillary tangles in association with PLA2G6 mutations. Conclusion: Defects in phospholipase A2 lead to a range of phenotypes. PLA2G6 mutations are associated with nearly all cases of classic infantile neuroaxonal dystrophy but a minority of cases of idiopathic neurodegeneration with brain iron accumulation, and genotype correlates with phenotype. Cerebellar atrophy predicts which patients are likely to be mutation-positive. The neuropathologic changes that are caused by defective phospholipase A2 suggest a shared pathogenesis with both Parkinson and Alzheimer diseases.

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Nathalie Boddaert

Paris Descartes University

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Christine Barnerias

Necker-Enfants Malades Hospital

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Arnold Munnich

Necker-Enfants Malades Hospital

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Cyril Gitiaux

Necker-Enfants Malades Hospital

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Olivier Dulac

Necker-Enfants Malades Hospital

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Rima Nabbout

Necker-Enfants Malades Hospital

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Marlène Rio

Necker-Enfants Malades Hospital

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Francis Brunelle

Necker-Enfants Malades Hospital

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Pascale de Lonlay

Paris Descartes University

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