Gene profiling of skeletal muscle in an amyotrophic lateral sclerosis mouse model.
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Michael Primig | Vincent Meininger | Christa Niederhauser-Wiederkehr | M. Primig | V. Meininger | J. Loeffler | P. Demougin | Christa Niederhauser-Wiederkehr | L. Dupuis | J. González de Aguilar | Luc Dupuis | Jean-Philippe Loeffler | Philippe Demougin | Jose-Luis Gonzalez de Aguilar | Benoît Halter | Marc De Tapia | Franck Di Scala | M. de Tapia | Franck di Scala | B. Halter
[1] G. Sobue,et al. Gene expression profile of spinal motor neurons in sporadic amyotrophic lateral sclerosis , 2005, Annals of neurology.
[2] M. Docquier,et al. No widespread induction of cell death genes occurs in pure motoneurons in an amyotrophic lateral sclerosis mouse model. , 2005, Human molecular genetics.
[3] F. Martelli,et al. MyoD induces retinoblastoma gene expression during myogenic differentiation. , 1994, Oncogene.
[4] J. Loeffler,et al. Early Activation of Antioxidant Mechanisms in Muscle of Mutant Cu/Zn‐Superoxide Dismutase‐Linked Amyotrophic Lateral Sclerosis Mice , 2003, Annals of the New York Academy of Sciences.
[5] A. Pramatarova,et al. Neuron-Specific Expression of Mutant Superoxide Dismutase 1 in Transgenic Mice Does Not Lead to Motor Impairment , 2001, The Journal of Neuroscience.
[6] Terence P. Speed,et al. A comparison of normalization methods for high density oligonucleotide array data based on variance and bias , 2003, Bioinform..
[7] J. Loeffler,et al. Differential Screening of Mutated SOD1 Transgenic Mice Reveals Early Up-Regulation of a Fast Axonal Transport Component in Spinal Cord Motor Neurons , 2000, Neurobiology of Disease.
[8] W. Robberecht,et al. Skeletal muscle properties in a transgenic mouse model for amyotrophic lateral sclerosis: effects of creatine treatment , 2003, Neurobiology of Disease.
[9] Y. Itoyama,et al. Neuroprotective effect of oxidized galectin-1 in a transgenic mouse model of amyotrophic lateral sclerosis , 2005, Experimental Neurology.
[10] D. Lockhart,et al. Expression monitoring by hybridization to high-density oligonucleotide arrays , 1996, Nature Biotechnology.
[11] M. Gurney,et al. Progressive motor neuron impairment in an animal model of familial amyotrophic lateral sclerosis , 1997, Muscle & nerve.
[12] U. Krishnan,et al. Disease Progression in a Transgenic Model of Familial Amyotrophic Lateral Sclerosis Is Dependent on Both Neuronal and Non-Neuronal Zinc Binding Proteins , 2002, The Journal of Neuroscience.
[13] G. Hannon,et al. Correlation of terminal cell cycle arrest of skeletal muscle with induction of p21 by MyoD , 1995, Science.
[14] Nan Li,et al. Molecular cloning and characterization of a novel muscle adenylosuccinate synthetase, AdSSL1, from human bone marrow stromal cells , 2005, Molecular and Cellular Biochemistry.
[15] S. Bissière,et al. Identification of a lectin causing the degeneration of neuronal processes using engineered embryonic stem cells , 2007, Nature Neuroscience.
[16] S. Kiryu-Seo,et al. Noxa Is a Critical Mediator of p53-Dependent Motor Neuron Death after Nerve Injury in Adult Mouse , 2005, The Journal of Neuroscience.
[17] J. Loeffler,et al. Evidence for defective energy homeostasis in amyotrophic lateral sclerosis: benefit of a high-energy diet in a transgenic mouse model. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[18] L. Alhonen,et al. Genetic approaches to the cellular functions of polyamines in mammals. , 2004, European journal of biochemistry.
[19] Ross Ihaka,et al. Gentleman R: R: A language for data analysis and graphics , 1996 .
[20] Rafael A Irizarry,et al. Exploration, normalization, and summaries of high density oligonucleotide array probe level data. , 2003, Biostatistics.
[21] M. Schwab,et al. The neurite outgrowth inhibitor Nogo‐A promotes denervation in an amyotrophic lateral sclerosis model , 2006, EMBO reports.
[22] A. Taniguchi,et al. Serpin=serine protease-like complexes within neurofilament conglomerates of motoneurons in amyotrophic lateral sclerosis , 1998, Journal of the Neurological Sciences.
[23] S. Cheema,et al. Properties of slow- and fast-twitch muscle fibres in a mouse model of amyotrophic lateral sclerosis , 2005, Neuromuscular Disorders.
[24] A. Malaspina,et al. Differential expression of 14 genes in amyotrophic lateral sclerosis spinal cord detected using gridded cDNA arrays , 2001, Journal of neurochemistry.
[25] V. Meininger,et al. Up‐regulation of mitochondrial uncoupling protein 3 reveals an early muscular metabolic defect in amyotrophic lateral sclerosis , 2003, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[26] S. Lachkar,et al. Myoblast fusion promotes the appearance of active protease nexin I on human muscle cell surfaces. , 1996, Experimental cell research.
[27] J. Woodgett,et al. Differential gene expression profiling of short and long term denervated muscle , 2006, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[28] M. Fukayama,et al. Altered Expression of Cardiac Ankyrin Repeat Protein and Its Homologue, Ankyrin Repeat Protein with PEST and Proline-Rich Region, in Atrophic Muscles in Amyotrophic Lateral Sclerosis , 2003, Pathobiology.
[29] A. Musarò,et al. Muscle expression of a local Igf-1 isoform protects motor neurons in an ALS mouse model , 2005, The Journal of cell biology.
[30] R. Grange,et al. Alterations in Slow‐Twitch Muscle Phenotype in Transgenic Mice Overexpressing the Ca2+ Buffering Protein Parvalbumin , 2003, The Journal of physiology.
[31] M. Tarnopolsky,et al. Oxidative stress and antioxidant enzyme upregulation in SOD1‐G93A mouse skeletal muscle , 2006, Muscle & nerve.
[32] G. Kollias,et al. Onset and Progression in Inherited ALS Determined by Motor Neurons and Microglia , 2006, Science.
[33] Minh N. H. Nguyen,et al. Wild-Type Nonneuronal Cells Extend Survival of SOD1 Mutant Motor Neurons in ALS Mice , 2003, Science.
[34] P. Andersen,et al. Overloading of Stable and Exclusion of Unstable Human Superoxide Dismutase-1 Variants in Mitochondria of Murine Amyotrophic Lateral Sclerosis Models , 2006, The Journal of Neuroscience.
[35] M. Gurney,et al. Motor neuron degeneration in mice that express a human Cu,Zn superoxide dismutase mutation. , 1994, Science.
[36] P. Caroni,et al. Accumulation of SOD1 Mutants in Postnatal Motoneurons Does Not Cause Motoneuron Pathology or Motoneuron Disease , 2002, The Journal of Neuroscience.
[37] B. Schoser,et al. Cell death and apoptosis‐related proteins in muscle biopsies of sporadic amyotrophic lateral sclerosis and polyneuropathy , 2001, Muscle & nerve.
[38] J. H. Ward. Hierarchical Grouping to Optimize an Objective Function , 1963 .
[39] R. Lindahl,et al. Hypoxia exerts cell-type-specific effects on expression of the class 3 aldehyde dehydrogenase gene. , 1998, Biochemical and biophysical research communications.
[40] C. Tohyama,et al. Reduction of metallothioneins promotes the disease expression of familial amyotrophic lateral sclerosis mice in a dose‐dependent manner , 2001, The European journal of neuroscience.
[41] X. Wu,et al. Peg3/Pw1 promotes p53-mediated apoptosis by inducing Bax translocation from cytosol to mitochondria. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[42] Giorgio Valle,et al. The Ankrd2 protein, a link between the sarcomere and the nucleus in skeletal muscle. , 2004, Journal of molecular biology.
[43] K. L. Gardner,et al. Transgenic mice with cardiac-specific expression of activating transcription factor 3, a stress-inducible gene, have conduction abnormalities and contractile dysfunction. , 2001, The American journal of pathology.
[44] F. Casas,et al. Coactivation of nuclear receptors and myogenic factors induces the major BTG1 influence on muscle differentiation , 2005, Oncogene.
[45] J. Warter,et al. Selective changes in mitochondria respiratory properties in oxidative or glycolytic muscle fibers isolated from G93AhumanSOD1 transgenic mice , 2001, Neuromuscular Disorders.
[46] S. Tågerud,et al. Denervation‐induced alterations in gene expression in mouse skeletal muscle , 2005, The European journal of neuroscience.
[47] S. Cheema,et al. Neuromuscular accumulation of mutant superoxide dismutase 1 aggregates in a transgenic mouse model of familial amyotrophic lateral sclerosis , 2003, Neuroscience Letters.
[48] A. Echaniz-Laguna,et al. Sodium Valproate Exerts Neuroprotective Effects In Vivo through CREB-Binding Protein-Dependent Mechanisms But Does Not Improve Survival in an Amyotrophic Lateral Sclerosis Mouse Model , 2007, The Journal of Neuroscience.
[49] J. Morrison,et al. Transgenic mice expressing an altered murine superoxide dismutase gene provide an animal model of amyotrophic lateral sclerosis. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[50] D. Cleveland,et al. Toxicity from different SOD1 mutants dysregulates the complement system and the neuronal regenerative response in ALS motor neurons , 2007 .
[51] J. Reichelt,et al. Keratins: a structural scaffold with emerging functions , 2003, Cellular and Molecular Life Sciences CMLS.
[52] H. Horie,et al. Galectin-1 is a component of neurofilamentous lesions in sporadic and familial amyotrophic lateral sclerosis. , 2001, Biochemical and biophysical research communications.
[53] P. Costelli,et al. Ca(2+)-dependent proteolysis in muscle wasting. , 2005, The international journal of biochemistry & cell biology.
[54] J. Morrison,et al. Early and Selective Pathology of Light Chain Neurofilament in the Spinal Cord and Sciatic Nerve of G86R Mutant Superoxide Dismutase Transgenic Mice , 2000, Experimental Neurology.
[55] R. Lieber,et al. Relationship between muscle fiber types and sizes and muscle architectural properties in the mouse hindlimb , 1994, Journal of morphology.
[56] Christian C Witt,et al. The muscle ankyrin repeat proteins: CARP, ankrd2/Arpp and DARP as a family of titin filament-based stress response molecules. , 2003, Journal of molecular biology.
[57] C. Hoogenraad,et al. ATF3 expression precedes death of spinal motoneurons in amyotrophic lateral sclerosis‐SOD1 transgenic mice and correlates with c‐Jun phosphorylation, CHOP expression, somato‐dendritic ubiquitination and Golgi fragmentation , 2005, The European journal of neuroscience.
[58] R. Crumley,et al. Effects of denervation on cell cycle control in laryngeal muscle. , 2004, Archives of otolaryngology--head & neck surgery.
[59] L. Greensmith,et al. The effect of peripheral nerve injury on disease progression in the SOD1(G93A) mouse model of amyotrophic lateral sclerosis , 2005, Neuroscience.
[60] P. Ashton‐Rickardt,et al. Serine protease inhibitor 2A inhibits caspase‐independent cell death , 2004, FEBS letters.
[61] K D Wilkinson,et al. The neuron-specific protein PGP 9.5 is a ubiquitin carboxyl-terminal hydrolase. , 1989, Science.
[62] C. Stichel,et al. Differential expression of cathepsin X in aging and pathological central nervous system of mice , 2007, Experimental Neurology.
[63] J. Haines,et al. Mutations in Cu/Zn superoxide dismutase gene are associated with familial amyotrophic lateral sclerosis , 1993, Nature.
[64] E. Koonin,et al. Regeneration of Peroxiredoxins by p53-Regulated Sestrins, Homologs of Bacterial AhpD , 2004, Science.
[65] R. Oppenheim,et al. Complete Dissociation of Motor Neuron Death from Motor Dysfunction by Bax Deletion in a Mouse Model of ALS , 2006, The Journal of Neuroscience.
[66] K. Csiszȧr,et al. Up-regulation and altered distribution of lysyl oxidase in the central nervous system of mutant SOD1 transgenic mouse model of amyotrophic lateral sclerosis. , 2004, Brain research. Molecular brain research.
[67] V. Meininger,et al. Nogo Provides a Molecular Marker for Diagnosis of Amyotrophic Lateral Sclerosis , 2002, Neurobiology of Disease.
[68] Jihua Fan,et al. Runx1 prevents wasting, myofibrillar disorganization, and autophagy of skeletal muscle. , 2005, Genes & development.
[69] J. Morrison,et al. Time course of neuropathology in the spinal cord of G86R superoxide dismutase transgenic mice , 1998, The Journal of comparative neurology.
[70] Sebastiano Cavallaro,et al. Pathways and genes differentially expressed in the motor cortex of patients with sporadic amyotrophic lateral sclerosis , 2007, BMC Genomics.
[71] C. Johannessen,et al. Regulation of mTOR and Cell Growth in Response to Energy Stress by REDD1 , 2005, Molecular and Cellular Biology.
[72] B. Sakmann,et al. Neural factors regulate AChR subunit mRNAs at rat neuromuscular synapses , 1991, The Journal of cell biology.
[73] Ali S. Hadi,et al. Finding Groups in Data: An Introduction to Chster Analysis , 1991 .
[74] P. Caroni,et al. Early and Selective Loss of Neuromuscular Synapse Subtypes with Low Sprouting Competence in Motoneuron Diseases , 2000, The Journal of Neuroscience.
[75] L. Ferraiuolo,et al. Microarray Analysis of the Cellular Pathways Involved in the Adaptation to and Progression of Motor Neuron Injury in the SOD1 G93A Mouse Model of Familial ALS , 2007, The Journal of Neuroscience.
[76] D. Turk,et al. Lysosomal cysteine proteases: facts and opportunities , 2001, The EMBO journal.
[77] D. Borchelt,et al. An adverse property of a familial ALS-linked SOD1 mutation causes motor neuron disease characterized by vacuolar degeneration of mitochondria , 1995, Neuron.
[78] J. Lowenstein,et al. Ammonia production in muscle and other tissues: the purine nucleotide cycle. , 1972, Physiological reviews.
[79] M. Gurney,et al. Disease mechanisms revealed by transcription profiling in SOD1‐G93A transgenic mouse spinal cord , 2001, Annals of neurology.
[80] J. Glass,et al. Amyotrophic lateral sclerosis is a distal axonopathy: evidence in mice and man , 2004, Experimental Neurology.
[81] B. Sjödin,et al. Decreased resting levels of adenine nucleotides in human skeletal muscle after high-intensity training. , 1993, Journal of applied physiology.