0000000000148829

AUTHOR

Javier García-planells

0000-0002-3224-2966

showing 6 related works from this author

The gene encoding ganglioside-induced differentiation-associated protein 1 is mutated in axonal Charcot-Marie-Tooth type 4A disease

2001

We identified three distinct mutations and six mutant alleles in GDAP1 in three families with axonal Charcot-Marie-Tooth (CMT) neuropathy and vocal cord paresis, which were previously linked to the CMT4A locus on chromosome 8q21.1. These results establish the molecular etiology of CMT4A (MIM 214400) and suggest that it may be associated with both axonal and demyelinating phenotypes.

Malecongenital hereditary and neonatal diseases and abnormalitiesDNA Mutational AnalysisMolecular Sequence DataMutantMutation MissenseNeural ConductionGenes RecessiveNerve Tissue ProteinsLocus (genetics)BiologyPolymerase Chain ReactionFrameshift mutationCharcot-Marie-Tooth DiseaseGeneticsHumansMissense mutationAge of OnsetAlleleChildFrameshift MutationGeneAllelesGeneticsBrainInfantExonsAnatomyPhenotypeAxonsPedigreeAmino Acid SubstitutionHaplotypesSpinal CordCodon NonsenseSpainChild PreschoolFemaleLod ScoreVocal cord paresisChromosomes Human Pair 8Demyelinating DiseasesNature Genetics
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Dejerine-Sottas neuropathy associated with De Novo S79P mutation of the peripheral myelin protein 22 (PMP22) gene

1998

GeneticsFamily HealthMaleDNA Mutational AnalysisDNABiologyDEJERINE-SOTTAS NEUROPATHYPedigreeAmino Acid SubstitutionPeripheral myelin protein 22Child PreschoolMutation (genetic algorithm)MutationGeneticsHumansPoint MutationFemaleChildHereditary Sensory and Motor NeuropathyPmp22 geneGenetics (clinical)Myelin ProteinsPolymorphism Single-Stranded Conformational
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Functional Assessment of Variants in the TSC1 and TSC2 Genes Identified in Individuals with Tuberous Sclerosis Complex

2011

The effects of missense changes and small in-frame deletions and insertions on protein function are not easy to predict, and the identification of such variants in individuals at risk of a genetic disease can complicate genetic counselling. One option is to perform functional tests to assess whether the variants affect protein function. We have used this strategy to characterize variants identified in the TSC1 and TSC2 genes in individuals with, or suspected of having, Tuberous Sclerosis Complex (TSC). Here we present an overview of our functional studies on 45 TSC1 and 107 TSC2 variants. Using a standardized protocol we classified 16 TSC1 variants and 70 TSC2 variants as pathogenic. In add…

congenital hereditary and neonatal diseases and abnormalitiesGenetic counselingtuberous sclerosis complexBiologyTuberous Sclerosis Complex 1 Protein03 medical and health sciencesTuberous sclerosis0302 clinical medicineTuberous SclerosisGenetic variationTuberous Sclerosis Complex 2 ProteinGeneticsmedicineMissense mutationHumansunclassified variantsGeneGenetics (clinical)Cells Cultured030304 developmental biologyGenetics0303 health sciencesModels GeneticTumor Suppressor ProteinsLife SciencesGenetic Variationmedicine.diseaseTSC23. Good healthnervous system diseasesTSC1medicine.anatomical_structureTSC1TSC2030217 neurology & neurosurgeryCommon disease-common variant
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A Multiomics Study To Unravel the Effects of Developmental Exposure to Endosulfan in Rats: Molecular Explanation for Sex-Dependent Effects

2019

Exposure to low levels of environmental contaminants, including pesticides, induces neurodevelopmental toxicity. Environmental and food contaminants can reach the brain of the fetus, affecting brain development and leading to neurological dysfunction. The pesticide endosulfan is a persistent pollutant, and significant levels still remain detectable in the environment although its use is banned in some countries. In rats, endosulfan exposure during brain development alters motor activity, coordination, learning, and memory, even several months after uptake, and does so in a sex-dependent way. However, the molecular mechanisms driving these effects have not been studied in detail. In this wor…

MaleCerebellumInsecticidescerebellumPhysiologyCognitive NeuroscienceMetabolitePhysiologyBiologyMotor ActivityBiochemistry03 medical and health scienceschemistry.chemical_compoundPhosphatidylinositol 3-Kinases0302 clinical medicineImmune systemSex FactorsPregnancyneurotoxicitymedicineCyclic GMP-Dependent Protein KinasesAnimalsCyclic GMPdevelopmentEndosulfanpesticide030304 developmental biologyCalcium signaling0303 health sciencesFetusBehavior AnimalNeurotoxicityCell BiologyGeneral Medicinemedicine.diseasesignaling pathwaysRatsmedicine.anatomical_structurechemistryPrenatal Exposure Delayed EffectsToxicityFemaleTranscriptome030217 neurology & neurosurgeryEndosulfanmultiomicsSignal Transduction
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Molecular evolution of P transposable elements in the Genus drosophila. II. The obscura species group.

1998

A phylogenetic analysis of P transposable elements in the Drosophila obscura species group is described. Multiple P sequences from each of 10 species were obtained using PCR primers that flank a conserved region of exon 2 of the transposase gene. In general, the P element phylogeny is congruent with the species phylogeny, indicating that the dominant mode of transmission has been vertical, from generation to generation. One manifestation of this is the distinction of P elements from the Old World obscura and subobscura subgroups from those of the New World affinis subgroup. However, the overall distribution of elements within the obscura species group is not congruent with the phylogenetic …

GeneticsbiologyPhylogenetic treeGenes Insectbiology.organism_classificationPolymerase Chain ReactionP elementEvolution MolecularPhylogeneticsGenusMolecular evolutionHorizontal gene transferGeneticsDNA Transposable ElementsAnimalsDrosophilaDrosophila obscuraDrosophila (subgenus)Molecular BiologyEcology Evolution Behavior and SystematicsPhylogenyJournal of molecular evolution
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Genotype and phenotype analysis of Friedreich's ataxia compound heterozygous patients

2000

Friedreich's ataxia is caused by mutations in the FRDA gene that encodes frataxin, a nuclear-encoded mitochondrial protein. Most patients are homozygous for the expansion of a GAA triplet repeat within the FRDA gene, but a few patients show compound heterozygosity for a point mutation and the GAA-repeat expansion. We analyzed DNA samples from a cohort of 241 patients with autosomal recessive or isolated spinocerebellar ataxia for the GAA triplet expansion. Patients heterozygous for the GAA expansion were screened for point mutations within the FRDA coding region. Molecular analyses included the single-strand conformation polymorphism analysis, direct sequencing, and linkage analysis with FR…

AdultHeterozygotecongenital hereditary and neonatal diseases and abnormalitiesAtaxiaGenotypeGenetic LinkageDNA Mutational AnalysisGenes RecessiveCompound heterozygosityLoss of heterozygosityTrinucleotide RepeatsIron-Binding ProteinsGenotypeGeneticsmedicineHumansPoint MutationAge of OnsetAlleleChildAllelesPolymorphism Single-Stranded ConformationalGenetics (clinical)Family HealthGeneticsbiologynutritional and metabolic diseasesmedicine.diseasePedigreePhosphotransferases (Alcohol Group Acceptor)PhenotypeFriedreich AtaxiaChild PreschoolFrataxinbiology.proteinSpinocerebellar ataxiamedicine.symptomTrinucleotide Repeat ExpansionTrinucleotide repeat expansionMicrosatellite Repeats
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