Search results for "Drosophila Melanogaster"

showing 10 items of 426 documents

Taste, movement, and death: varying effects of new prospero mutants during Drosophila development

2003

0022-3034 (Print) Comparative Study Journal Article Research Support, Non-U.S. Gov't; The PGal4 transposon inserted upstream of the pan-neural gene prospero (pros) causes several neural and behavioral defects in the Voila(1) strain. The precise excision of the transposon simultaneously rescued all these defects whereas its unprecise excision created new pros(V) alleles, including the null allele pros(V17). Here, we describe the relationship between the genetic structure of pros locus, larval locomotion, and larval gustatory response. These two behaviors showed varying degrees of variation depending upon the pros allele. We also found a good relation between behavioral alteration, the level …

GenotypeNerve Tissue Proteins/*genetics/metabolismeducationLethalMovement/*physiologyTaste/*geneticsDrosophila melanogaster/embryology/genetics/growth & developmentReaction TimeAnimalsDrosophila ProteinsNeuromuscular Junction/genetics/growth & development/metabolismSouthernLarva/genetics/*growth & developmentAllelesNonmammalianNuclear Proteins/*genetics/metabolismBlottingDevelopmental/physiologyImmunohistochemistryhumanitiesGenomics/methodsDeathInvertebrate/chemistryGene Expression RegulationGenesEmbryoMutationDNA Transposable ElementsGangliaInsectTranscription Factors
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A stress-responsive miRNA regulates BMP signaling to maintain tissue homeostasis

2021

Adult organisms must sense and adapt to environmental fluctuations. In high-turnover tissues such as the intestine, these adaptive responses require rapid changes in gene expression that, in turn, likely involve posttranscriptional gene control. However, intestinal-tissue-specific microRNA (miRNA)-mediated regulatory pathways remain unexplored. Here, we report the role of an intestinal-specific miRNA, miR-958, that non-cell autonomously regulates stem cell numbers during tissue homeostasis and regeneration in the Drosophila adult midgut. We identify its downstream target cabut, the Drosophila ortholog of mammalian KLF10/11 transcription factors, which mediates this miR-958 function by promo…

Green Fluorescent ProteinsCell CountBiologyBone morphogenetic protein03 medical and health sciencesParacrine signallingBleomycin0302 clinical medicineGenes ReportermicroRNAGene expressionAnimalsDrosophila ProteinsHomeostasisRegenerationTranscription factorTissue homeostasis030304 developmental biology0303 health sciencesMultidisciplinaryRegeneration (biology)Stem CellsBiological SciencesCell biologyMicroRNAsDrosophila melanogasterEnterocytesGene Expression RegulationBone Morphogenetic ProteinsStem cell030217 neurology & neurosurgerySignal TransductionTranscription Factors
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Data from: Phylogenomics of Lophotrochozoa with consideration of systematic error

2021

Phylogenomic studies have improved understanding of deep metazoan phylogeny and show promise for resolving incongruences among analyses based on limited numbers of loci. One region of the animal tree that has been especially difficult to resolve, even with phylogenomic approaches, is relationships within Lophotrochozoa (the animal clade that includes molluscs, annelids, and flatworms among others). Lack of resolution in phylogenomic analyses could be due to insufficient phylogenetic signal, limitations in taxon and/or gene sampling, or systematic error. Here, we investigated why lophotrochozoan phylogeny has been such a difficult question to answer by identifying and reducing sources of sys…

Helobdella robustaGlycera dibranchiataMytilus edulisAnnelidaEntalina tetragonaLeptochiton asellusCerebratulus marginatusLoxosomella cf. viviparaGraptacme eboreaLineus longissimusmedicine and health careClymenella torquataRuditapes philippinarumNucella lapillusHaliotis rufescenslong branch attractionPlatyzoaBarentsia gracilisPriapulus caudatusLineus ruberAlitta virenssaturationProchaetoderma californicumLife SciencesPinctada fucataSchistosoma mansoniPolyzoaCephalothrix hongkongensisRhyssoplax olivaceusLoxosoma pectinaricolaPhascolosoma agassiziiAdineta vagaDrosophila melanogasterEntoproctaBugula neritinaPhoronis vancouverensisMedicineNovocrania anomalaVillosa lienosaDaphnia pulexSagitta sp.Pectinaria gouldiiSymbion americanusNuculana pernulaSepia esculentaEnucula tenuisSolemya velumLineus lacteusTubulanus polymorphus-StruckGnathostomula paradoxaBoccardia proboscideaMacellomenia schanderiLaevipilina hyalinaTubulanus polymorphus-HalanychBryozoaPomatoceros lamarckiiSepioteuthis lessonianaParanemertes peregrinaMalacobdella grossaHemithiris psittaceaLeptochiton rugatusTrochozoaBrachionus plicatilisSpathoderma clenchiLaqueus californicusPatella vulgataLottia giganteaCrepidula fornicataPhoronidaAplysia californicaGlottidia pyramidataPhoronis psammophilaSchmidtea mediterraneaAlexandromenia crassaBrachiopodaMegadasys sp.Octopus vulgarisCapitella teletaNeomenia carinatacompositional heterogeneityNemerteaPhenacolepas pulchellaGadila tolmieiMolluscaMacrodasys sp.Crassostrea gigasPedicellina cernuaTaenia pisiformisDosidicus gigasCephalothrix linearisSpiralia
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Data from: Phylogenomics of Lophotrochozoa with consideration of systematic error

2016

Phylogenomic studies have improved understanding of deep metazoan phylogeny and show promise for resolving incongruences among analyses based on limited numbers of loci. One region of the animal tree that has been especially difficult to resolve, even with phylogenomic approaches, is relationships within Lophotrochozoa (the animal clade that includes molluscs, annelids, and flatworms among others). Lack of resolution in phylogenomic analyses could be due to insufficient phylogenetic signal, limitations in taxon and/or gene sampling, or systematic error. Here, we investigated why lophotrochozoan phylogeny has been such a difficult question to answer by identifying and reducing sources of sys…

Helobdella robustaGlycera dibranchiataMytilus edulisAnnelidaEntalina tetragonaLeptochiton asellusCerebratulus marginatusLoxosomella cf. viviparaGraptacme eboreaLineus longissimusmedicine and health careClymenella torquataRuditapes philippinarumNucella lapillusHaliotis rufescenslong branch attractionPlatyzoaBarentsia gracilisPriapulus caudatusLineus ruberAlitta virenssaturationProchaetoderma californicumPinctada fucataSchistosoma mansoniLife sciencesPolyzoaCephalothrix hongkongensisRhyssoplax olivaceusLoxosoma pectinaricolaPhascolosoma agassiziiAdineta vagaDrosophila melanogasterEntoproctaBugula neritinaPhoronis vancouverensisMedicineNovocrania anomalaVillosa lienosaDaphnia pulexSagitta sp.Pectinaria gouldiiSymbion americanusNuculana pernulaSepia esculentaEnucula tenuisSolemya velumLineus lacteusTubulanus polymorphus-StruckGnathostomula paradoxaBoccardia proboscideaMacellomenia schanderiLaevipilina hyalinaTubulanus polymorphus-HalanychBryozoaPomatoceros lamarckiiSepioteuthis lessonianaParanemertes peregrinaMalacobdella grossaHemithiris psittaceaLeptochiton rugatusTrochozoaBrachionus plicatilisSpathoderma clenchiLaqueus californicusPatella vulgataLottia giganteaCrepidula fornicataPhoronidaAplysia californicaGlottidia pyramidataPhoronis psammophilaSchmidtea mediterraneaAlexandromenia crassaBrachiopodaMegadasys sp.Octopus vulgarisCapitella teletaNeomenia carinatacompositional heterogeneityNemerteaPhenacolepas pulchellaGadila tolmieiMolluscaMacrodasys sp.Crassostrea gigasPedicellina cernuaTaenia pisiformisDosidicus gigasCephalothrix linearisSpiralia
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Cyanide binding and heme cavity conformational transitions in **Drosophila melanogaster** hexacoordinate hemoglobin

2006

The reason for the presence of hemoglobin-like molecules in insects, such as Drosophila melanogaster, that live in fully aerobic environments has yet to be determined. Heme endogenous hexacoordination (where HisE7 and HisF8 axial ligands to the heme Fe atom are both provided by the protein) is a recently discovered mechanism proposed to modulate O-2 affinity in hemoglobins from different species. Previous results have shown that D. melanogaster hemoglobin 1 (product of the glob1 gene) displays heme endogenous hexacoordination in both the ferrous and ferric states. Here we present kinetic data characterizing the exogenous cyanide ligand binding process, and the three-dimensional structure (a…

HemeproteinStereochemistryProtein ConformationCyanideMolecular Sequence DataNeuroglobinNerve Tissue ProteinsHemeCrystallography X-RayLigandsBiochemistrychemistry.chemical_compoundHemoglobinsMiceSequence Analysis ProteinMelanogasterAnimalsDrosophila ProteinsHumansCRYSTAL-STRUCTUREHistidineHemeBinding SitesCyanidesbiologyCytoglobinCytoglobinHexacoordinatebiology.organism_classificationGlobinsFERRIC APLYSIAKineticsDrosophila melanogasterchemistryHUMAN NEUROGLOBINAPLYSIA-LIMACINA MYOGLOBINX-RAYHemoglobinDrosophila melanogaster
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Gypsy homologous sequences in Drosophila subobscura (gypsyDS).

1993

Characterization of sequences homologous to the Drosophila melanogaster gypsy transposable element was carried out in Drosophila subobscura (gypsyDS). They were found to be widely distributed among natural populations of this species. From Southern blot and in situ analyses, these sequences appear to be mobile in this species. GypsyDS sequences are located in both euchromatic and heterochromatic regions. A complete gypsyDS sequence was isolated from a D. subobscura genomic library, and a 1.3-kb fragment which aligns with the ORF2 of the D. melanogaster gypsy element was sequenced. Comparisons of this sequence in three species (D. subobscura, D. melanogaster, and D. virilis) indicate that th…

HeterochromatinMolecular Sequence DataTransfectionHomology (biology)Species SpecificityMolecular evolutionDrosophilidaeSequence Homology Nucleic AcidGeneticsMelanogasterAnimalsAmino Acid SequenceCloning MolecularMolecular BiologyEcology Evolution Behavior and SystematicsSouthern blotGeneticsbiologyBase SequenceSequence Homology Amino AcidNucleic acid sequenceChromosome MappingDNAbiology.organism_classificationBiological EvolutionDrosophila subobscuraDrosophila melanogasterDNA Transposable ElementsDrosophilaJournal of molecular evolution
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Origin of neuronal-like receptors in Metazoa: cloning of a metabotropic glutamate/GABA-like receptor from the marine sponge Geodia cydonium.

1999

To date, no conclusive evidence has been presented for the existence of neuronal-like elements in Porifera (sponges). In the present study, isolated cells from the marine sponge Geodia cydonium are shown to react to the excitatory amino acid glutamate with an increase in the concentration of intracellular calcium [Ca2+]i. This effect can also be observed when the compounds L-quisqualic acid (L-QA) or L-(+)-2-amino-4-phosphonobutyric acid (L-AP-4) are used. The effect of L-QA and L-AP-4, both agonists for metabotropic glutamate receptors (mGluRs), can be abolished by the antagonist of group I mGluRs, (RS)-alpha-methyl-4-carboxyphenylglycine. These data suggest that sponge cells contain an mG…

HistologyMolecular Sequence DataGlutamic AcidClass C GPCRBiologyReceptors Metabotropic GlutamatePathology and Forensic MedicineMiceReceptors GABAAnimalsAmino Acid SequenceCloning MolecularSequence Homology Amino AcidMetabotropic glutamate receptor 4Metabotropic glutamate receptor 7Metabotropic glutamate receptor 6Cell BiologyRecombinant ProteinsPoriferaRatsKineticsDrosophila melanogasternervous systemBiochemistryMetabotropic glutamate receptorMetabotropic glutamate receptor 1CalciumMetabotropic glutamate receptor 3Metabotropic glutamate receptor 2Excitatory Amino Acid AntagonistsSequence AlignmentCell and tissue research
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The insect nephrocyte is a podocyte-like cell with a filtration slit diaphragm.

2008

The nephron is the basic structural and functional unit of the vertebrate kidney. It is composed of a glomerulus, the site of ultrafiltration, and a renal tubule, along which the filtrate is modified. Although widely regarded as a vertebrate adaptation, 'nephron-like' features can be found in the excretory systems of many invertebrates, raising the possibility that components of the vertebrate excretory system were inherited from their invertebrate ancestors. Here we show that the insect nephrocyte has remarkable anatomical, molecular and functional similarity to the glomerular podocyte, a cell in the vertebrate kidney that forms the main size-selective barrier as blood is ultrafiltered to …

ImmunoglobulinsMuscle ProteinsNephronBiologyGlomerulus (kidney)urologic and male genital diseasesArticlePodocyteCell LineNephrin03 medical and health sciencesmedicineAnimalsDrosophila Proteins030304 developmental biologyNEPH10303 health sciencesMultidisciplinaryurogenital systemPodocytes030302 biochemistry & molecular biologyMembrane ProteinsAnatomyFiltration diaphragmCell biologymedicine.anatomical_structureDrosophila melanogasterNephrocyte diaphragmnephrocytePodocinbiology.proteinSlit diaphragm
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On the analysis of viability data: an example with Drosophila.

1990

Larval competition experiments involving two wild type and eight mutant strains of Drosophila melanogaster have been carried out following the substitution procedure proposed by Mather and Caligari (1981). Our main goal has been to compare the competitive abilities of two phenotypically indistinguishable strains (wild and Oregon-R) by means of their responses with eight different mutants. Prior to the analyses of viability data, we have studied the normalizing effect of several transformations in order to determine which was best suited for the analyses. The differences found among the five transformations tested and the untransformed data were not very great. The folded power transformatio…

InsectaArthropodaSurvivalmedia_common.quotation_subjectMutantBiologyIntraspecific competitionCompetition (biology)Species SpecificityDrosophilidaeterrestrialfliesGeneticsAnimaliaAnimalsDrosophilidaeGenetics (clinical)media_commonTaxonomyGeneticsEcologyDipteraWild typeBiodiversitybiology.organism_classificationPhenotypeTransformation (genetics)Drosophila melanogasterPhenotypefruit fliesData Interpretation StatisticalMutationDrosophila melanogasterHeredity
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The Dorsocross T-box transcription factors promote tissue morphogenesis in the Drosophila wing imaginal disc.

2012

The Drosophila wing imaginal disc is subdivided into notum, hinge and blade territories during the third larval instar by formation of several deep apical folds. The molecular mechanisms of these subdivisions and the subsequent initiation of morphogenic processes during metamorphosis are poorly understood. Here, we demonstrate that the Dorsocross (Doc) T-box genes promote the progression of epithelial folds that not only separate the hinge and blade regions of the wing disc but also contribute to metamorphic development by changing cell shapes and bending the wing disc. We found that Doc expression was restricted by two inhibitors, Vestigial and Homothorax, leading to two narrow Doc stripes…

Integrinsanimal structuresTime FactorsMorphogenesisBiologyMicrotubulesExtracellular matrixMicrotubuleMorphogenesisAnimalsDrosophila ProteinsWings AnimalTransgenesMolecular BiologyAllelesWingAnatomyNotumCell biologyExtracellular MatrixImaginal discT-boxDrosophila melanogasterMutationMatrix Metalloproteinase 2RNA InterferenceDrosophila ProteinDevelopmental BiologyProtein BindingSignal TransductionTranscription FactorsDevelopment (Cambridge, England)
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