Search results for "cop"

showing 10 items of 25502 documents

The Nonbilayer Lipid MGDG and the Major Light-Harvesting Complex (LHCII) Promote Membrane Stacking in Supported Lipid Bilayers.

2018

The thylakoid membrane of algae and land plants is characterized by its intricate architecture, comprising tightly appressed membrane stacks termed grana. The contributions of individual components to grana stack formation are not yet fully elucidated. As an in vitro model, we use supported lipid bilayers made of thylakoid lipid mixtures to study the effect of major light-harvesting complex (LHCII), different lipids, and ions on membrane stacking, seen as elevated structures forming on top of the planar membrane surface in the presence of LHCII protein. These structures were examined by confocal laser scanning microscopy, atomic force microscopy, and fluorescence recovery after photobleachi…

0106 biological sciences0301 basic medicineMicroscopy ConfocalChemistryLipid BilayersStackingLight-Harvesting Protein ComplexesPeasfood and beveragesFluorescence recovery after photobleachingMicroscopy Atomic Force01 natural sciencesBiochemistryLight-harvesting complexDiglycerides03 medical and health sciences030104 developmental biologyGlycolipidMembraneThylakoidConfocal laser scanning microscopyBiophysicslipids (amino acids peptides and proteins)Lipid bilayer010606 plant biology & botanyBiochemistry
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Phosphinotripeptidic Inhibitors of Leucylaminopeptidases

2021

Phosphinate pseudopeptide are analogs of peptides containing phosphinate moiety in a place of the amide bond. Due to this, the organophosphorus fragment resembles the tetrahedral transition state of the amide bond hydrolysis. Additionally, it is also capable of coordinating metal ions, for example, zinc or magnesium ions. These two properties of phosphinate pseudopeptides make them an ideal candidate for metal-related protease inhibitors. This research investigates the influence of additional residue in the P2 position on the inhibitory properties of phosphinopeptides. The synthetic strategy is proposed, based on retrosynthetic analysis. The N-C-P bond formation in the desired compounds is …

0106 biological sciences0301 basic medicineModels MolecularMolecular modelQH301-705.5StereochemistryPhosphinesProtein ConformationSwineLAP inhibitorsligand-enzyme interactionPhosphinate01 natural sciencesAminopeptidaseCatalysisArticleInorganic Chemistry03 medical and health sciencesResidue (chemistry)phosphinate pseudopeptideLeucyl AminopeptidaseMoietyPeptide bondAnimalsBiology (General)Physical and Theoretical ChemistryEnzyme InhibitorsQD1-999Molecular BiologyMagnesium ionmolecular modeling; LAP inhibitors; barley aminopeptidase inhibitor; phosphinate pseudopeptide; ligand-enzyme interaction; organophosphorus compoundSpectroscopyChemistrymolecular modelingOrganic ChemistryGeneral Medicineorganophosphorus compoundPeptide FragmentsComputer Science ApplicationsChemistry030104 developmental biologybarley aminopeptidase inhibitorHordeum vulgare010606 plant biology & botanyInternational Journal of Molecular Sciences; Volume 22; Issue 10; Pages: 5090
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The Odorant-Binding Proteins of the Spider Mite Tetranychus urticae

2021

Spider mites are one of the major agricultural pests, feeding on a large variety of plants. As a contribution to understanding chemical communication in these arthropods, we have characterized a recently discovered class of odorant-binding proteins (OBPs) in Tetranychus urticae. As in other species of Chelicerata, the four OBPs of T. urticae contain six conserved cysteines paired in a pattern (C1–C6, C2–C3, C4–C5) differing from that of insect counterparts (C1–C3, C2–C5, C4–C6). Proteomic analysis uncovered a second family of OBPs, including twelve members that are likely to be unique to T. urticae. A three-dimensional model of TurtOBP1, built on the recent X-ray structure of Varroa destruc…

0106 biological sciences0301 basic medicineModels MolecularProteomicsProteomeOdorant bindingProtein ConformationInsectLigandsReceptors Odorant01 natural scienceschemistry.chemical_compoundTetranychus urticaeBiology (General)SpectroscopyPhylogenymedia_commonmass spectrometryGeneticsbiologyligand-bindingMolecular Structurespider mitesGeneral MedicineTetranychus urticaeComputer Science ApplicationsChemistryConiferyl aldehydedisulfide bridgesTetranychidaeProtein Bindingspider mites.QH301-705.5media_common.quotation_subjectodorant-binding proteinsCatalysisArticleInorganic Chemistry03 medical and health sciencesSpider mite<i>Tetranychus urticae</i>AnimalsAmino Acid SequencePhysical and Theoretical ChemistryQD1-999Molecular BiologySpiderOrganic Chemistrybiology.organism_classification010602 entomology030104 developmental biologychemistryVarroa destructorOdorantsChelicerataInternational Journal of Molecular Sciences
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Expression of the Intracellular COPT3-Mediated Cu Transport Is Temporally Regulated by the TCP16 Transcription Factor

2018

[EN] Copper is an essential element in plants. When scarce, copper is acquired from extracellular environment or remobilized from intracellular sites, through members of the high affinity copper transporters family COPT located at the plasma membrane and internal membrane, respectively. Here, we show that COPT3 is an intracellular copper transporter, located at a compartment of the secretory pathway, that is mainly expressed in pollen grains and vascular bundles. Contrary to the COPT1 plasma membrane member, the expression of the internal COPT3 membrane transporter was higher at 12 h than at 0 h of a neutral photoperiod day under copper deficiency. The screening of a library of conditionall…

0106 biological sciences0301 basic medicineMutantchemistry.chemical_elementPlant Sciencelcsh:Plant culture01 natural sciencesTCP1603 medical and health sciencesTranscriptional regulationGene expressionBIOQUIMICA Y BIOLOGIA MOLECULARExtracellularmedicinelcsh:SB1-1110COPT3transcriptional regulationheavy metalsTranscription factorSecretory pathwayOriginal ResearchCopper transportmedicine.diseaseCopperCell biology030104 developmental biologyHeavy metalschemistrycopper transportCopper deficiencyIntracellular010606 plant biology & botanyFrontiers in Plant Science
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An Arabidopsis Mutant Over-Expressing Subtilase SBT4.13 Uncovers the Role of Oxidative Stress in the Inhibition of Growth by Intracellular Acidificat…

2020

Intracellular acid stress inhibits plant growth by unknown mechanisms and it occurs in acidic soils and as consequence of other stresses. In order to identify mechanisms of acid toxicity, we screened activation-tagging lines of Arabidopsis thaliana for tolerance to intracellular acidification induced by organic acids. A dominant mutant, sbt4.13-1D, was isolated twice and shown to over-express subtilase SBT4.13, a protease secreted into endoplasmic reticulum. Activity measurements and immuno-detection indicate that the mutant contains less plasma membrane H+-ATPase (PMA) than wild type, explaining the small size, electrical depolarization and decreased cytosolic pH of the mutant but not orga…

0106 biological sciences0301 basic medicineMutantmedicine.disease_cause01 natural sciencesCatalysisInorganic Chemistrylcsh:ChemistryH<sup>+</sup>-ATPase03 medical and health sciencesorganic acidsmedicinePhysical and Theoretical ChemistryMolecular Biologylcsh:QH301-705.5Spectroscopychemistry.chemical_classificationReactive oxygen speciesNADPH oxidasebiologyNADPH oxidaseEndoplasmic reticulumOrganic ChemistryWild typeROSGeneral MedicineComputer Science ApplicationsCell biology030104 developmental biologychemistrylcsh:Biology (General)lcsh:QD1-999biology.proteinactivation-taggingIntracellularOxidative stress010606 plant biology & botanyOrganic acidInternational Journal of Molecular Sciences
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First extensive characterization of the venom gland from an egg parasitoid: structure, transcriptome and functional role.

2018

The venom gland is a ubiquitous organ in Hymenoptera. In insect parasitoids, the venom gland has been shown to have multiple functions including regulation of host immune response, host paralysis, host castration and developmental alteration. However, the role played by the venom gland has been mainly studied in parasitoids developing in larval or pupal hosts while little is known for parasitoids developing in insect eggs. We conducted the first extensive characterization of the venom of the endoparasitoid Ooencyrtus telenomicida (Vassiliev), a species that develops in eggs of the stink bug Nezara viridula (L.). In particular we investigated the structure of the venom apparatus, its functio…

0106 biological sciences0301 basic medicinePhysiologyGlycosylasesWaspsVenomLaccasesHymenopteraInsectmelanization01 natural sciencesvirulence factorParasitoidTranscriptomePhysiological suppressionLaboratory of EntomologyArthropod Venomsmedia_commonLarvabiologyVirulence factorsPhenotypeNezara viridulalaccazesInsect ProteinsFemaleMelanizationmedia_common.quotation_subjectZoologycomplex mixturesHost-Parasite InteractionsHeteroptera03 medical and health sciencesglycosylasesExocrine GlandsMicroscopy Electron TransmissionAnimalsPeptidaseHost (biology)Laccasefungibiology.organism_classificationLaboratorium voor Entomologiephysiological suppression010602 entomology030104 developmental biologySettore AGR/11 - Entomologia Generale E ApplicatapeptidasesInsect ScienceEPS[SDE.BE]Environmental Sciences/Biodiversity and EcologyPeptidasesTranscriptomeGlycosylaseJournal of insect physiology
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Tonoplast aquaporins facilitate lateral root emergence\ud

2016

Pôle SPE IPM UB; International audience; Aquaporins (AQPs) are water channels allowing fast and passive diffusion of water across cell membranes. It was hypothesized that AQPs contribute to cell elongation processes by allowing water influx across the plasma membrane and the tonoplast to maintain adequate turgor pressure. Here, we report that, in Arabidopsis (Arabidopsis thaliana), the highly abundant tonoplast AQP isoforms AtTIP1;1, AtTIP1;2, and AtTIP2;1 facilitate the emergence of new lateral root primordia (LRPs). The number of lateral roots was strongly reduced in the triple tip mutant, whereas the single, double, and triple tip mutants showed no or minor reduction in growth of the mai…

0106 biological sciences0301 basic medicinePhysiology[SDV]Life Sciences [q-bio]MeristemPopulationArabidopsisMorphogenesisAquaporinPlant ScienceAquaporinsPlant Roots01 natural sciences03 medical and health sciencesGene Expression Regulation PlantArabidopsisGeneticsProtein IsoformsArabidopsis thaliana[SDV.BV]Life Sciences [q-bio]/Vegetal Biologyeducationeducation.field_of_studyMicroscopy ConfocalWater transportbiologyurogenital systemArabidopsis ProteinsReverse Transcriptase Polymerase Chain ReactionGene Expression ProfilingLateral rootQKGene Expression Regulation DevelopmentalWaterBiological TransportArticlesMeristemPlants Genetically Modifiedbiology.organism_classificationMolecular biologyCell biology030104 developmental biologyMutationVacuoles[SDE]Environmental Sciences010606 plant biology & botany
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Loss of

2020

The early secretory pathway involves bidirectional transport between the endoplasmic reticulum (ER) and the Golgi apparatus and is mediated by coat protein complex I (COPI)-coated and coat protein complex II (COPII)-coated vesicles. COPII vesicles are involved in ER to Golgi transport meanwhile COPI vesicles mediate intra-Golgi transport and retrograde transport from the Golgi apparatus to the ER. The key component of COPI vesicles is the coatomer complex, that is composed of seven subunits (α/β/β'/γ/δ/ε/ζ). In Arabidopsis two genes coding for the β-COP subunit have been identified, which are the result of recent tandem duplication. Here we have used a loss-of-function approach to study the…

0106 biological sciences0301 basic medicineProtein subunitArabidopsisPlant Sciencelcsh:Plant culture01 natural sciences03 medical and health sciencessymbols.namesakelcsh:SB1-1110coat protein II (COPII)Plantes Cèl·lules i teixitsCOPIICreixement (Plantes)Secretory pathwayOriginal Researchsalt stressChemistryEndoplasmic reticulumVesiclecoat protein I (COPI)plant growthCOPIGolgi apparatusCell biology030104 developmental biologyCoatomerβ-COPGolgi apparatussymbols010606 plant biology & botanyFrontiers in plant science
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Molecular phylogeny and forms of photosynthesis in tribe Salsoleae (Chenopodiaceae).

2016

Evolution of C3–C4 intermediate and C4 lineages are resolved in Salsoleae (Chenopodiaceae), and a model for structural and biochemical changes for the evolution of the Salsoloid form of C4 is considered.

0106 biological sciences0301 basic medicineRecurrent evolutionPhysiologyBlotting WesternPlant ScienceChenopodiaceaewestern blotsPhotosynthesis01 natural sciences03 medical and health sciencesMicroscopy Electron TransmissionBotanyPhotosynthesisChenopodiaceaeCladePhylogenyCarbon IsotopesbiologyPhylogenetic treeC2 pathway15. Life on landCarbon Dioxidebiology.organism_classificationGlycine Dehydrogenase (Decarboxylating)CO2 compensation pointPhenotypePlant Leaves030104 developmental biologyCompensation pointC3–C4 intermediatesMolecular phylogeneticsTEMleaf anatomyAncestral character state reconstruction010606 plant biology & botanyResearch PaperJournal of experimental botany
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Characterization and purification of a bacterial chlorogenic acid esterase detected during the extraction of chlorogenic acid from arbuscular mycorrh…

2016

International audience; A Gram-negative bacterium able to grow using chlorogenic acid (5-caffeoylquinic acid) as sole carbon source has been isolated from the roots of tomato plants inoculated with the arbuscular mycorrhizal fungus Rhizophagus irregularis. An intracellular esterase exhibiting very high affinity (K-m = 2 mu M) for chlorogenic acid has been extracted and purified by FPLC from the chlorogenate-grown cultures of this bacterium. The molecular mass of the purified esterase determined by SDS-PAGE was 61 kDa and its isoelectric point determined by chromatofocusing was 7.75. The esterase hydrolysed chlorogenic acid analogues (caffeoylshikimate, and the 4- and 3-caffeoylquinic acid i…

0106 biological sciences0301 basic medicineRhizophagus irregularisCoumaric AcidsPhysiologyRoot-associated bacteria[SDV]Life Sciences [q-bio]Arbuscular mycorrhizal fungiPlant ScienceBiologyCoumaric acidRoot exudates01 natural sciencesEsterasePlant RootsProtocatechuic acidSubstrate SpecificityFerulic acid03 medical and health scienceschemistry.chemical_compoundHydrolysisChlorogenic acidBacterial ProteinsSolanum lycopersicumMycorrhizaeGeneticsMethyl caffeate[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyBacteriaEthanolMethanolChlorogenic acidbiology.organism_classification6. Clean waterChlorogenase030104 developmental biologychemistryBiochemistry[SDE]Environmental SciencesCarboxylic Ester Hydrolases010606 plant biology & botany
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