Search results for "ion Channels"

showing 10 items of 137 documents

Arabidopsis mutant dnd2 exhibits increased auxin and abscisic acid content and reduced stomatal conductance

2019

Arabidopsis thaliana cyclic nucleotide-gated ion channel gene 4 (AtCNGC4) loss-of-function mutant dnd2 exhibits elevated accumulation of salicylic acid (SA), dwarfed morphology, reduced hypersensitive response (HR), altered disease resistance and spontaneous lesions on plant leaves. An orthologous barley mutant, nec1, has been reported to over-accumulate indole-3-acetic acid (IAA) and to exhibit changes in stomatal regulation in response to exogenous auxin. Here we show that the Arabidopsis dnd2 over-accumulates both IAA and abscisic acid (ABA) and displays related phenotypic and physiological changes, such as, reduced stomatal size, higher stomatal density and stomatal index. dnd2 showed i…

0106 biological sciences0301 basic medicineHypersensitive responseStomatal conductanceDrought stressPhysiologyMutantArabidopsisPlant ScienceBOX PROTEIN TIR101 natural sciencesSIGNALING PATHWAYS03 medical and health scienceschemistry.chemical_compoundBarley nec1Abscisic acidAuxinGene Expression Regulation PlantArabidopsisLESION MIMIC MUTANTSGeneticsDISEASE RESISTANCEAuxinPLANTAbscisic acid1183 Plant biology microbiology virologyGENE-EXPRESSION2. Zero hungerchemistry.chemical_classificationbiologyIndoleacetic AcidsAbiotic stressArabidopsis Proteinsfungifood and beveragesGATED ION CHANNELSHordeumbiology.organism_classificationDroughts030104 developmental biologychemistryArabidopsis dnd2SALT-STRESSPlant StomataBiophysicsINNATE IMMUNITYAIR HUMIDITYSalicylic acid010606 plant biology & botany
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Magnesium ions promote assembly of channel-like structures from beticolin 0, a non-peptide fungal toxin purified from Cercospora beticola.

1998

Beticolins are toxins produced by the fungus Cercospora beticola. Using beticolin 0 (B0), we have produced a strong and Mg(2+)-dependent increase in the membrane conductance of Arabidopsis protoplasts and Xenopus oocytes. In protein-free artificial bilayers, discrete deflexions of current were observed (12 pS unitary conductance in symmetrical 100 mM KCl) in the presence of B0 (approximately 10 microM) and in the presence of nominal Mg2+. Addition of 50 microM Mg2+ induced a macroscopic current which could be reversed to single channel current by chelating Mg2+ with EDTA. Both unitary and macroscopic currents were ohmic. The increase in conductance of biological membranes triggered by B0 is…

0106 biological sciencesCations DivalentXenopusPlant Science01 natural sciencesHeterocyclic Compounds 4 or More RingsIon ChannelsDivalentMembrane Potentials03 medical and health sciencesAscomycotaBotanyGeneticsAnimalsMagnesiumMagnesium ion030304 developmental biologychemistry.chemical_classificationMembrane potential0303 health sciencesbiologyCell MembraneConductanceBiological membraneCell BiologyMembrane transportMycotoxinsCercospora beticolabiology.organism_classificationchemistryBiophysicsOocytesMembrane channel010606 plant biology & botanyThe Plant journal : for cell and molecular biology
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Crude oil exposures reveal roles for intracellular calcium cycling in haddock craniofacial and cardiac development.

2016

AbstractRecent studies have shown that crude oil exposure affects cardiac development in fish by disrupting excitation-contraction (EC) coupling. We previously found that eggs of Atlantic haddock (Melanogrammus aeglefinus) bind dispersed oil droplets, potentially leading to more profound toxic effects from uptake of polycyclic aromatic hydrocarbons (PAHs). Using lower concentrations of dispersed crude oil (0.7–7 μg/L ∑PAH), here we exposed a broader range of developmental stages over both short and prolonged durations. We quantified effects on cardiac function and morphogenesis, characterized novel craniofacial defects, and examined the expression of genes encoding potential targets underly…

0301 basic medicineCardiac function curveFish ProteinsVDP::Mathematics and natural scienses: 400::Zoology and botany: 480::Marine biology: 497:Matematikk og naturvitenskap: 400::Kjemi: 440::Miljøkjemi naturmiljøkjemi: 446 [VDP]MorphogenesisIntracellular Space010501 environmental sciencesBiology:Mathematics and natural scienses: 400::Zoology and botany: 480::Marine biology: 497 [VDP]01 natural sciencesCalcium in biologyIon ChannelsArticleMyoblasts03 medical and health sciencesMorphogenesisVDP::Mathematics and natural scienses: 400::Chemistry: 440::Environmental chemistry natural environmental chemistry: 446AnimalsPetroleum PollutionCraniofacialPolycyclic Aromatic HydrocarbonsIon channel:Mathematics and natural scienses: 400::Chemistry: 440::Environmental chemistry natural environmental chemistry: 446 [VDP]Cells Cultured0105 earth and related environmental sciences:Matematikk og naturvitenskap: 400::Zoologiske og botaniske fag: 480::Marinbiologi: 497 [VDP]Calcium metabolismRegulation of gene expressionLife Cycle StagesMultidisciplinarySkullFishesGene Expression Regulation DevelopmentalHeartAnatomyEnvironmental ExposureCell biology030104 developmental biologyPetroleumVDP::Matematikk og naturvitenskap: 400::Zoologiske og botaniske fag: 480::Marinbiologi: 497VDP::Matematikk og naturvitenskap: 400::Kjemi: 440::Miljøkjemi naturmiljøkjemi: 446CalciumIntracellularScientific reports
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Bioelectrical Signals and Ion Channels in the Modeling of Multicellular Patterns and Cancer Biophysics

2016

AbstractBioelectrical signals and ion channels are central to spatial patterns in cell ensembles, a problem of fundamental interest in positional information and cancer processes. We propose a model for electrically connected cells based on simple biological concepts: i) the membrane potential of a single cell characterizes its electrical state; ii) the long-range electrical coupling of the multicellular ensemble is realized by a network of gap junction channels between neighboring cells; and iii) the spatial distribution of an external biochemical agent can modify the conductances of the ion channels in a cell membrane and the multicellular electrical state. We focus on electrical effects …

0301 basic medicineCell signalingComputer scienceCèl·lulesQuantitative Biology::Tissues and OrgansCellElectrophysiological PhenomenaCell CommunicationModels BiologicalArticleBiophysical PhenomenaIon ChannelsMembrane PotentialsQuantitative Biology::Cell BehaviorCell membraneion transport03 medical and health sciences0302 clinical medicineNeoplasmsmedicineHumansbiological physicsIon channelIon transporterMembrane potentialMultidisciplinaryBiophysical PhenomenaGap junctionGap JunctionsBiofísicaElectrophysiological PhenomenaMulticellular organism030104 developmental biologymedicine.anatomical_structure030220 oncology & carcinogenesisBiophysicsScientific Reports
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Acid sphingomyelinase – a regulator of canonical transient receptor potential channel 6 (TRPC6) activity

2019

Recent investigations propose the acid sphingomyelinase (ASM)/ceramide system as a novel target for antidepressant action. ASM catalyzes the breakdown of the abundant membrane lipid sphingomyelin to the lipid messenger ceramide. This ASM‐induced lipid modification induces a local shift in membrane properties, which influences receptor clustering and downstream signaling. Canonical transient receptor potential channels 6 (TRPC6) are non‐selective cation channels located in the cell membrane that play an important role in dendritic growth, synaptic plasticity and cognition in the brain. They can be activated by hyperforin, an ingredient of the herbal remedy St. John’s wort for treatment of de…

0301 basic medicineCeramideMedizinCeramidesPC12 CellsBiochemistryFIASMATRPC603 medical and health sciencesCellular and Molecular NeuroscienceTransient receptor potential channelchemistry.chemical_compound0302 clinical medicineddc:570medicineAnimalsInstitut für Biochemie und BiologieIon channelTRPC Cation ChannelsNeuronsRatsCell biologySphingomyelin Phosphodiesterase030104 developmental biologychemistryLipid modificationAcid sphingomyelinaseSphingomyelin030217 neurology & neurosurgerymedicine.drugJournal of Neurochemistry
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DHA induces Jurkat T-cell arrest in G2/M phase of cell cycle and modulates the plasma membrane expression of TRPC3/6 channels.

2021

Abstract We investigated whether docosahexaenoic acid (DHA), a dietary n-3 fatty acid, modulates calcium (Ca2+) signaling and cell cycle progression in human Jurkat T-cells. Our study demonstrates that DHA inhibited Jurkat T-cell cycle progression by blocking their passage from S phase to G2/M phase. In addition, DHA decreased the plasma membrane expression of TRPC3 and TRPC6 calcium channels during T-cell proliferation. Interestingly, this fatty acid increased plasma membrane expression of TRPC6 after 24 h of mitogenic stimulation by phorbol-13-myristate-12-acetate (PMA) and ionomycin. These variations in the membrane expression of TRPC3 and TRPC6 channels were not directly correlated with…

0301 basic medicineDocosahexaenoic AcidsT-Lymphocyteschemistry.chemical_elementCalciumBiochemistryJurkat cellsCalcium in biology03 medical and health scienceschemistry.chemical_compoundJurkat CellsTRPC3TRPC6 Cation ChannelHumansTRPC Cation Channels030102 biochemistry & molecular biologyVoltage-dependent calcium channelIonomycinCell MembraneGeneral MedicineCell cycleCell biologyG2 Phase Cell Cycle Checkpoints030104 developmental biologychemistryGene Expression RegulationDocosahexaenoic acidIonomycinM Phase Cell Cycle CheckpointsTetradecanoylphorbol AcetateBiochimie
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Diversity in the Oligodendrocyte Lineage: Current Evidence

2019

Summary Oligodendrocyte progenitor cells (OPCs), which differentiate into myelinating oligodendrocytes during CNS development, are the main proliferative cells in the adult brain. OPCs are conventionally considered a homogeneous population, particularly with respect to their electrophysiological properties, but this has been debated. We show, by using single-cell electrophysiological recordings, that OPCs start out as a homogeneous population but become functionally heterogeneous, varying both within and between brain regions and with age. These electrophysiological changes in OPCs correlate with the differentiation potential of OPCs; thus, they may underlie the differentiational difference…

0301 basic medicineLineage (genetic)glianeurotransmitter receptorsOligodendrocyte progenitorglutamateBiologyArticleoligodendrocyte precursor cell03 medical and health sciences0302 clinical medicineNeurotransmitter receptormedicineCell LineageProgenitor cellIon channelNeuronsOligodendrocyte Precursor CellsGeneral Neuroscienceion channelsdifferentiationbioelectricityelectrophysiologyOligodendrocytestomatognathic diseasesOligodendrogliamyelin030104 developmental biologymedicine.anatomical_structurenervous systemNeuronNeuroscienceoligodendrocyte030217 neurology & neurosurgeryDiversity (business)Neuron
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Energy transduction and signal averaging of fluctuating electric fields by a single protein ion channel

2016

[EN] We demonstrate the electrical rectification and signal averaging of fluctuating signals using a biological nanostructure in aqueous solution: a single protein ion channel inserted in the lipid bilayer characteristic of cell membranes. The conversion of oscillating, zero time-average potentials into directional currents permits charging of a load capacitor to significant steady-state voltages within a few minutes in the case of the outer membrane porin F (OmpF) protein, a bacterial channel of Escherichia coli. The experiments and simulations show signal averaging effects at a more fundamental level than the traditional cell and tissue scales, which are characterized by ensembles of many…

0301 basic medicineLipid BilayersPorinsGeneral Physics and AstronomyNanotechnology02 engineering and technologyMolecular physicsIon Channelslaw.invention03 medical and health scienceslawElectric fieldEscherichia coliPhysical and Theoretical ChemistryLipid bilayerIon channelbiologyChemistryCell MembraneElectric Conductivity021001 nanoscience & nanotechnologybiology.organism_classificationCapacitor030104 developmental biologyMembraneFISICA APLICADASignal averagingNanodiodes0210 nano-technologyBacterial Outer Membrane ProteinsVoltagePhysical Chemistry Chemical Physics
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TRPM8 Channel Activation Reduces the Spontaneous Contractions in Human Distal Colon

2020

The transient receptor potential-melastatin 8 (TRPM8) is a non-selective Ca2+-permeable channel, activated by cold, membrane depolarization, and different cooling compounds. TRPM8 expression has been found in gut mucosal, submucosal, and muscular nerve endings. Although TRPM8 plays a role in pathological conditions, being involved in visceral pain and inflammation, the physiological functions in the digestive system remain unclear as yet. The aims of the present study were: (i) to verify the TRPM8 expression in human distal colon

0301 basic medicineMaleGene ExpressionPharmacologySettore BIO/09 - Fisiologialcsh:ChemistryTissue Culture Techniqueschemistry.chemical_compound0302 clinical medicineIntestinal MucosaReceptorlcsh:QH301-705.5Spectroscopyhuman colon contractilityAged 80 and overTetraethylammoniumDepolarizationGeneral MedicineIberiotoxinMiddle AgedComputer Science Applications030220 oncology & carcinogenesisTetrodotoxinFemaleMuscle ContractionAgonistSerotoninmedicine.drug_classColonTRPM Cation ChannelsTetrodotoxinApaminCatalysisArticleInorganic Chemistry03 medical and health sciencesIBSmedicineTRPM8HumansPhysical and Theoretical ChemistryMolecular BiologyAgedOrganic ChemistryMuscle SmoothTetraethylammonium chloridePhosphinic Acids1-[Diisopropyl-phosphinoyl]-alkane (DIPA)030104 developmental biologychemistrylcsh:Biology (General)lcsh:QD1-999ApaminTRPM-8PeptidesInternational Journal of Molecular Sciences
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The interplay between genetic and bioelectrical signaling permits a spatial regionalisation of membrane potentials in model multicellular ensembles

2016

AbstractThe single cell-centred approach emphasises ion channels as specific proteins that determine individual properties, disregarding their contribution to multicellular outcomes. We simulate the interplay between genetic and bioelectrical signals in non-excitable cells from the local single-cell level to the long range multicellular ensemble. The single-cell genetic regulation is based on mean-field kinetic equations involving the mRNA and protein concentrations. The transcription rate factor is assumed to depend on the absolute value of the cell potential, which is dictated by the voltage-gated cell ion channels and the intercellular gap junctions. The interplay between genetic and ele…

0301 basic medicineMembrane potentialMultidisciplinaryEcologyCellGap junctionRegionalisationBiologyModels BiologicalArticleIon ChannelsMembrane Potentials03 medical and health sciencesMulticellular organism030104 developmental biologymedicine.anatomical_structureKinetic equationsmedicineBiophysicsAnimalsDrosophilaSignal transductionIon channelSignal Transduction
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