0000000000668535

AUTHOR

Salvador Meseguer

0000-0002-2718-4351

showing 4 related works from this author

Intercellular Connectivity and Multicellular Bioelectric Oscillations in Nonexcitable Cells: A Biophysical Model

2018

Bioelectricity is emerging as a crucial mechanism for signal transmission and processing from the single-cell level to multicellular domains. We explore theoretically the oscillatory dynamics that result from the coupling between the genetic and bioelectric descriptions of nonexcitable cells in multicellular ensembles, connecting the genetic prepatterns defined over the ensemble with the resulting spatio-temporal map of cell potentials. These prepatterns assume the existence of a small patch in the ensemble with locally low values of the genetic rate constants that produce a specific ion channel protein whose conductance promotes the cell-polarized state (inward-rectifying channel). In this…

0301 basic medicinePhysicsMembrane potentialGeneral Chemical EngineeringConductanceIon Channel ProteinContext (language use)DepolarizationGeneral ChemistryArticleQuantitative Biology::Cell BehaviorCoupling (electronics)lcsh:Chemistry03 medical and health sciencesMulticellular organism030104 developmental biology0302 clinical medicinelcsh:QD1-999Cell polarityBiophysics030217 neurology & neurosurgery
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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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Bioelectrical model of head-tail patterning based on cell ion channels and intercellular gap junctions

2020

Robust control of anterior-posterior axial patterning during regeneration is mediated by bioelectric signaling. However, a number of systems-level properties of bioelectrochemical circuits, including stochastic outcomes such as seen in permanently de-stabilized "cryptic" flatworms, are not completely understood. We present a bioelectrical model for head-tail patterning that combines single-cell characteristics such as membrane ion channels with multicellular community effects via voltage-gated gap junctions. It complements the biochemically-focused models by describing the effects of intercellular electrochemical coupling, cutting plane, and gap junction blocking of the multicellular ensemb…

BioquímicaTailPolarity (physics)Cèl·lulesBiophysicsHead-tail patterning02 engineering and technology01 natural sciencesIon ChannelsGap junctional communicationElectrochemistryAnimalsRegenerationPhysical and Theoretical ChemistryIon channelBody PatterningPhysicsbiologyRegeneration (biology)010401 analytical chemistryGap junctionGap JunctionsPlanariansGeneral Medicine021001 nanoscience & nanotechnologybiology.organism_classificationElectrophysiological Phenomena0104 chemical sciencesCoupling (electronics)Multicellular organismBioelectricityPlanarianBiophysicsPositional information0210 nano-technologyIon channelHeadIntracellular
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MicroRNA Intercellular Transfer and Bioelectrical Regulation of Model Multicellular Ensembles by the Gap Junction Connectivity.

2017

We have studied theoretically the microRNA (miRNA) intercellular transfer through voltage-gated gap junctions in terms of a biophysically grounded system of coupled differential equations. Instead of modeling a specific system, we use a general approach describing the interplay between the genetic mechanisms and the single-cell electric potentials. The dynamics of the multicellular ensemble are simulated under different conditions including spatially inhomogeneous transcription rates and local intercellular transfer of miRNAs. These processes result in spatiotemporal changes of miRNA, mRNA, and ion channel protein concentrations that eventually modify the bioelectrical states of small multi…

0301 basic medicinePhysicsModels MolecularCell signalingQuantitative Biology::Molecular NetworksEnsemble averageGap junctionIon Channel ProteinGap JunctionsNanotechnologyTransfectionQuantitative Biology::GenomicsQuantitative Biology::Cell BehaviorSurfaces Coatings and FilmsCoupled differential equations03 medical and health sciencesMulticellular organismMicroRNAs030104 developmental biologymicroRNAMaterials ChemistryBiophysicsPhysical and Theoretical ChemistryIntracellularThe journal of physical chemistry. B
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