Search results for "Optogenetics"

showing 10 items of 34 documents

Red Light Optogenetics in Neuroscience

2022

Optogenetics, a field concentrating on controlling cellular functions by means of light-activated proteins, has shown tremendous potential in neuroscience. It possesses superior spatiotemporal resolution compared to the surgical, electrical, and pharmacological methods traditionally used in studying brain function. A multitude of optogenetic tools for neuroscience have been created that, for example, enable the control of action potential generation via light-activated ion channels. Other optogenetic proteins have been used in the brain, for example, to control long-term potentiation or to ablate specific subtypes of neurons. In in vivo applications, however, the majority of optogenetic too…

neuroscienceopsinbrainNeurosciences. Biological psychiatry. Neuropsychiatryoptogeneticsnear-infraredneuronRC321-571Frontiers in Cellular Neuroscience
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Temporally precise control of single-neuron spiking by juxtacellular nanostimulation

2017

Temporal patterns of action potentials influence a variety of activity-dependent intra- and intercellular processes and play an important role in theories of neural coding. Elucidating the mechanisms underlying these phenomena requires imposing spike trains with precisely defined patterns, but this has been challenging due to the limitations of existing stimulation techniques. Here we present a new nanostimulation method providing control over the action potential output of individual cortical neurons. Spikes are elicited through the juxtacellular application of short-duration fluctuating currents (“kurzpulses”), allowing for the sub-millisecond precise and reproducible induction of arbitr…

Male0301 basic medicine2-amino-5-phosphopentanoic acidPatch-Clamp TechniquesTime FactorsPhysiologyComputer scienceAction Potentialsgenetics [Luminescent Proteins]pharmacology [Valine]metabolism [Cytoskeletal Proteins]Mice0302 clinical medicineCortex (anatomy)physiology [Action Potentials]genetics [Nerve Tissue Proteins]6-Cyano-7-nitroquinoxaline-23-dioneNeuronsGeneral Neurosciencepharmacology [Excitatory Amino Acid Antagonists]Valinephysiology [Neurons]medicine.anatomical_structurepharmacology [6-Cyano-7-nitroquinoxaline-23-dione]FemaleSpike (software development)Neuroinformaticsgenetics [Synapsins]Models NeurologicalBiophysicsMice TransgenicNerve Tissue ProteinsOptogenetics03 medical and health sciencesmedicinedrug effects [Neurons]Animalsmetabolism [Synapsins]ddc:610metabolism [Luminescent Proteins]activity regulated cytoskeletal-associated proteingenetics [Cytoskeletal Proteins]analogs & derivatives [Valine]metabolism [Nerve Tissue Proteins]drug effects [Action Potentials]Somatosensory CortexSynapsinsElectric StimulationOptogeneticsCytoskeletal ProteinsLuminescent Proteins030104 developmental biologynervous systemInnovative Methodologycytology [Somatosensory Cortex]NeuronWhole cellExcitatory Amino Acid AntagonistsNeuroscience030217 neurology & neurosurgeryJournal of Neurophysiology
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Optogenetically blocking sharp wave ripple events in sleep does not interfere with the formation of stable spatial representation in the CA1 area of …

2016

During hippocampal sharp wave/ripple (SWR) events, previously occurring, sensory inputdriven neuronal firing patterns are replayed. Such replay is thought to be important for plasticity-related processes and consolidation of memory traces. It has previously been shown that the electrical stimulation-induced disruption of SWR events interferes with learning in rodents in different experimental paradigms. On the other hand, the cognitive map theory posits that the plastic changes of the firing of hippocampal place cells constitute the electrophysiological counterpart of the spatial learning, observable at the behavioral level. Therefore, we tested whether intact SWR events occurring during th…

LightPhysiologylcsh:MedicineHippocampusTetrodesMiceAnimal Cells571 PhysiologyMedicine and Health Scienceslcsh:ScienceNeuronsLight PulsesBrain MappingNeuronal PlasticityPyramidal CellsPhysicsElectromagnetic RadiationBrainLaboratory EquipmentSignal Filteringsharp wave ripple eventesBioassays and Physiological AnalysisOptical EquipmentVacuum ApparatusPhysical SciencesEngineering and TechnologyFemaleCellular TypesAnatomyResearch ArticleGanglion CellsArchaeal ProteinsSpatial LearningEquipmentResearch and Analysis Methodsuni (lepotila)AnimalshippokampusCA1 Region HippocampalLaserslcsh:RCorrectionBiology and Life SciencesNeurophysiological AnalysisCell BiologyBrain WavesMice Inbred C57BLOptogeneticsCellular NeuroscienceSignal ProcessingExploratory Behavior570 Life sciences; biologylcsh:QPhysiological ProcessesSleepNeuroscience
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Combining Optogenetics with MEA, Depth-Resolved LFPs and Assessing the Scope of Optogenetic Network Modulation

2017

Scope (project management)Computer scienceModulationOptogeneticsNeuroscience
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Optogenetic Interpellation of Behavior Employing Unrestrained Zebrafish Larvae

2017

Zebrafish larvaeBiologyOptogeneticsNeuroscience
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Optogenetics: a new method for the causal analysis of neuronal networks in vivo

2012

Abstract The causal analysis of neuronal network function requires selective manipulations of ge­netically defined neuronal subpopulations in the intact living brain. Here, we highlight the method of optogenetics, which meets those needs. We cover methodological aspects, limitations, and practical applications in the field of neurosciences. The fundamentals of optogenetics are light-sensitive transmembrane channels and light-driven ion pumps, which can be genetically encoded, without requir­ing the application of exogenous cofactors. These opsins are expressed in neurons by means of viral gene transfer and cell-specific promoters. Light for stimulation can be non- or minimally invasively de…

0301 basic medicineOpsinDepolarizationOptogeneticsBiologyHyperpolarization (biology)NeurophysiologyGenetically modified organism03 medical and health sciences030104 developmental biology0302 clinical medicineBiological neural networkPremovement neuronal activityNeuroscience030217 neurology & neurosurgerye-Neuroforum
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Power-effective scanning with AODs for 3D optogenic applications

2022

Two-photon (2P) excitation is a cornerstone approach widely employed in neuroscience microscopy for deep optical access and sub-micrometric-resolution light targeting into the brain. However, besides structural and functional imaging, 2P optogenetic stimulations are less routinary, especially in 3D. This is because of the adopted scanning systems, often feebly effective, slow and mechanically constricted. Faster illumination can be achieved through acousto-optic deflectors (AODs) although their applicability to large volumes excitation has been limited by large efficiency drop along the optical axis. Here, we present a new AOD-based scheme for 2P 3D scanning that improves the power delivery…

Neuronsacousto-optic deflectorsGeneral EngineeringBrainGeneral Physics and AstronomyGeneral ChemistryTwo-photon (2P) excitationSettore FIS/07 - Fisica Applicata(Beni Culturali Ambientali Biol.e Medicin)Settore FIS/03 - Fisica Della MateriaGeneral Biochemistry Genetics and Molecular BiologyAnimalsGeneral Materials ScienceoptogeneticsAcousto-optic deflectors optogenics Two-photon excitationPhotic StimulationZebrafish
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Dopamine neurons drive fear extinction learning by signaling the omission of expected aversive outcomes

2018

Extinction of fear responses is critical for adaptive behavior and deficits in this form of safety learning are hallmark of anxiety disorders. However, the neuronal mechanisms that initiate extinction learning are largely unknown. Here we show, using single-unit electrophysiology and cell-type specific fiber photometry, that dopamine neurons in the ventral tegmental area (VTA) are activated by the omission of the aversive unconditioned stimulus (US) during fear extinction. This dopamine signal occurred specifically during the beginning of extinction when the US omission is unexpected, and correlated strongly with extinction learning. Furthermore, temporally-specific optogenetic inhibition o…

0301 basic medicineMaleMouseExtinction PsychologicalPhotometry0302 clinical medicineFear conditioningBiology (General)extinctionGeneral NeuroscienceQRElectroencephalographyGeneral MedicineFearmusculoskeletal systemhumanitiesVentral tegmental areamedicine.anatomical_structureMedicineAnxietymedicine.symptomdopaminePsychologygeographic locationsmedicine.drugResearch ArticleQH301-705.5ScienceOptogeneticsUnconditioned stimulussafety learningGeneral Biochemistry Genetics and Molecular Biology03 medical and health sciencesextinction ; fear conditioning ; safety learning ; dopamineDopaminemedicineAvoidance LearningAnimalsLearningddc:610General Immunology and MicrobiologyDopaminergic NeuronsVentral Tegmental AreaExtinction (psychology)social sciencesfear conditioningMice Inbred C57BLOptogeneticsElectrophysiology030104 developmental biologyNeuroscience030217 neurology & neurosurgeryNeuroscience
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2016

During hippocampal sharp wave/ripple (SWR) events, previously occurring, sensory input-driven neuronal firing patterns are replayed. Such replay is thought to be important for plasticity-related processes and consolidation of memory traces. It has previously been shown that the electrical stimulation-induced disruption of SWR events interferes with learning in rodents in different experimental paradigms. On the other hand, the cognitive map theory posits that the plastic changes of the firing of hippocampal place cells constitute the electrophysiological counterpart of the spatial learning, observable at the behavioral level. Therefore, we tested whether intact SWR events occurring during t…

0301 basic medicineMultidisciplinaryCognitive mapComputer scienceHippocampusSensory systemHippocampal formationOptogenetics03 medical and health sciencesElectrophysiology030104 developmental biology0302 clinical medicineNeuroplasticitySpatial learningNeuroscience030217 neurology & neurosurgeryPLOS ONE
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Optogenetic Control of Intracellular Signaling: Class II Opsins

2017

Class (computer programming)OpsinChemistryOptogeneticsNeuroscienceIntracellular
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