grant

Investigation of neural ensembles driving pain chronification

Organization UNIVERSITY OF CALIFORNIA-IRVINELocation IRVINE, UNITED STATESPosted 15 Dec 2022Deadline 30 Nov 2027
NIHUS FederalResearch GrantFY2025AccelerationAcuteAcute PainAcutely painfulAffectiveAmygdalaAmygdaloid BodyAmygdaloid NucleusAmygdaloid structureAnatomic SitesAnatomic structuresAnatomyAnimalsAnteriorAreaAutomobile DrivingAxon TerminalsBehaviorBrainBrain Nervous SystemBrain imagingCausalityCell BodyCell Communication and SignalingCell SignalingCellsCentral LobeChromosome MappingChronic intense painClassificationColorComplexDNA RecombinationDataDevelopmentDimensionsDiseaseDisorderDrug DeliveryDrug Delivery SystemsDrug TherapyEmotionalEmotionsEncephalonEtiologyEvolutionFemaleFunctional MRIFunctional Magnetic Resonance ImagingFutureGene LocalizationGene MappingGene Mapping GeneticsGeneticGenetic RecombinationGlutamatesGoalsHealth CareHumanImageImmediate-Early GenesIn Situ HybridizationInsulaInsula of ReilInterventionIntracellular Communication and SignalingInvestigationIsland of ReilL-GlutamateLightLinkLinkage MappingLiteratureMapsMediatingMental HealthMental HygieneMethodsMiceMice MammalsMicrobeadsMicroscopyMicrospheresModern ManMolecular FingerprintingMolecular ProfilingMotivationMurineMusNegative ValenceNerve CellsNerve UnitNervous SystemNervous System DiseasesNervous System DisorderNeural CellNeurocyteNeurologic Body SystemNeurologic DisordersNeurologic Organ SystemNeurological DisordersNeuronsNociceptionNociceptorsOpiatesOpioidPainPain ControlPain MapPain TherapyPain managementPain qualityPainfulPathway interactionsPatientsPeripheralPeripheral nerve injuryPharmacological TreatmentPharmacologyPharmacotherapyPhotoradiationPlayPopulationPositive ValencePrecision therapeuticsPresynaptic Nerve EndingsPresynaptic TerminalsProcessPsychological HealthRabiesRabies mappingRabies trans synaptic tracingRabies virus mediated mappingReceptor ProteinRecombinationReportingResolutionRewardsRoleSensorySignal TransductionSignal Transduction SystemsSignalingSingle cell seqSingle-Nucleus SequencingSiteSpinalStructureSynaptic BoutonsSynaptic TerminalsSystemSystematicsTestingTimeTotal Human and Non-Human Gene MappingViral GeneticsVirusWorkacute to chronic pain transitionadaptive learningamygdaloid nuclear complexbiological signal transductionbrain circuitrybrain tissuebrain visualizationcausationcell typechronic neuropathic painchronic painchronic pain conditionchronic pain controlchronic pain disorderchronic pain interventionchronic pain managementchronic pain patientchronic pain therapychronic pain transitionchronic pain treatmentchronic painful conditioncombatdevelopmentaldisease causationdrivingdrug interventiondrug treatmentexperiencefMRIgene manipulationgenetic approachgenetic manipulationgenetic mappinggenetic strategygenetic technologygenetically manipulategenetically perturbglutamatergichealinghuman imagingimage-based methodimagingimaging methodimaging modalityimaging studyin situ Hybridization Geneticsin situ Hybridization Staining Methodinnovateinnovationinnovativeinterestinventionlabeled by a rabies viruslabeled with rabieslyssamalemolecular profilemolecular signaturemotivated behaviormulti-modal datamulti-modal datasetsmultimodal datamultimodal datasetsnegative affectnegative affectivitynerve injuryneuralneural circuitneural circuitryneural injuryneurocircuitryneurological diseaseneuronalnociceptivenociceptive neuronsnovelopiate deathsopiate mortalityopioid deathsopioid mortalityopioid overdose deathopioid related deathpain behaviorpain chronificationpain interventionpain patientpain perceptionpain reductionpain reliefpain sensationpain treatmentpain-sensing neuronspain-sensing sensory neuronspain-sensing somatosensory neuronspainful sensationpathwaypatient with chronic painperipheral nerve crush injuriespharmaceutical interventionpharmacological interventionpharmacological therapypharmacology interventionpharmacology treatmentpharmacotherapeuticsprecision therapiesprecision treatmentpreservationpreventpreventingrabies based mappingrabies based retrograde mappingrabies circuit tracingrabies labelrabies mediated retrograde monosynaptic tracingrabies retrograde tracingrabies tracerrabies tracingrabies viral tracingrabies virus labelrabies virus labelingrabies virus mediated cellular labelingrabies virus mediated circuit mappingrabies virus monosynaptic circuit tracingrabies virus monosynaptic tracingrabies virus neurotracerrabies virus retrograde tracingrabies virus to labelrabies virus tracingreceptorreduce painrelieve painresolutionssNuc-Seqside effectsingle cell next generation sequencingsingle cell sequencingsingle nucleus RNA-sequencingsingle nucleus seqsingle-nucleus RNA-seqsnRNA sequencingsnRNA-seqsocial rolespatial and temporalspatial temporalspatiotemporalsynaptic circuitsynaptic circuitrytargeted drug therapytargeted drug treatmentstargeted therapeutictargeted therapeutic agentstargeted therapytargeted treatmenttracing with rabiestranscriptomicstransition to chronic paintreat chronic painvirus genetics
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Full Description

PROJECT SUMMARY
The unpleasantness, or negative affective component, of pain perception is an emotional phenomenon distinct

from the perceptive sensory qualities. This affective dimension of pain underlies the suffering and motivational

deficits of chronic pain patients. However, similar cellular-resolution mechanisms within brain networks is lacking

relative to the intricate nociceptive detail in the peripheral and spinal circuits. Thus, a key step toward accelerating

the development of effective pain treatments must be the discovery of the specific neural circuits in the brain that

are responsible for the aversive and unpleasant quality of pain perception. We recently reported the discovery

and characterization of a basolateral amygdalar (BLA) neural ensemble, at single neuron resolution, that

transforms nociceptive information in affective-motivational behavior in both acute and chronic pain conditions.

While these studies provide a critical point of entry into the complex affective circuits of pain, it is not clear how

the BLA nociceptive ensemble connects with other parts of the larger affective brain circuitry.

Our goal here is to provide a systems-level understanding of the nociceptive cortical brain networks involved in

the affective perception of pain by integrating multimodal data from pain-experience-dependent transcriptomics,

activity based whole-brain circuit tracing, and precision chemogenetic control—anchored in motivational

behavior-based classifications—throughout the transition from acute to chronic pain. Thus, to discover this

nociceptive brain network, in AIM 1 we will use a rabies viral-genetic strategy combined with immediate early

gene mapping in cleared, intact brain tissue to locate key neuronal populations whose activity is altered by

chronic neuropathic pain. In AIM 2, we will employ single-nuclei RNA sequencing to link transcriptomic identity

and change in cellular states during pain chronification in defined nociceptive input cells to the BLA noci-

ensemble. In AIM 3, we will chemogenetically manipulate nociceptive cell-types projecting to the BLA to mitigate

pain affective-motivational behaviors with locally infused microsphere drug-delivery. The cellular and functional

identification of these fundamental nociceptive circuits should open new avenues for developing precision

therapeutics to combat different dimensions of pain experiences, including the unpleasant affective component.

Such circuit-targeted therapies could selectively diminish the suffering of pain patients, regardless of etiology

and without influencing reward, while preserving necessary sensory discriminative processes for protective pain

sensation.

Grant Number: 5R01NS130044-03
NIH Institute/Center: NIH

Principal Investigator: KEVIN BEIER

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