课题基金 / 基金详情

The Pain Neural Transcriptome

The Pain Neural Transcriptome
疼痛神经转录组
批准号:
10019971
负责人:
Andrew Mannes
金额:
$0.0万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
Absence of pain sensationAcute PainAddressAffectAfferent NeuronsAgonistAnalgesicsAnesthesia proceduresAnestheticsAnimal ModelAnimalsAutopsyAxonBase SequenceBehaviorBehavioralBiological ModelsBrainBrain regionCalciumCancer ControlCanis familiarisCapsaicinCapsicumCell NucleusCell membraneCellsCerebral cortexClinicalClinical TrialsCommunicationCommunitiesComputer softwareDataData SetDatabasesDefectDevicesDissociative AnestheticsDorsalDynorphinsEnvironmentEnzymesEvolutionExposure toFamilyFluorescenceFoodFoundationsGangliaGel ChromatographyGene ExpressionGene Expression ProfileGeneral AnesthesiaGeneral anesthetic drugsGenesGenetic TranscriptionGlutamatesGoalsHigh Pressure Liquid ChromatographyHigh-Throughput Nucleotide SequencingHippocampus (Brain)HumanHuman ResourcesIn Situ HybridizationInflammationInfrastructureInfusion proceduresInhalationInhalation AnestheticsInterventionInvestigationIon ChannelIsofluraneKetamineKnowledgeLabelLaboratoriesLeadLigandsLimb structureLipidsMeasuresMediatingMemoryMessenger RNAMethodologyModelingMolecularMolecular BiologyMolecular NeurobiologyMolecular ProfilingMorphineMotorMusMyelin SheathNerveNerve EndingsNeuraxisNeurogliaNeuronsNociceptionNuclearOpioidOpioid PeptideOrganismPainPain ResearchPain managementPathologicPathway interactionsPatientsPeptidesPeripheralPeripheral NervesPersistent painPharmacologyPhysiologicalPhysiologyPopulationPosterior Horn CellsPreparationProcessProteinsProtocols documentationPublishingRadioimmunoassayRattusRecoveryRegulationReportingResearchResearch MethodologyResiniferatoxinResistanceResolutionResourcesRoleRunningSamplingSchwann CellsScientistSensorySpinal CordSpinal GangliaSupporting CellSurgical incisionsSynapsesSynaptic TransmissionSystemTRPV1 geneTechnologyTestingTimeTissue ProcurementsTissue SampleTissuesTrainingTranscriptTranscription ProcessTranscriptional RegulationUp-Regulationanaloganaplastic lymphoma kinasecancer painchronic painclinical paincognitive functioncognitive processcohortcomparativedeep sequencingdorsal hornendogenous opioidsexperimental studyfunctional plasticityhuman modelhuman tissueinjuredinsightkappa opioid receptorsmRNA sequencingneural circuitnon-opioid analgesicopioid epidemicpain modelpain patientparalogous genepre-prodynorphinpreproenkephalinreceptorrecruitrelating to nervous systemtherapeutic developmenttranscription factortranscriptometranscriptome sequencingtranscriptomicstransmission process

项目摘要

项目成果

Andrew Mannes的其他基金

相似基金

相关文献

中文摘要
翻译
概述:本项目的目标是了解急性和慢性疼痛模型、人类患者或死后样本中疼痛感知神经元和外周组织在转录组水平的分子生物学和转录组参数的调节。实验室建立了研究方法和方案,建立了硬件和软件基础设施,形成了协作安排,培训了一支科学家和支持人员团队,以利用RNA-Seq,原位杂交和组织采购的方法。我们已经在各种物种和模型中进行了数百次深度测序,获得了数十亿次转录组序列信息。我们专注于对结果数据集的分析,这些数据集包括生理或遗传标记的痛觉神经元、外周炎症期间脊髓背侧的神经元、炎症或手术切口外周组织模型、轴切背根神经节(DRG)神经元、脊髓背侧和腹侧、外周神经、外周组织以及包括伤害感觉回路的人体组织。我们也在研究受全身麻醉影响的高阶脑区的转录过程。使用较新的高通量测序设备,可以对多个时间点进行采样,以跟踪干预的演变和分辨率,每个时间点有足够的读取深度和样本数量,从而分别进行彻底的评估和统计比较。因为我们分离了某些神经元和非神经元细胞群,我们知道哪些基因在痛觉神经元中,哪些基因主要在非痛觉神经元中,如本体感觉初级传入和支持细胞或雪旺细胞。通过这种类型的组织和神经元特异性信息,形成关于疼痛生理学的深刻假设的能力大大提高了。我们现在有了所有介导DRG和脊髓感觉和运动功能以及髓鞘形成的基因的定量信息,这反过来又使我们能够建立新的水平来理解疼痛是如何在动物模型和人类的外周和中枢神经系统中产生、传递、处理和调节的。
英文摘要
Overview: The objectives of this project are to understand the molecular biology of pain-sensing neurons and peripheral tissues at the transcriptome level and modulation of transcriptomic parameters in acute and chronic pain models and in human patients or post-mortem samples. The laboratory has established research methodology and protocols, built an infrastructure of hardware and software, formed collaborative arrangements, trained a team of scientists and support personnel to utilize the methodology of RNA-Seq, in situ hybridization and tissue procurement. We have performed hundreds of deep sequencing runs in various species and models resulting in many billions of reads of transcriptome sequence information. We are intensively involved in the analysis of the resulting datasets that encompass physiologically or genetically labeled pain-sensing neurons, neurons in dorsal spinal cord during peripheral inflammation, models of inflamed or surgical incision peripheral tissue, axotomized dorsal root ganglion (DRG) neurons, dorsal and ventral spinal cords, peripheral nerve, and peripheral tissue as well as human tissues comprising the nociceptive circuit. We are also investigating transcriptional processes affected by general anesthesia in higher order brain regions. Use of the newer high-throughput sequencing devices allows sampling of multiple time points to follow the evolution and resolution of the intervention with enough read depth and number of samples at each point to permit thorough assessment and statistical comparison, respectively. Because we isolated certain neuronal and non-neuronal cell populations, we know which genes are in pain-sensing neurons and which are in mainly non-pain-sensing neurons such as proprioceptive primary afferents, and supporting cells or Schwann cells. The ability to form incisive hypotheses regarding pain physiology is greatly advanced by this type of tissue and neuron-specific information. We now have quantitative information on all the genes that mediate DRG and spinal cord sensory and motor functions and formation of the myelin sheath which, in turn, permits us to build new levels of understanding of how pain is generated, transmitted, processed and modulated in the peripheral and central nervous systems in animal models and humans. TRPV1 Transcriptome: One important focus for our group is the subpopulation of DRG neurons that express the thermo-, chemo-, pH-, and lipid-responsive ion channel called TRPV1. This ion channel is also gated by capsaicin, the active ingredient in hot pepper. We have demonstrated that the potent capsaicin analog resiniferatoxin (RTX) can control cancer pain in dogs and humans indicating a crucial role for TRPV1+ neurons in transmission of clinical pain. Because of the efficacy of manipulations aimed at the TRPV1-expressing DRG neurons, we performed deep RNA sequencing (RNA-Seq) on mouse, rat, canine, and human ganglionic preparations targeting TRPV1 neurons. We published initial reports on the comprehensive transcriptomic profile of this clinically important population of nociceptive neurons, followed by a second investigation that distinguished the contribution of Schwann cells versus neurons to the DRG transcriptome and extended the analysis to TRPV1+ neurons functionally identified by agonist-activated calcium fluorescence and DRGs obtained at autopsy from one of our human cancer pain patients who had been treated with RTX, a cohort of canines with cancer pain that were also treated for pain with RTX and controlled treatments in the rat. In combination, these data demonstrate that the most sensitive neuronal component is the centrally projecting axons that contain TRPV1 whereas the cell bodies in DRG are comparatively resistant to RTX. This important mechanistic insight was gained from transcriptomic analyses and is being used to fine-tune the administration protocol in our human clinical trial. Analgesia transcriptome: One of the most interesting aspects of the transcriptome analyses is quantitative insight provided by next-gen RNA-Seq. This is a high-resolution, transformative technology that provides sequence-based counting of transcripts to categorize, for example, genes that are well-expressed versus those expressed at an inconsequential level. Additionally, we can make qualitative assignments as to which molecular paralogs are in the nociceptive populations allowing a more informative mechanistic framework to emerge. In this cycle we examined the endogenous opioid peptide precursors and peptides preproenkephalin and pre prodynorphin in dorsal spinal cord after an experimental inflammation through the combined use of radioimmunoassay and HPLC and gel filtration chromatography for peptide levels, RNA-Seq for the mRNA levels, and in situ hybridization for combined cellular localization as well as behavioral characterization of the animals alteration in nociceptive behaviors. The focus was on the dynorphin family of endogenous opioids, and this opioid peptide and mRNA was strongly up-regulated in dorsal spinal cord neurons. We also performed a direct comparison of transcriptome level alterations in dorsal horn after inflammation compared to surgical incision. Dynorphin was a strong neuronal signature in both models. Transcriptome analysis also showed upregulation of anaplastic lymphoma kinase (ALK) in the spinal cord sample. In situ hybridization showed that ALK and dynorphin were in the same subpopulation of neurons and that these constituted a population of glutamatergic dorsal horn neurons. Analyses of the kappa opioid receptor system using a selective antagonist to block the action of endogenous dynorphin The results suggest that endogenous dynorphin acts to aid in resolution of the hyperalgesic state engendered by peripheral inflammation. Thus, we identify a critical component, dynorphin, and a critical cell population, dynorphinergic-glutamatergic excitatory dorsal horn neurons that participate in the regulation of spinal cord hyperexcitability. We hypothesize that these neurons are of adaptive significance, such that they reduce tonic hyperexcitability and allow an injured organism to continue to forage for food while protecting the injured limb from further damage. Anesthesia Transcriptome: We are in the process of completing a transcriptomic assessment of the effects of inhalation general anesthesia and ketamine infusion on cortical and hippocampal transcriptomes and associated proteins identified from the gene analysis. These are initial steps to a larger investigation of the general anesthesia on cognitive function. In humans, general anesthesia can be deleterious to cognitive function. We hypothesize that mechanistic insight into the defect state can be obtained by understanding the molecular-level changes induced by anesthesia and the capacity for recovery. Our results indicate that communication between synaptic input and nuclear transcriptional control is strongly inhibited by general anesthesia and that the alterations are more pronounced in cortex than hippocampus. We detect widespread modulation of genes that mediate functional plasticity and memory formation. Corresponding decreases in several of the proteins are also observed. The data suggest that general anesthesia can transiently uncouple synaptic activity from neuronal transcriptional control. The situation turned out to be quite different for ketamine where we saw activation of a subset of immediate early transcription factors rather than a suppression of their basal expression as well as activation of the Nrf2 pathway.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
The Pain Neural Transcriptome
  • 批准号:
    9555581
  • 项目类别:
  • 资助金额:
    $0.0万
  • 财政年份:
    --
  • 负责人:
    Andrew Mannes
  • 依托单位:
Integrative And Molecular Studies Of Pain And Pain Control
  • 批准号:
    10691772
  • 项目类别:
  • 资助金额:
    $0.0万
  • 财政年份:
    --
  • 负责人:
    Andrew Mannes
  • 依托单位:
Mechanisms of Pain and Immune Processes
  • 批准号:
    10487162
  • 项目类别:
  • 资助金额:
    $0.0万
  • 财政年份:
    --
  • 负责人:
    Andrew Mannes
  • 依托单位:
The Pain Neural Transcriptome
  • 批准号:
    10691774
  • 项目类别:
  • 资助金额:
    $0.0万
  • 财政年份:
    --
  • 负责人:
    Andrew Mannes
  • 依托单位:
海外基金