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Understanding the role of the transcription factor Gli3 in Kallmann syndrome and normosmic forms of idiopathic hypogonadotropic hypogonadism.

Understanding the role of the transcription factor Gli3 in Kallmann syndrome and normosmic forms of idiopathic hypogonadotropic hypogonadism.
了解转录因子 Gli3 在卡尔曼综合征和正常形式的特发性低促性腺激素性性腺功能减退症中的作用。
批准号:
10570176
负责人:
Paolo E Forni
金额:
$22.98万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
未结题
起止时间:
2019-03-12 至 2025-02-28
关键词:
AblationAddressAffectAfferent NeuronsAnimalsAreaAxonBiologicalBrainCandidate Disease GeneCellsClinicalCompetenceComplexCuesDNA Sequence AlterationDataDefectDestinationsDevelopmentDiagnosisEmbryoEmbryonic DevelopmentEtiologyFertilityFoundationsGLI3 geneGNRH1 geneGene ExpressionGene Expression ProfilingGenesGeneticGenetic TranscriptionGoalsHumanHuman GeneticsHuman GenomeHypogonadismHypothalamic structureIdiopathic Hypogonadotropic HypogonadismImaging TechniquesImpairmentIn Situ HybridizationIn VitroInfertilityKallmann SyndromeKlinefelter&aposs SyndromeKnockout MiceLinkLoss of HeterozygosityMammalsMesenchymeMissionMolecularMolecular DiagnosisMusMutant Strains MiceMutateMutationNatureNerveNeuronsNoseOlfactory PathwaysOutcomePathogenicityPatternPituitary GlandPituitary GonadotropinsPositioning AttributePublic HealthReporterResearchRoleRouteSHH geneSignal TransductionSmell PerceptionStratificationSystemSystems DevelopmentTestingTherapeuticThree-Dimensional ImagingTranscription CoactivatorUnited States National Institutes of HealthVariantVertebratescandidate selectioncausal variantdiagnostic criteriadiagnostic strategyexome sequencingexperimental studygenetic architecturegenetic pedigreegenome sequencingimprovedin vitro testingin vivoinnovationloss of functionloss of function mutationmigrationmind controlmouse geneticsmutantnegative affectneuron developmentnovelnovel therapeuticsolfactory bulbpersonalized strategiesscaffoldsegregationsmoothened signaling pathwaytranscription factortranscriptometreatment strategy

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Summary The GnRH-1 neurons are cells in the brain that control pubertal onset, sexual competence and fertility of vertebrates. During development, the GnRH-1 neurons migrate from the embryonic nasal area into the brain, where they will eventually take up positions in the hypothalamus to control the release of gonadotropins from the pituitary gland. Defects in GnRH-1 migration induce various types of hypogonadotropic hypogonadism (HH) in humans, characterized by delayed pubertal onset, hypogonadism, and infertility. HH in humans manifests clinically as either Kallmann syndrome (KS) or normosmic idiopathic HH (nIHH). In KS, nIHH is associated with deficiencies in the sense of smell. This association led to the long-held, prevailing view that the GnRH-1 neurons migrate from the nose to the hypothalamus along the axons of olfactory and vomeronasal sensory neurons. However, we still do not know whether his assumption of GnRH-1 migration patterns is true. The overall objective of this application is to delineate the molecular mechanisms that guide GnRH-1 neurons and their migratory scaffold. Our central hypothesis states that GnRH-1 neurons migrate to the hypothalamus on the Terminal Nerve (TN), whose development occurs through molecular signals that only partially overlap with those controlling olfactory and vomeronasal neuronal development. The rationale for this hypothesis derives from understanding how specific genetic mutations linked to KS and nIHH can negatively affect TN development and induce GnRH-1 neuron mispositioning, independent from the olfactory system development. Our preliminary data indicate that transcriptional activator/repressor of the sonic hedgehog signaling pathway, Gli3, controls TN developments and GnRH-1 migration to the brain. Guided by our strong preliminary data, we will test our hypothesis through two specific aims: 1) Determine how the transcriptional regulator Gli3 regulates TN development and GnRH-1 neuronal migration and 2) Define the biologic role of GLI3 mutations in the etiology of KS/nIHH in humans. Our approach is innovative. We will exploit mouse genetics, advanced imaging techniques, human whole genome sequencing data and complementary in-vitro and in-vivo experiments to discover new mechanisms underlying TN development and formation of a functional GnRH-1 system in vertebrates. The proposed research is significant, since it will advance and expand vital clinical information for KS and nIHH in humans. The results from these studies will improve diagnostic criteria and stimulate the development of novel treatments and therapeutic strategies to improve the human condition.
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Understanding the role of the transcription factor Gli3 in Kallmann syndrome and normosmic forms of idiopathic hypogonadotropic hypogonadism.
Understanding the role of the transcription factor Gli3 in Kallmann syndrome and normosmic forms of idiopathic hypogonadotropic hypogonadism.
Understanding the role of the transcription factor Gli3 in Kallmann syndrome and normosmic forms of idiopathic hypogonadotropic hypogonadism.
Molecular Mechanisms Controlling Differentiation and Circuit Formation of Vomeronasal Sensory Neurons
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