Embryonic regulation of GnRH neuron migration and function
Embryonic regulation of GnRH neuron migration and function
批准号:
8045450
负责人:
DAVID J KOZLOWSKI
金额:
$25.53万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-03-01 至 2013-02-28
关键词:
Action PotentialsAddressAdultAnosmiaBehaviorBiological ModelsBiological Neural NetworksBirthBrainCandidate Disease GeneCellsCharacteristicsClinicalClinical ResearchComplementCongenital AbnormalityCuesDestinationsDevelopmentDevelopmental BiologyDiseaseElectrophysiology (science)EmbryoEmbryonic DevelopmentEtiologyFertilityFishesGenesGeneticGoalsGonadotropin Hormone Releasing HormoneGreen Fluorescent ProteinsHumanHypothalamic structureImmigrationIn VitroKallmann SyndromeLesionLocationMammalsMediatingMicroscopyModelingMolecularMolecular GeneticsMonitorNerveNeuraxisNeurobiologyNeuroendocrine CellNeuronsOutcomePatientsPatternPeptidesPopulationPotassium ChannelPreoptic AreasProsencephalonRegulationReproductionRouteSignal TransductionSmell PerceptionSpecific qualifier valueStereotypingSystemTelencephalonTestingTransgenesTransgenic OrganismsZebrafishcell motilityexperimental analysisextracellulargene functiongenetic manipulationhypothalamic pituitary axisin vivoin vivo ModelinnovationmRNA Expressionmigrationmutantneurophysiologyolfactory bulboverexpressionpublic health relevancerelating to nervous systemreproductiveresearch studyteleost fish
中文摘要
描述(由申请方提供):中枢神经系统(CNS)对生殖的控制由分泌促性腺激素释放激素(GnRH)的神经内分泌细胞群介导。这些GnRH神经元起源于CNS外,并在胚胎发育期间迁移到腹侧端脑和下丘脑。GnRH神经元的不正确迁移是某些形式的生殖疾病的基础,即卡尔曼综合征。然而,胚胎调节GnRH神经元迁移和功能的机制知之甚少。部分原因是GnRH神经元数量很少,在大多数脊椎动物胚胎或完整的成年大脑中无法接近。为了克服这些障碍,我们利用斑马鱼的几个实验特征来识别胚胎迁移过程中的GnRH神经元,并在完整的神经网络中监测电生理活动。本研究的目的是阐明GnRH神经元迁移和功能的体内机制。 在转基因斑马鱼胚胎中,GnRH神经元在出生后不久就表达绿色荧光蛋白,并增加胚胎迁移过程中自发动作电位放电的速率。我们假设GnRH神经元电活动增加是调节迁移速率、途径或目的地的体内机制。我们将:1)确定迁移性GnRH神经元何时何地获得神经生理活性,2)确定正常GnRH神经生理是否需要定型迁移,3)确定神经元活性是否调节GnRH神经元的胚胎迁移。本提案中概述的实验结合了联合收割机转基因斑马鱼、最先进的显微镜和单细胞电生理学来监测体内GnRH神经元迁移和功能。为了确定GnRH神经元迁移和神经元活动之间的功能关系,我们将通过操纵特定Kallmann基因的mRNA表达来破坏GnRH神经元迁移。相反,我们将使用GnRH神经元特异性转基因,仅在GnRH神经元中过表达人类内向整流钾通道,并在迁移过程中沉默电活动。总之,这些分析测试GnRH神经元迁移和发育获得性电活动之间的功能关系。此外,该系统允许使用GnRH神经元迁移的体内模型对人类基因功能(野生型或突变体)进行细胞自主测试。我们已经开发了一个功能强大的模型系统,并提出了一个创新的实验方法,以促进我们的了解体内GnRH神经元迁移。进一步了解GnRH神经元迁移的机制对于确定出生缺陷的病因和预测生殖成熟和生育力的临床结局至关重要。斑马鱼的这些结果补充了正在进行的临床研究工作,旨在确定人类生殖疾病中异常GnRH神经元迁移的分子病因学基础(候选)基因的功能。
公共卫生相关性声明:几种形式的人类生殖疾病是由分泌促性腺激素释放激素(GnRH)的专门神经内分泌细胞的不适当迁移或功能引起的。本研究的目的是通过利用转基因斑马鱼的实验特征来确定胚胎GnRH神经元迁移的分子机制和神经生理学。进一步了解指导GnRH神经元迁移的机制对于确定出生缺陷的病因和预测人类生殖成熟和生育力的临床结果至关重要。
英文摘要
DESCRIPTION (provided by applicant): Central nervous system (CNS) control of reproduction is mediated by a population of neuroendocrine cells that secrete gonadotropin-releasing hormone (GnRH). These GnRH neurons originate outside the CNS and migrate into the ventral telencephalon and hypothalamus during embryogenesis. Incorrect migration of GnRH neurons underlies some forms of reproductive disease, namely Kallmann Syndrome. However, the embryonic mechanisms regulating GnRH neuron migration and function are poorly understood. In part, this is because GnRH neurons are few in number and inaccessible in most vertebrate embryos or the intact adult brain. To overcome these barriers, we exploit several experimental features of zebrafish to identify GnRH neurons during embryonic migration and monitor electrophysiological activity in an intact neural network. The goal of this proposal is to elucidate the in vivo mechanisms of GnRH neuron migration and function. In transgenic zebrafish embryos, GnRH neurons express green fluorescent protein soon after birth and increase the rate of spontaneous action potential firing during embryonic migration. We hypothesize that increased electrical activity in GnRH neurons is an in vivo mechanism to regulate migratory rate, route, or destination. We will: 1) Determine when and where migratory GnRH neurons acquire neurophysiological activity, 2) Determine whether stereotyped migration is required for normal GnRH neurophysiology, and 3) Determine whether neuronal activity regulates embryonic migration of GnRH neurons. Experiments outlined in this proposal combine transgenic zebrafish, state-of-the-art microscopy, and single cell electrophysiology to monitor GnRH neuron migration and function in vivo. To determine the functional relationship between GnRH neuron migration and neuronal activity, we will disrupt GnRH neuron migration by manipulating mRNA expression of specific Kallmann genes. Conversely, we will use a GnRH neuron-specific transgene to overexpress a human inward rectifying potassium channel only in GnRH neurons and silence electrical activity during migration. Together, these analyses test the functional relationship between GnRH neuron migration and developmentally acquired electrical activity. Moreover, this system permits cell autonomous tests of human gene function (wild-type or mutant) using an in vivo model of GnRH neuron migration. We have developed a powerful model system and propose an innovative experimental approach to advance our understanding of GnRH neuron migration in vivo. A further understanding of the mechanisms guiding GnRH neuron migration is essential to determine the etiology of birth defects and predict clinical outcomes regarding reproductive maturation and fertility. These results in zebrafish complement ongoing clinical research efforts aimed toward identifying the function of (candidate) genes that underlie the molecular etiology of abnormal GnRH neuron migration in human reproductive disease.
Public Health Relevance Statement: Several forms of human reproductive disease are caused by the inappropriate migration or function of specialized neuroendocrine cells that secrete gonadotropin-releasing hormone (GnRH). The goal of this proposal is to identify the molecular mechanisms and neurophysiology of embryonic GnRH neuron migration by exploiting the experimental features of transgenic zebrafish. A further understanding of the mechanisms guiding GnRH neuron migration is essential to determine the etiology of birth defects and predict clinical outcomes regarding reproductive maturation and fertility in humans.
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