Mechanisms of mTOR-independent axon growth and guidance defects in TSC2 mutant human neurons
Mechanisms of mTOR-independent axon growth and guidance defects in TSC2 mutant human neurons
批准号:
10397403
负责人:
Timothy M Gomez
金额:
$35.29万
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-05-01 至 2025-04-30
关键词:
3-DimensionalAddressAffectAnimal ModelAxonBindingBiological AssayBiological ModelsBrain imagingCell LineCell membraneCellsCognitive deficitsComplexCuesCytoskeletonDataDefectDendritesDevelopmentDiseaseDrug ScreeningEngineeringEpilepsyEtiologyFRAP1 geneFamilyGenetic EngineeringGenomicsGoalsGrowthGrowth ConesGrowth FactorGuanosine Triphosphate PhosphohydrolasesHumanIn VitroIntracellular MembranesLightLocationLysosomesMeasuresMediatingMediator of activation proteinMetabolicMethodsModelingMolecularMutationNervous system structureNeuritesNeurodevelopmental DisorderNeurogliaNeuronsPathway interactionsPatientsPhosphorylationProcessProsencephalonProtein BiosynthesisRegulationResearchRoleSeizuresSeriesSignal PathwaySignal TransductionSiteSymptomsSynapsesTSC1 geneTSC2 geneTestingTherapeuticTherapeutic InterventionTimeTuberous SclerosisUnited States National Institutes of HealthVariantWorkautism spectrum disorderaxon growthaxon guidanceaxonal pathfindingbasecell behaviorcortical tubersdesensitizationdruggable targetexperimental studygain of functiongene correctionimaging studyinduced pluripotent stem cellloss of functionmutantneural networkneuron developmentnoveloverexpressionprotein complexresponserhorho GTP-Binding Proteinssubcellular targeting
中文摘要
越来越多的证据表明,与其他神经发育障碍一样,患有多发性硬化症(TSC)的患者在发育过程中形成的神经元连接存在错误布线。这些
神经元连接的缺陷可能导致TSC的症状,如认知缺陷,自闭症和
癫痫然而,人类神经元对轴突的引导有缺陷,
研究,作为模型来研究发育中的人类神经元的错误指导的分子基础,还没有被
开发为了直接解决这些基本问题,我们将研究人类神经元的发育
我们从TSC患者来源的细胞分化出人类诱导多能干细胞(hiPSC),
他们的基因工程对应物。使用一系列的细胞行为和分子信号分析,我们
将比较TSC 2突变神经元与它们的基因校正,同基因对照神经元在体外和体内
三维前脑球体。我们将研究TSC 2中mTORC 1和mTORC 2信号通路的变化,
突变的神经元,以确定每种信号传导途径对神经元发育的相对贡献。
虽然已经提出mTOR依赖性蛋白质合成的调节是下游所需的,
在几种动物模型系统中,有吸引力的和排斥性的轴突引导,尚不清楚是否相似
机制在人类神经元发育中发挥作用。我们令人惊讶的初步数据表明,TSC 2
在生长锥中独立于mTOR发挥作用,直接调节细胞骨架以控制轴突导向。
在这个提议中,我们将确定TSC 2功能的丧失如何改变人类前脑的发育。
神经元,目前的重点是轴突延伸和敏感性的关键轴突指导线索,两个重要的
TSC2功能异常的细胞后果。我们将确定下游的分子机制
并从功能上测试这些信号通路如何有助于异常轴突延伸,
引导线索反应。从长远来看,我们相信我们的研究可能有助于确定关键的药物靶点
在TSC患者中。
英文摘要
Growing evidence suggests that patients with Tuberous Sclerosis Complex (TSC), like other neuro-developmental disorders, have mis-wiring of neuronal connections that form during development. These
defects in neuronal connectivity likely contribute to symptoms of TSC, such as cognitive deficits, autism and
epilepsy. However, defective axon guidance by human neurons has only been suggested from brain imaging
studies, as models to study the molecular basis for mis-guidance of developing human neurons have not been
developed. To directly address these fundamental questions, we will study the development of human neurons
that we differentiate from human induced pluripotent stem cells (hiPSCs) from TSC patient-derived cells and
their genetically engineered counterparts. Using a series of cell behavior and molecular signaling assays, we
will compare TSC2 mutant neurons with their gene-corrected, isogenic control neurons both in vitro and within
3D forebrain spheroids. We will examine changes in mTORC1 and mTORC2 signaling pathways in TSC2
mutant neurons to determine the relative contributions of each signaling pathway to neuronal development.
While modulation of mTOR-dependent protein synthesis has been suggested to be required downstream of
both attractive and repulsive axon guidance in several animal model systems, it is unknown if similar
mechanisms function in developing human neurons. Our surprising preliminary data suggest that TSC2
functions independent of mTOR in growth cones to directly regulate the cytoskeleton to control axon guidance.
In this proposal, we will determine how loss of TSC2 function alters the development of human forebrain
neurons, with a current focus on axon extension and sensitivity to key axon guidance cues, two important
cellular consequences of abnormal TSC2 function. We will determine the molecular mechanisms downstream
of TSC2 and test functionally how these signaling pathway contribute to abnormal axon extension and
guidance cue responses. Over the long term, we believe our research may help identify key druggable targets
in patients with TSC.
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会议论文
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