Development and optimization of neuronal reprogramming methods
Development and optimization of neuronal reprogramming methods
批准号:
8743632
负责人:
Marius Wernig
金额:
$52.23万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-09-09 至 2019-07-31
关键词:
16p11.222q11.2Abnormal CellAllelesAstrocytesBiologicalBiological AssayBiological ModelsBrainCell Culture TechniquesCell LineCell modelCellsChemicalsCoculture TechniquesComplexConditioned Culture MediaCopy Number PolymorphismCultured CellsDataDependovirusDevelopmentDiseaseDisease modelDrug IndustryEngineeringEnvironmental Risk FactorEpigenetic ProcessGene TargetingGenerationsGenesGeneticGenetic EngineeringGenetic IdentityGoalsGrantHumanHuman GeneticsInfectionInterneuronsLibrariesMediatingMental disordersMethodsModelingModificationMolecularMusMutationNeurogliaNeuronsPatientsPharmaceutical PreparationsPharmacologic SubstancePluripotent Stem CellsPreclinical Drug EvaluationProductionProtocols documentationPsychotic DisordersReproducibilityRiskRisk FactorsSchizophreniaSeveritiesSolidSpecific qualifier valueStagingStem cellsSynapsesSynaptic TransmissionSystemTechnologyTherapeuticTherapeutic AgentsTissuesTransgenesWorkbasecell typedisease phenotypedrug developmenthigh riskhuman diseasehuman subjectimprovedin vivoinduced pluripotent stem cellnovelnovel therapeuticsprotocol developmentresearch studystem cell biologysuicide ratesynaptogenesistechnology developmenttooltraittranscription factor
中文摘要
精神分裂症是一种常见的精神障碍,导致严重的人类痛苦和自杀率增加。
英文摘要
Schizophrenia is a frequent psychotic disorder leading to severe human suffering and increased suicide rates.
Quality and severity of disease phenotypes vary dramatically between patients and the pathogenetic
mechanisms on the molecular, cell biological, or neuronal circuit level are poorly understood. However, human
genetics studies have demonstrated that genetic factors contribute to the highest risk factors to develop
disease. The importance of genetic factors for disease development is widely accepted in the field. Because of
our ability to manipulate and define genetic backgrounds and specific factors (as opposed to potential
environmental factors) in cultured cells, it is possible that critical disease traits of the human brain can be
recapitulated in cultured cell-based models. Recent advances by us and others in the field of epigenetic
reprogramming and stem cell biology has made it possible to generate fully functional human neurons from
pluripotent stem cells. We are therefore very close to interrogate human disease neurons for abnormal cell-
biological traits in a meaningful way. Projects 1 and 2 will begin to analyze disease-specific traits using existing
methods. However, current technology has several shortcomings limiting the full phenotypic characterization.
The goal of Project 3 (this project) is to further develop and optimize existing stem cell methods that will allow
to substantially increase the spectrum of assays to be analyzed. As the protocols are being developed and
become available in Project 3, they will be immediately implemented and utilized in Projects 1 and 2. In
particular, Project 3 will develop two critical components for the overall consortium grant: (1) It will provide the
tools to genetically engineer conditional and/or definitive single gene and large CNV mutations. (2) The project
will develop methods to develop defined inhibitory neuronal subtypes. Together with our already existing
method to generate pure excitatory neuronal subtypes this will allow us to generate mixed cultures with defined
excitatory/ inhibitory neuronal components which will allow the characterization of inhibitory synaptic
transmission. In addition, the project will work on two non-essential but highly desired protocol developments:
(1) Methods will be devised for industrial generation of neurons in large scale to improve consistent phenotypic
analyses and enable the establishment of human cell models for pharmaceutical drug development. (2) We will
develop ways to eliminate the currently required co-culture of mouse glia to be replaced with defined
substances or human cells because use of cell models containing supportive mouse cells may complicated
therapeutic drug development for human use in vivo. We believe the proposed technology developments will
be critical contributions to the field and ultimately enable the generation of authentic human disease cell
models.
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会议论文
Development and optimization of neuronal reprogramming methods
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批准号:9323588
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项目类别:
-
资助金额:$0.0万
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财政年份:2016
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负责人:Marius Wernig
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依托单位:
Development and optimization of neuronal reprogramming methods
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批准号:9116018
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项目类别:
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资助金额:$44.9万
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财政年份:--
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负责人:Marius Wernig
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依托单位:
国内基金
海外基金
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