Muscle stem cells: New ALS growth factor therapy and disease model
Muscle stem cells: New ALS growth factor therapy and disease model
批准号:
8863556
负责人:
Masatoshi Suzuki
金额:
$33.47万
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-04-01 至 2020-03-31
关键词:
AddressAdultAmyotrophic Lateral SclerosisBiologyCause of DeathCell LineCell SurvivalCell TherapyCell modelCellsCessation of lifeCharacteristicsCoculture TechniquesCultured CellsDataDiseaseDisease ProgressionDisease modelEnvironmentEquus caballusFailureFamilial Amyotrophic Lateral SclerosisFutureGene MutationGoalsGrowth FactorHealthHeterogeneityHumanImplantIn VitroKnowledgeLaboratoriesLimb structureLongevityMethodsModelingMotorMotor EndplateMotor NeuronsMotor outputMuscleMuscle CellsMuscle FibersMuscle satellite cellMuscular AtrophyNeurodegenerative DisordersNeuromuscular DiseasesNeuromuscular JunctionNeurosciencesOutcomeParalysedPatientsPlayProcessProgressive DiseasePublishingRattusRelative (related person)ResearchRespiratory DiaphragmRespiratory FailureRespiratory ParalysisRodent ModelRoleSkeletal MuscleSocietiesStem cell transplantStem cellsTestingTherapeuticTissuesTranslationsTransplantationUnited States National Institutes of HealthVascular Endothelial Growth FactorsWorkbasecell growtheffective therapyglial cell-line derived neurotrophic factorhuman diseaseimprovedin vitro Modelinduced pluripotent stem cellinsightmotor neuron degenerationmuscle regenerationneuromuscularnovelpreclinical studyprogenitorpublic health relevancerepairedrespiratorystem cell biologystem cell therapytreatment strategy
中文摘要
英文摘要
DESCRIPTION (provided by applicant): Amyotrophic lateral sclerosis (ALS) is a progressive disease causing motor neuron degeneration, muscular atrophy and, ultimately, death by respiratory failure. Our major goal in this project is to determine if newly established human skeletal muscle progenitor/stem cells (hSMPCs) derived from induced pluripotent stem cells (iPSCs) can be used for ex vivo cell therapy (stem cell-based growth factor delivery), and as an in vitro model to study ALS. The fundamental hypothesis guiding this proposal is that iPSC-derived hSMPCs efficiently differentiate into new skeletal muscle cells and contribute to muscle regeneration. This capacity confers the capacity for iPSC-derived hSMPCs to deliver ex vivo growth factors, and to model aspects of ALS in vitro. Our hypothesis is based on our published works and new preliminary data demonstrating the feasibility of producing hSMPCs from iPSCs. We will prepare genetically modified hSMPCs to deliver key growth factors known to be neuroprotective in ALS rodent models, including glial cell line-derived neurotrophic factor (GDNF) and vascular endothelial growth factor (VEGF). After establishing the cells, we will transplant them into the limb muscles to deliver growth factors in ALS rats (Aim 1). We expect integrated progenitors to effectively deliver growth factors to target muscles (including their neuromuscular junctions), thereby preserving motor neuron/muscle attachments, motor neuron survival and limb function. Since the most common cause of death in ALS is respiratory failure, we will further test the hypothesis that diaphragm hSMPC-based growth factor delivery prolongs motor neuron survival, thereby preserving respiratory motor function in ALS rats (Aim 2). Finally, we will create new hSMPC lines from iPSCs derived from familial ALS patient donors. By analyzing their cellular characteristics and co-culturing these cells with motor neurons, we will extend the utility of hSMPCs by simulating ALS in vitro, furthering our understanding of the roles played by muscle derived trophic factors (Aim 3). These aims will provide highly novel insights concerning the potential of ex vivo cell and growth factor-based treatments, and will establish a new disease model to advance our understanding of the relative contributions from muscles and neuromuscular connections in this fatal neurodegenerative disease. iPSC- derived hSMPCs can be used to develop patient-specific, cell-based ALS treatments, and provide novel in vitro models of human disease. The results of this project are expected to accelerate progress towards pre-clinical studies in ALS patients. Given the devastating outcome in ALS, the lack of effective treatments, and the burden on society, it is imperative that the questions posed here be answered in a timely manner.
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批准号:10551320
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项目类别:
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资助金额:$34.21万
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财政年份:2020
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负责人:Masatoshi Suzuki
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依托单位:
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项目类别:
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批准号:9002105
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项目类别:
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资助金额:$33.47万
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财政年份:2015
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负责人:Masatoshi Suzuki
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依托单位:
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项目类别:
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资助金额:$33.47万
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财政年份:2015
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负责人:Masatoshi Suzuki
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项目类别:
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负责人:Masatoshi Suzuki
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依托单位:
海外基金