The COPA vesicle protein and pathogenesis of spinal muscular atrophy
The COPA vesicle protein and pathogenesis of spinal muscular atrophy
批准号:
8719190
负责人:
ELLIOT J. ANDROPHY
金额:
$33.75万
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-08-15 至 2018-05-31
关键词:
3&apos Untranslated RegionsAddressAnimal ModelAnimalsAntibodiesApplications GrantsAxonAxonal TransportBindingBiologicalCarrier ProteinsCell Culture TechniquesCellsCoat Protein Complex IComplexCoupledDataDefectDevelopmentEndoplasmic ReticulumFormaldehydeFunctional disorderG-QuartetsGene Expression ProfileGeneticGenetic TranscriptionGoalsGolgi ApparatusGrantHumanInfant MortalityIntracellular TransportInvestigationLongevityLysineMaintenanceMediatingMembrane ProteinsMessenger RNAModelingMolecularMotorMotor Neuron DiseaseMotor NeuronsMotor SkillsMouse StrainsMusMuscle WeaknessNatureNerve DegenerationNeuritesNeuromuscular JunctionNeuronal DysfunctionNeuronsNucleic AcidsOutcomePathogenesisPathologyPathway interactionsPatternPhysiologicalPoint MutationProcessProductionProtein BindingProteinsPublishingRNARNA SequencesRNA SplicingReportingResourcesRoleSeriesSpinal Muscular AtrophySubfamily lentivirinaeSystemTechniquesTestingTransgenic MiceTransgenic OrganismsTransport VesiclesVesiclebasecrosslinkin vivo Modelinnovationinsightlysyllysinemotor neuron functionmouse modelneuron developmentnovelpublic health relevanceresearch studysmall hairpin RNAtrafficking
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): We discovered that the SMN protein binds to alpha-COP, the largest constituent of the heptameric COPI vesicle. The hypothesis to be investigated in this project is that pathogenesis of SMA results from inability of this cargo transport complex to sustain the functional integrity of motor neurons. We explore the role of the SMN protein's interaction with alpha-COP in neurite development and maintenance. Importantly, we observed that over-expression of alpha-COP restores neurite development in SMN depleted NSC34 cells. New data reveal that low levels of SMN alter the functionality of endoplasmic reticulum-Golgi trafficking, suggesting a previously unrecognized effect on this protein processing pathway. We recently reported that the alpha-COP complex incorporates ~800 specific RNAs from the total transcriptome of differentiated NSC-34 cells. A high fraction of these mRNAs contain in their 3' untranslated regions a G-quadruplex motif, which has been assigned a role in neurite localization. Our goal is to identify the mRNAs that depend on SMN for association with the COPI complex, enabling studies of the roles of alpha-COP and SMN in the trafficking of these RNAs into the axon and characterization of their requirement for neuronal development. To examine the biological physiologic significance of the interaction of SMN with alpha-COP and subsequent mechanistic studies, we generated novel transgenic mice with reduced levels of alpha-COP protein, with the prediction this will result in motor unit dysfunction. We also have created a transgenic strain that over-expresses tagged human alpha- COP. These mice will be crossed with SMA model mice with low levels of SMN to test the hypothesis that increased levels of alpha-COP and COPI vesicles promote SMN dependent cargo delivery to the axon and restore motor skills and increase lifespan. These experimental mouse models will be important resources to study the mechanism of neurodegeneration and the transport of proteins and specific RNAs to and within the axon. Pharmacologic induction of the COPI pathway may represent a novel means to treat SMA.
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海外基金