A NOVEL ROLE OF AUTOPHAGY IN AXONAL DYSTROPHY AND DEGENERATION
A NOVEL ROLE OF AUTOPHAGY IN AXONAL DYSTROPHY AND DEGENERATION
批准号:
7722210
负责人:
Zhenyu Yue
金额:
$3.88万
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 2009-02-28
关键词:
AffinityAutophagocytosisAutophagosomeAxonBindingBrainComputer Retrieval of Information on Scientific Projects DatabaseConditionCultured CellsFundingGrantGreen Fluorescent ProteinsInstitutionLabelLightLurcher MouseMicrotubule-Associated ProteinsModelingMolecularMutationNerve DegenerationNeuronsNumbersPathologyPhysiologicalProtein OverexpressionPurkinje CellsRegulationResearchResearch PersonnelResourcesRoleSourceStructureSwellingTransgenic MiceUnited States National Institutes of Healthaxonopathybiological adaptation to stressmicrotubule-associated protein 1Bnervous system disordernovelresponse
中文摘要
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英文摘要
This subproject is one of many research subprojects utilizing the
resources provided by a Center grant funded by NIH/NCRR. The subproject and
investigator (PI) may have received primary funding from another NIH source,
and thus could be represented in other CRISP entries. The institution listed is
for the Center, which is not necessarily the institution for the investigator.
Autophagy is a highly regulated cellular mechanism for the bulk degradation of cytoplasmic contents. It has been implicated in a variety of physiological and pathological conditions relevant to neurological diseases. However, the regulation of autophagy in neurons and its role in neuronal and axonal pathology are not yet understood. Using transgenic mice producing green fluorescent protein-tagged autophagic marker microtubule-associated protein light chain 3 (GFP-LC3), we provide molecular evidence for the induction of autophagy in axonal dystrophy and degeneration in Purkinje cells of the Lurcher mice, a model for excitotoxic neurodegeneration. We show that the excitotoxic insult of Lurcher mutation triggers an early response of Purkinje cells involving accumulation of GFP-LC3-labeled autophagosomes in axonal dystrophic swellings (a hallmark of CNS axonopathy). In brain, LC3 interacts with high affinity with the microtubule-associated protein 1B (MAP1B). We show that MAP1B binds to LC3 of both cytosolic form (LC3I) and lipidated form (LC3II). Moreover, in cell culture, overexpression of MAP1B results in reduced LC3II levels and number of GFP-LC3-labeled autophagosomes; phosphorylated MAP1B is associated with GFP-LC3-labeled autophagosomes. Furthermore, in brain, phosphorylated MAP1B accumulates in axonal dystrophic swellings of degenerating Purkinje cells and binds to LC3 at increased level. Therefore, the MAP1B-LC3 interaction may participate in regulation of LC3-associated autophagosomes in neurons, in particular at axons, under normal and pathogenic conditions. We propose that induction of autophagy serves as an early stress response in axonal dystrophy and may participate in the remodeling of axon structures.
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