Cross regulation between JNK and Insulin Signaling
Cross regulation between JNK and Insulin Signaling
批准号:
7415044
负责人:
Dirk Bohmann
金额:
$27.39万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-05-01 至 2011-04-30
关键词:
Adipose tissueAgeAgingAnimal ModelAnimalsAutophagocytosisBindingBiochemical GeneticsBiologicalCellsComplementConditionCultured CellsDataDeacetylaseDevelopmentDiabetes MellitusDiseaseDrosophila genusDrosophila melanogasterEnergy MetabolismEventFat BodyFatty acid glycerol estersFunctional disorderGene ExpressionGenesGeneticGoalsGrowthHistone DeacetylationIncidenceInsulinInsulin ResistanceLarvaLifeLinkLongevityMalignant NeoplasmsMeasurementMediatingMediationMetabolicMetabolic DiseasesMetabolic stressMetabolismMethodsMitotic Cell CycleModelingMolecularMolecular GeneticsMusN-terminalNutritionalObesityOrganOrganismOxidative StressPathway interactionsPersonal SatisfactionPhosphorylationPhosphotransferasesProcessProteinsPublishingRateRegulationResearchResearch PersonnelResistanceRoleSignal PathwaySignal TransductionSomatomedinsStarvationStimulation of Cell ProliferationStressSystemTestingTherapeutic InterventionTissuesValidationWorkbasebiological adaptation to stresscell growthflyforkhead proteingene repressionin vivoinsightinsulin signalinginterestnovelprogramsrepairedresearch studyresponsesenescencesizestress-activated protein kinase 1transcription factor
中文摘要
描述(由申请人提供):胰岛素和IGF信号(IIS)的失调与糖尿病等代谢性疾病有关,并可增加癌症发病率。胰岛素信号是由营养输入调节的,IIS控制细胞生长和代谢。遗传模式生物的研究表明,除了这些代谢和生长控制功能外,IIS还可以增加对氧化应激的敏感性,加速衰老。相反,IIS活性的降低可以促进环境应激耐受性,并使蠕虫、苍蝇和小鼠长寿。因此,代谢和应激信号都可能调节IIS通路的反应。由于这些机制将直接联系控制生长和衰老的过程,因此它们将具有关键的生物医学意义。申请人在对果蝇的初步研究中发现,应激和代谢信号分别通过jun - n末端激酶(JNK)和IIS途径转导,汇聚在Foxo上,Foxo是一种转录因子,已被证明可以促进多细胞生物的抗逆性和寿命。该提案描述了将验证JNK信号激活Foxo以抑制iis介导的生长并促进应激修复机制的假设的实验,从而增加应激耐受性和寿命。对该模型的验证以及对JNK和IIS信号之间潜在的调控相互作用的详细分析是重中之重。这项工作将深入了解异常胰岛素信号的可能分子原因,并为针对代谢功能障碍(如胰岛素抵抗)的治疗干预提供潜在途径。本研究的目标是结合果蝇系统的遗传和生化方法,阐明JNK信号激活Foxo和拮抗IIS的分子机制。研究JNK和IIS信号之间的相互作用如何调节生物体的生长和衰老。为了验证寿命调节因子Sir2与JNK合作激活Foxo并介导其生物学效应的假设。
英文摘要
DESCRIPTION (provided by applicant): Misregulation of insulin and IGF signaling (IIS) is associated with metabolic diseases such as diabetes and can increase cancer incidence. Insulin signaling is modulated by nutritional inputs, and IIS controls both cell growth and metabolism. Research in genetic model organisms has revealed that, in addition to these metabolic and growth control functions, IIS can increase the sensitivity to oxidative stress and accelerate senescence. Conversely, a decrease in IIS activity can promote environmental stress tolerance and confer longevity to worms, flies, and mice. It is thus plausible that both metabolic and stress signals can modulate IIS pathway responses. Since such mechanisms would directly link processes controlling growth and senescence, they would be of pivotal biomedical interest. The applicants have found in preliminary studies on Drosophila melanogaster that stress and metabolic signaling - transduced via the Jun-N-terminal Kinase (JNK) and the IIS pathway, respectively - converge on Foxo, a transcription factor that has been shown to promote the stress resistance and longevity of multi cellular organisms. This proposal describes experiments that will test the hypothesis that JNK signaling activates Foxo to repress IIS-mediated growth and promote repair mechanisms in response to stress, thus increasing stress tolerance and longevity. A validation of this model and a detailed analysis of the underlying regulatory interactions between JNK and IIS signaling, is of high priority. This work will provide insight into possible molecular causes of aberrant insulin signaling and offer potential avenues for therapeutic intervention targeted towards metabolic dysfunctions such as insulin resistance. The proposal is organized along three specific aims combining genetic and biochemical approaches in the Drosophila system: To elucidate the molecular mechanism by which JNK signaling activates Foxo and antagonizes IIS. To examine how the interplay between JNK and IIS signaling regulates organism growth and senescence. To test the hypothesis that the life span regulator Sir2 cooperates with JNK in the activation of Foxo and the mediation of its biological effects.
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