Mammalian Target of Rapamycin (mTOR) signaling in health and longetivity
Mammalian Target of Rapamycin (mTOR) signaling in health and longetivity
批准号:
7983432
负责人:
Dudley William Lamming
金额:
$5.13万
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:
2008-12-01 至 2011-11-30
关键词:
Adipose tissueAgeAgingBiological MarkersBrainCaloric RestrictionCell LineComplexDiabetes MellitusDietDiseaseEmbryoEukaryotaFatty acid glycerol estersFibroblastsGrowthHealthHomologous GeneHumanInsulinInterventionKnock-outKnockout MiceLongevityLower OrganismMalignant NeoplasmsMammalian CellMammalsMediatingMetabolismModelingMusNerve DegenerationNutrientOrganOrganismPathway interactionsPlantsPopulationProtein KinaseProtein Microarray AssayRNARaptorsResistanceRoleSamplingSignal PathwaySignal TransductionStressTherapeuticTissuesYeastsage relatedcellular targetingflyglucose toleranceimprovedmTOR proteinmemberresponsetissue culture
中文摘要
描述(由申请人提供):哺乳动物雷帕霉素靶点(mTOR)信号通路根据营养物质的可用性调节生长和代谢。mTOR通路是高度保守的,在大多数真核生物中都发现了该通路中心成分mTOR蛋白激酶的同源物,包括酵母、蠕虫、苍蝇、植物、小鼠和人类。mTOR是两个不同复合体mTORd和mTORC2的成员,它们各自调节不同的细胞靶点。最近的研究表明,抑制TOR信号传导可以延长酵母、蠕虫和苍蝇的寿命。然而,这种影响背后的机制尚不清楚,也不清楚mTOR信号的减少是否会促进哺乳动物的寿命。抑制mTOR信号已被提议模仿热量限制的效果,这是一种在许多生物体中促进健康和长寿的干预措施,因此可能在治疗糖尿病、神经变性和其他与年龄有关的疾病方面具有治疗价值。在本提案中,我概述了我将进行的研究,以更好地了解mTOR信号减少对哺乳动物健康和衰老的影响。我将在组织培养模型中研究通常与寿命相关的抗逆性,该模型使用来自mTOR, Raptor (mTORCI的一个组成部分)和Rictor (mTORC2的一个组成部分)杂合敲除小鼠的小鼠胚胎成纤维细胞。使用mTOR、Raptor或Rictor杂合的小鼠,我将检查mTORCI和mTORC2信号在抗逆性和衰老中的作用。这些杂合子敲除小鼠的种群将被允许衰老,并评估长寿的生物标志物,包括胰岛素水平和葡萄糖耐量。标准RNA微阵列和蛋白质样本分析将用于分析mTORCI和mTORC2信号在衰老和长寿中的作用。最后,将检查Raptor和Rictor的条件组织特异性敲除是否有能力调节对高脂肪饮食的抵抗力。抑制哺乳动物雷帕霉素靶点(mTOR)信号传导延长了低等生物的寿命,并被提议模仿卡路里限制的效果,这是一种促进哺乳动物健康和长寿的干预措施。因此,抑制mTOR信号传导可能在治疗糖尿病、癌症、神经变性和其他与年龄有关的疾病方面具有治疗价值。本研究旨在确定抑制mTOR信号传导是否能促进哺乳动物的健康和寿命,并确定这种影响背后的机制。
英文摘要
DESCRIPTION (provided by applicant): The mammalian target of rapamycin (mTOR) signaling pathway regulates growth and metabolism in response to the availability of nutrients. The mTOR pathway is highly conserved, and a homologue of the central component of the pathway, the mTOR protein kinase, is found in most eukaryotes, including yeast, worms, flies, plants, mice, and humans. mTOR is a member of two distinct complexes, mTORd and mTORC2, each of which regulates distinct cellular targets. Recent studies have demonstrated that inhibition of TOR signaling can extend the lifespan of yeast, worms, and flies. However, the mechanism behind this effect is unknown, and it is not yet known if decreased mTOR signaling will promote longevity in mammals. Inhibition of mTOR signaling has been proposed to mimic the effects of calorie restriction, an intervention which promotes health and longevity in many organisms, and may therefore be of therapeutic value in the treatment of diabetes, neurodegeneration and other age-related diseases. In this proposal, I outline studies that I will undertake to better understand the effects of decreased mTOR signaling on mammalian health and aging. I will examine stress resistance, which often correlates with longevity, in a tissue culture model using mouse embryonic fibroblasts derived from mTOR, Raptor (a component of mTORCI), and Rictor (a component of mTORC2) heterozygous knockout mice. Using mice heterozygous for mTOR, Raptor, or Rictor, I will examine the role of both mTORCI and mTORC2 signalling in stress resistance and aging. Populations of these heterozygous knockout mice will be allowed to age, and biomarkers of longevity, including insulin levels and glucose tolerance, will be assessed. Standard RNA microarrays and analysis of protein samples will be used to analyze the role of mTORCI and mTORC2 signaling in aging and longevity. Finally, conditional tissue specific knockouts of Raptor and Rictor will be examined for their ability to regulate resistance to a high-fat diet. Inhibition of the mammalian target of rapamycin (mTOR) signalling extends longevity in lower organisms, and has been proposed to mimic the effects of calorie restriction, an intervention that promotes health and longevity in mammals. Inhibition of mTOR signalling may therefore be of therapeutic value in the treatment of diabetes, cancer, neurodegeneration and other age-related diseases. This proposal seeks to determine if inhibition of mTOR signalling does promotes health and longevity in mammals, and to determine the mechanism behind this effect.
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