Dissecting the mechanism of increased genomic instability in aging yeast
Dissecting the mechanism of increased genomic instability in aging yeast
批准号:
8149829
负责人:
Daniel E. Gottschling
金额:
$49.4万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-06-01 至 2015-08-31
关键词:
AddressAffectAgeAgingAging-Related ProcessAnabolismBiochemicalBiogenesisBiologicalBiological ModelsBiologyCandidate Disease GeneCarcinogensCell AgingCell physiologyCellsChromosomesCollectionDNA MaintenanceDefectElderlyEmployee StrikesEventExhibitsFoundationsFrequenciesFundingFutureGenesGeneticGenetic ScreeningGenomeGenomic InstabilityHealthHumanIncidenceInner mitochondrial membraneIronLeadLearningLinkLoss of HeterozygosityMaintenanceMalignant NeoplasmsMembrane PotentialsMitochondriaMitochondrial DNAModelingMolecularMonitorMothersNuclearOrganismPathway interactionsPhenotypePlayPopulationProcessProductionProteinsResourcesRoleSaccharomyces cerevisiaeSeriesStem cellsStep TestsStructureSulfurSystemTechnologyTimeWorkYeastsage relatedagedcancer genomecancer genomicsgenetic analysisinsightmitochondrial dysfunctionmitochondrial genomenew technologynormal agingprogramspublic health relevanceresearch studytooltransmission processtumorigenesis
中文摘要
描述(由申请人提供):年龄是最大的致癌因素,但癌症发病率随着人类年龄的增长而急剧增加的机制尚不清楚。为了更好地理解这一现象,我们在酵母酿酒酵母中开发了一个系统,该系统概括了癌症的标志之一-基因组不稳定性-作为细胞年龄的函数。具体来说,我们研究了衰老和基因组不稳定性之间的关系,通过监测杂合性丢失(洛)在不同的染色体在复制老化的酵母。我们发现老化的酵母母细胞在其后代中经历了洛增加近100倍的转变。最近,我们对这一现象有了更好的理解,并提出了一个工作假设,将年龄相关的洛缺失分解为一系列相关事件。它始于线粒体DNA的丢失或损伤。这导致线粒体内膜电位(??)这又导致铁硫簇(ISC)生物合成和/或ISC组装成维持基因组完整性所需的蛋白质的缺陷。这些基因组完整性蛋白功能的降低导致洛缺失水平的增加。这一假设作为一个工作模型来制定我们的问题和方法。我们现在建议使用S中强大的资源和工具集合来测试这个假设中的步骤。啤酒。作为这种方法的一部分,我们开发了一种诱导型遗传系统,母亲富集计划(MEP),它允许第一次轻松分离复制老化的S。用于生物化学、细胞生物学和遗传分析的酿酒酵母细胞。这将使我们能够进一步了解衰老过程中最早的事件,最终导致与年龄相关的洛缺失。因为在与年龄相关的洛缺失进展中的每一个过程都是保守的,我们相信我们在拟议的计划中所了解的最终将可用于识别人类中同样受衰老影响并导致与年龄相关的肿瘤发生的候选基因和过程。
公共卫生相关性:人类年龄增长与癌症发病率之间存在显著联系。虽然简单的有机体面包酵母不会患癌症,但我们发现,较老的酵母细胞表现出癌症的标志之一:基因组不稳定性急剧增加。在这项提案中,我们将使用酵母作为模型系统,以确定和理解这种不稳定性的因素,以深入了解年龄如何影响肿瘤发生的发生率。
英文摘要
DESCRIPTION (provided by applicant): Age is the greatest carcinogen, yet the mechanism by which the incidence of cancer dramatically increases as humans age is unclear. In an effort to better understand this phenomenon, we developed a system in the yeast Saccharomyces cerevisiae that recapitulates one of the hallmarks of cancer - genomic instability - as a function of cellular age. Specifically, we examined the relationship between aging and genomic instability by monitoring loss of heterozygosity (LOH) on different chromosomes during replicative aging in yeast. We discovered that aging yeast mother cells underwent a switch to a nearly 100-fold increase in LOH in their progeny. Recently, we gained a better understanding of this phenomenon and have developed a working hypothesis that breaks the age-associated LOH into a series of connected events. It begins with a loss of, or damage to, the mtDNA. This leads to a reduction in the inner mitochondrial membrane potential (??), which in turn leads to a defect in iron-sulfur cluster (ISC) biosynthesis and/or assembly of the ISCs into proteins required for maintenance of genome integrity. The reduced function of these genome integrity proteins then leads to increased levels of LOH. This hypothesis serves as a working model to formulate our questions and approaches. We now propose to test the steps in this hypothesis using the powerful collection of resources and tools available in S. cerevisiae. As part of this approach, we developed an inducible genetic system, the Mother Enrichment Program (MEP), which permits for the first time the facile isolation of replicatively aged S. cerevisiae cells for biochemical, cell biological and genetic analysis. This will permit us to gain further understanding of the earliest events in aging that ultimately lead to age-associated LOH. Because each of the processes in this progression to age-associated LOH are conserved, we believe that what we learn in the proposed plan will ultimately be translatable to identifying candidate genes and processes in humans that are similarly affected by aging and lead to age-related oncogenesis.
PUBLIC HEALTH RELEVANCE: There is a striking link between increasing age and the incidence of cancer in humans. Though the simple organism baker's yeast does not get cancer, we have found that older yeast cells exhibit a dramatic increase in one of the hallmarks of cancer: genomic instability. In this proposal we will use yeast as a model system to identify and understand the factors responsible for this instability in order to gain insight into how age impacts the incidence of oncogenesis.
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会议论文
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批准号:8468246
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资助金额:$9.33万
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财政年份:2011
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海外基金