Replication Licensing in Genome Stability, Cancer and Aging
Replication Licensing in Genome Stability, Cancer and Aging
批准号:
8014949
负责人:
STEVEN C PRUITT
金额:
$36.37万
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:
2008-04-06 至 2013-01-31
关键词:
AffectAgingAllelesBindingCancer EtiologyCell CycleCell Cycle ArrestCellsComplexDNADNA DamageDNA RepairDNA biosynthesisDNA replication originDoseFunctional disorderG1 PhaseGene ExpressionGene Expression Microarray AnalysisGenesGeneticGenome StabilityGenomic InstabilityIGF1 geneLicensing FactorLocationMalignant NeoplasmsMammalsMediatingMusMutationNormal tissue morphologyOrganismPathway interactionsPhasePhenotypePlayProcessProteinsRegulationReplication ErrorReplication LicensingReplication OriginRoleS PhaseSiteSkeletal MuscleSourceSpecific qualifier valueStem cellsTamoxifenTestingTumor Tissueage relatedbasal insulinbrain cellcancer stem cellcongenicdesignin vivoinsightpreventprotein complexrecombinaserelating to nervous systemresponsesatellite cellstemtumor
中文摘要
描述(由申请人提供):长期以来,基因组不稳定性被认为在癌症的病因学和年龄相关功能障碍中发挥作用。对DNA损伤后介导细胞周期阻滞和修复受损DNA的基因突变表型的研究表明,共同的机制影响这两个过程。导致损害的机制还不太明确,可能有多种原因;然而,在哺乳动物等严重依赖持续分裂的干细胞的生物体中,突变的可能来源是DNA复制。DNA的复制是通过调控DNA复制起始点的使用而受到严格控制的。为了防止DNA的内复制,复制起点是特定的,并在细胞周期的离散阶段使用。在早期g1阶段,称为许可因子的蛋白质复合物的结合指定了可用于复制的位点。在G1中的一个点,称为限制点,许可因子的额外结合被阻止,直到s期完成。通过将一种他莫昔芬依赖性的cre -重组酶靶向整合到Mcm2基因中,Mcm2是一种包含许可因子复合物的蛋白质,我们偶然地创造了该基因的一个等位基因,其在小鼠中的表达是半形的。此外,初步研究表明,这种等位基因纯合的小鼠患癌症的几率很高。此外,他们严重缺乏大脑SVZ内的神经干/祖细胞和骨骼肌内的卫星细胞。本研究旨在确定Mcm2表达不足导致这些表型的机制。一个有待验证的假设是,半胚型Mcm2的表达导致更高的复制错误率。指定复制起点所需的确切序列定义松散,部分取决于许可因素的集中程度。因此,细胞中许可因子的浓度可能会影响被利用的起源数量和DNA复制的效率,从而导致遗传损伤。另外,有证据表明,Mcm蛋白,包括Mcm2,也在基因表达的控制和s期DNA损伤反应的早期阶段发挥作用。提出了旨在测试这些潜在机制中哪一种导致癌症和干细胞缺陷表型升高的目的。确定导致这种极端表型的机制将对癌症和年龄相关功能障碍的病因学产生重要的见解。长期以来,基因组不稳定性被认为在癌症的病因学和与年龄相关的功能障碍中都起着重要作用。本研究旨在确定控制DNA复制的一种蛋白质Mcm2缺乏导致这些表型的机制。确定这一机制将对癌症和年龄相关功能障碍的病因学产生重要的见解。
英文摘要
DESCRIPTION (provided by applicant): Genomic instability has long been thought to play a role in both the etiology of cancer and in age related dysfunction. Studies of the phenotypes of mutations in the genes responsible for mediating cell cycle arrest following DNA damage and repairing damaged DNA suggest that common mechanisms affect both processes. The mechanisms leading to damage have been less well defined and may have multiple causes; however, in organisms such as mammals that depend heavily on continuously dividing stem cells a likely source of mutations is DNA replication. Replication of DNA is tightly controlled through the regulation of DNA replication origin usage. To prevent endoreduplication of the DNA, replication origins are specific and used in discrete phases of the cell cycle. During early G1-phase, the binding of a complex of proteins termed licensing factors specifies the sites that can be utilized for replication. At a point in G1, termed the restriction point, additional binding of licensing factors is prevented until S-phase is complete. Through the targeted integration of a tamoxifen dependent version of Cre-recombinase into the Mcm2 gene, which is one of the proteins comprising the licensing factor complex, we have fortuitously created an allele of this gene which is hypomorphic in its expression in mice. Further, preliminary studies demonstrate that mice which are homozygous for this allele have a highly elevated rate of cancer. Additionally, they are severely deficient in neural stem/progenitor cells within the SVZ of the brain and satellite cells within the skeletal muscle. The present study seeks to define the mechanism by which deficiency in Mcm2 expression results in these phenotypes. One hypothesis to be tested is that hypomorphic Mcm2 expression results in a higher rate of replication errors. The exact sequences required for specifying replication origins are loosely defined and, in part, depend on the concentration of licensing factors. Hence the concentration of licensing factors in the cell may affect the number of origins that are utilized and the efficiency with which DNA is replicated leading to genetic damage. Alternatively, there is evidence that Mcm proteins, including Mcm2, also function in both the control of gene expression and in an early phase of the DNA damage response during S-phase. Aims designed to test which of these potential mechanisms is responsible for the elevated cancer and stem cell deficiency phenotypes are proposed. Defining the mechanism responsible for this extreme phenotype will yield important insights into the etiology of cancer and age related dysfunction. Genomic instability has long been thought to play a role in both the etiology of cancer and in age related dysfunction. The present study seeks to define the mechanism by which deficiency in one of the proteins controlling DNA replication, Mcm2, results in these phenotypes. Defining this mechanism will yield important insights into the etiology of cancer and age related dysfunction.
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会议论文
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海外基金