Ku regulates non-homologous end joining pathways in human somatic cells
Ku regulates non-homologous end joining pathways in human somatic cells
批准号:
8193446
负责人:
ERIC A HENDRICKSON
金额:
$29.98万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-07-07 至 2016-04-30
关键词:
AddressAffectApplications GrantsBeliefBindingBiological AssayCancer PatientCell LineCellsChemicalsChromosomal BreaksChromosomal RearrangementClinicalComplexDNADNA DamageDNA Double Strand BreakDNA RepairDNA ligase IIIDefectDevelopmentDouble Strand Break RepairEnsureEventFertilityFrequenciesG22P1 geneGene MutationGene TargetingGenerationsGenesGeneticGenetic RecombinationGenomeGoalsHealthHomeostasisHomologous GeneHumanHuman Cell LineHuman GenomeImmuneImmune systemInvestigationIonizing radiationKnowledgeLaboratoriesLeftLesionMaintenanceMalignant NeoplasmsMeasuresMediatingMeiosisMetabolismMinorMissionModalityMolecularNonhomologous DNA End JoiningNucleotidesNull LymphocytesOncogenicOrganismOutcomePathway interactionsPatientsPositioning AttributePredispositionProcessPublishingRadiationRadiation induced damageRadiation induced double strand breakRadiation therapyRecording of previous eventsRelianceRodentSignal TransductionSister ChromatidSomatic CellSyndromeSystemSystems DevelopmentTestingTherapeuticTumor TissueUnited States National Institutes of HealthUp-RegulationWorkcell killingchemotherapycostdesigngene repairgenetic analysishomologous recombinationhuman DNAinhibitor/antagonistinsightloss of functionloss of function mutationmutantneoplastic cellnovelpositional cloningrepairedresearch studyresponsetelomeretumor
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): We propose to study the impact of loss-of-function mutations of DNA DSB (double-strand break) repair genes on end joining processes in human cells. We will focus heavily, but not exclusively, on the heterodimeric (Ku70 and Ku86 subunits) Ku DNA end-binding complex and LIGIII (DNA ligase III). Ku has a storied history and it has been known for decades that it is required for most of the generalized DSB repair occurring in somatic cells as well as being critical for the proper development of the vertebrate immune system. Ku performs these duties as part of a repair pathway referred to as C-NHEJ (classic-non-homologous end joining). In work published this year, we demonstrated that Ku has a hitherto underappreciated function as a suppressor of the other competing DSB repair pathways, namely A-NHEJ (alternative-NHEJ) and HR (homologous recombination). Thus, when the levels of Ku are reduced, A-NHEJ and HR, which normally comprise only a small fraction of the end joining activity in human cells, become more active. This observation has potential clinical implications. Thus, the vast majority of human cancer patients are treated either with radio- or chemotherapy (or both) and the efficacy of these anti-tumor modalities resides in their ability to generate DNA DSBs. Thus, strategies designed to increase the efficacy of tumor cell killing by radio- or chemotherapy that involve reducing the levels of Ku are likely to fail due to the up-regulation of A-NHEJ and/or HR. This is a hypothesis that we will directly test in this grant application. Moreover, the molecular mechanism by which Ku mediates this suppression is unknown and we propose genetic and reverse genetic experiments to elucidate this process. Finally, we have begun to genetically tackle the A-NHEJ pathway. A number of genes have been implicated in A-NHEJ, but the important genes remain poorly defined. One of the more compelling A- NHEJ candidates is LIGIII (DNA ligase III). To experimentally test the importance of LIGIII we have constructed a viable LIGIII-null human cel line and herein propose to characterize the impact of the loss-of- function of LIGIII on A-NHEJ. In particular, one characterization involves a novel and powerful assay system by which we can measure ionizing radiation-induced gross chromosomal rearrangements in human cells lacking LIGIII (or Ku86). To our knowledge, we are one of only a few laboratories in the world utilizing genetic, loss-of-function approaches to study DNA DSB in human cells and thus we are well positioned to gain insights into the mechanism of DSB repair that cannot be obtained elsewhere.
PUBLIC HEALTH RELEVANCE: DNA double-strand break repair is critical for the stable maintenance of the human genome and this belief is validated by the large number of cancer predisposition syndromes, which result from mutation of genes involved in the recognition, signaling or repair of DNA double-strand breaks. In addition, the efficacy of the major cancer therapeutic modalities (radiation and chemotherapy) depends on the ability (or inability) of tumor cells to repair the resulting DNA double-stranded breaks introduced by these agents. Thus, the continued investigation of DNA double-strand break repair is clearly relevant to the mission of NIH.
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海外基金