Mechanisms of DNA synthesis during alternative lengthening of telomeres
Mechanisms of DNA synthesis during alternative lengthening of telomeres
批准号:
9336168
负责人:
Robert Lawrence Dilley
金额:
$3.08万
依托单位国家:
美国
项目类别:
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-08-01 至 2018-07-31
关键词:
AddressAnimal ModelAwardBRCA2 geneBiological AssayBromodeoxyuridineCell CycleCell LineCellsCharacteristicsChromosome PairingComb animal structureComplexDNADNA Double Strand BreakDNA Sequence RearrangementDNA biosynthesisDNA replication forkDNA sequencingDNA-Directed DNA PolymeraseDependencyDevelopmentDot ImmunoblottingFellowshipFibrinogenGenomeGenomic SegmentGoalsHomologous GeneHumanImageryImmunofluorescence ImmunologicInvestigationKnowledgeLeadLengthMaintenanceMalignant NeoplasmsMammalian CellMedicalMethodsMicroscopyModelingMonitorMutationNational Cancer InstituteNeomycinNeomycin resistance genePathway interactionsPennsylvaniaPhysiciansPolymerasePrincipal InvestigatorProteinsPublishingRad51 recombinaseRecruitment ActivityRoleS PhaseScientistSignal TransductionSiteSmall Interfering RNASpecificitySystemTERF1 geneTelomere MaintenanceTelomere PathwayTestingTraining ProgramsUniversitiesYeastsbasecancer cellcancer genomecareerdeep sequencinggenome sequencinghomologous recombinationknock-downmedical schoolsmutantnew therapeutic targetnext generation sequencingnovelnucleaseoutcome forecastpre-doctoralpreventrepairedsingle moleculetelomeretherapeutic targettumoruptake
中文摘要
项目总结
英文摘要
Project Summary
This application is for a predoctoral fellowship awarded by the National Cancer Institute to physician-scientist
trainees. The applicant is a trainee of the Medical Scientist Training Program at the Perelman School of
Medicine at the University of Pennsylvania. This award would help him achieve his career goal of becoming an
academic physician-scientist Principal Investigator studying genome maintenance in cancer. Cancer cells must
maintain their telomeres in order to achieve replicative immortality. Alternative lengthening of telomeres (ALT)
is a telomere maintenance mechanism used by 10-15% of human cancers and often portends a poor
prognosis. Although ALT occurs via a homologous recombination (HR)-based mechanism, the essential steps
of DNA synthesis that culminate in telomere copying and elongation remain poorly understood. Studies in
yeast suggest that ALT synthesis may occur by break-induced replication (BIR), a non-canonical and
mutagenic form of DNA synthesis that is also implicated in complex genomic rearrangements seen in cancer.
We have previously published a unique system capable of inducing ALT activity. Using this system, along with
baseline ALT+ cells I will mechanistically dissect ALT synthesis. In this proposal I provide details of 2 aims that
will guide thorough testing of my hypotheses. Briefly, in Aim 1, I will determine the role of POLD3, a
polymerase subunit implicated in BIR, as well as other replication and HR factors in ALT synthesis through
testing the effects of their depletion on bromodeoxyuridine (BrdU) incorporation at telomeres. Additionally, I will
interrogate the factors governing the recruitment of POLD3 to ALT telomeres. In Aim 2, I will define the mode
of DNA synthesis during ALT using next-generation sequencing of nascent DNA and telomeric DNA combing
to ascertain replication parameters including mutagenicity and processivity. In summary, I intend to use ALT as
a system to answer fundamental questions about DNA synthesis during repair, including polymerase
involvement and basic characteristics. The expected results have broad implications for genome maintenance
and cancer mechanisms, and will facilitate the development of novel therapeutics targeting ALT and non-
canonical synthesis.
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Mechanisms of DNA synthesis during alternative lengthening of telomeres
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批准号:9191305
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项目类别:
-
资助金额:$3.03万
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财政年份:2016
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负责人:Robert Lawrence Dilley
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依托单位:
海外基金