XPC Haplotypes Alter DNA Repair Capacity and Levels of Genetic Damage
XPC Haplotypes Alter DNA Repair Capacity and Levels of Genetic Damage
批准号:
8064328
负责人:
Catherine Michelle Rondelli
金额:
$2.88万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-04-15 至 2013-04-14
关键词:
AddressAlkylationBioinformaticsBiologicalBiological AssayBladderBreastCarcinogensCell LineCellsClinicalColonDNA DamageDNA RepairDNA Repair GeneDNA lesionDatabasesDefectDiseaseEndometriumEpidemiologyEsophagusEvaluationExhibitsExposure toFellowshipFutureGeneral PopulationGenesGeneticGenetic Predisposition to DiseaseGenetic TranscriptionGenetic VariationGenomeGenomicsGenotypeHaplotypesHead and neck structureHealthHumanImpairmentIndividualInheritedInternationalKnowledgeLengthLesionLinkLinkage DisequilibriumLungMalignant NeoplasmsMeasuresModelingModificationMolecular BiologyNatureNucleotide Excision RepairPhenotypePopulationPredispositionProcessProteinsPublic HealthPyrimidinePyrimidine DimersRNA SplicingReportingResourcesRoleSingle Nucleotide PolymorphismSiteSkinSmokerStructureTestingTimeTobaccoToxicologyTranscriptTranslationsUV Radiation ExposureUV induced DNA damageUltraviolet RaysVariantXeroderma Pigmentosumabstractingadductbasecancer riskcrosslinkdesigndisorder riskendonucleasegenetic variantinsightinterdisciplinary approachlymphoblastoid cell linemRNA Expressionnoveloxidationprotein expressionprotein functionrepair enzymerepairedresearch studyresponseultraviolet damage
中文摘要
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英文摘要
Project Abstract
Xeroderma pigmentosum complementation group C (XPC) is the key recognition factor of DNA damage in global genome nucleotide excision repair. Complete loss of XPC function results in a disease known as Xeroderma pigmentosum. Although XP represents an extreme defect in the function of the XPC protein, subtle variation in the function of this protein occurs in the general population due to inheritance of single nucleotide polymorphisms (SNPs) which are implicated in some inherited cancer susceptibilities. To date, over 90 SNPs in the XPC gene have been reported an analysis of the effect of these on disease risk, or evaluation of individual phenotypic effects, is impractical. However, it is known that genetic variation in human populations is not arrayed as independent SNPs but as various combinations of SNPs (haplotypes). Therefore, the phenotypic effects of haplotypes, rather than SNPs, should be examined to determine the role of genetic variability in disease risk. To our knowledge, neither a comprehensive haplotype analysis of the entire XPC genomic sequence nor an evaluation of the functional effects of the XPC haplotypes has been conducted. I plan to address these gaps in knowledge by testing my genotype/phenotype hypothesis, specifically that certain XPC haplotypes adversely modify transcriptional processes and/or protein integrity, and consequently exhibit impairments in DNA repair capacity which causes higher levels of persisting genetic damage. I used bioinformatics to and conducted a comprehensive haplotype analysis of the entire genomic sequence of XPC and characterize the effect of haplotypes on genetic damage in a population of smokers that I used as a model of an environmentally exposed population. To test this hypothesis the following Specific Aims are proposed: Aim 1: To determine biological effects of XPC haplotypes on DNA repair capacity (DRC) and genetic damage (specifically, genotype/phenotype relationships). Aim 2: To characterize functional significance of XPC haplotypes by defining effects of XPC haplotypes on transcription and protein expression.
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XPC Haplotypes Alter DNA Repair Capacity and Levels of Genetic Damage
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批准号:7914956
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项目类别:
-
资助金额:$2.84万
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财政年份:2010
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负责人:Catherine Michelle Rondelli
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依托单位:
XPC Haplotypes Alter DNA Repair Capacity and Levels of Genetic Damage
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批准号:8255627
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项目类别:
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资助金额:$2.92万
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财政年份:2010
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负责人:Catherine Michelle Rondelli
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依托单位:
海外基金