Cellular responses to DNA-protein crosslinks
Cellular responses to DNA-protein crosslinks
批准号:
8633416
负责人:
R. Stephen Lloyd
金额:
$26.92万
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 2016-03-31
关键词:
AcuteAddressAffectAsthmaBiochemicalBiologicalBiological AssayBiological ProcessBreathingBypassCanavanineCell CycleCell Cycle ArrestCell physiologyCellsChemicalsChronicComplementCritical PathwaysCytogenetic AnalysisDNADNA RepairDNA StructureDNA lesionDNA-Directed DNA PolymeraseDNA-protein crosslinkDataDigestionDiseaseDoseEukaryotic CellEventExposure toFormaldehydeFrequenciesFundingGene CombinationsGene DeletionGenesGenetic RecombinationGluesGoalsHealthHome environmentHumanIn VitroIndividualIndoor Air QualityInvestigationLaboratoriesLeadLesionMalignant NeoplasmsMammalian CellMediatingModelingMolecularMutagenesisMutationMutation SpectraNuclearNuclear ImportNucleotide Excision RepairOccupationalOutcomePathway interactionsPeptidesPolymerasePopulationProceduresProcessProteinsPublic HealthRecruitment ActivityRelative (related person)ResistanceRoleSaccharomyces cerevisiaeSeriesSignal TransductionSiteSmall Interfering RNATOP3A geneTestingToxic effectToxicant exposureXPA geneYeastscancer riskcell typecrosslinkcytotoxiccytotoxicitydeletion librarydesignexperiencegene functiongenome-widehelicasehomologous recombinationinhibitor/antagonistinsightirritationmembermulticatalytic endopeptidase complexmultidisciplinarymutantparticleprotein crosslinkrepairedresponsescreeningsmall moleculestem
中文摘要
描述(由申请人提供):环境和内源性暴露于产生dna -蛋白质和dna -肽交联的化学物质与癌症、哮喘和其他疾病的风险增加相关。这些暴露既发生在职业环境中,也发生在家庭环境中,受影响的个人经常经历多年的慢性暴露,远远超过典型的室内空气质量标准。最常见的dna -蛋白质交联诱导剂之一是甲醛,目前美国人口中有成千上万的人接触到甲醛和其他醛类化合物。为了了解这些DNA损伤的生物学过程,我们的实验室已经i)建立了合成化学程序来创建含有位点特异性修饰的DNA-蛋白质交联的DNA, ii)鉴定了能够催化这些损伤的翻译合成的DNA聚合酶,iii)进行了剂量依赖的全基因组分析,以鉴定其产物功能限制DNA-蛋白质交联诱导的细胞毒性的基因。这些研究产生了一系列假设,假设当真核细胞暴露于慢性低水平的dna -蛋白交联剂时,细胞毒性和诱变通过涉及同源重组的耐受途径被最小化。然而,在急性高剂量暴露后,假设细胞将转向涉及核苷酸切除修复或翻译合成成分的途径。为了解决这些假设,将使用基因特异性缺失或siRNA缺失和小分子抑制剂来识别在限制细胞毒性和诱变方面至关重要的基因群和相关途径。单个基因产物在调节细胞对DNA-蛋白质交联反应中的可能作用包括参与DNA修复、重组、翻译合成、细胞周期检查点和蛋白质水解途径。利用含有位点特异性dna肽和蛋白质交联的dna,将建立修复中间体、解旋酶和翻译合成聚合酶活性的生化分析。总的来说,这些研究将产生对这类DNA损伤的修复和耐受性的全面分析。
英文摘要
DESCRIPTION (provided by applicant): Environmental and endogenous exposure to chemicals that produce DNA-protein and DNA-peptide crosslinks are correlated with an increased risk of cancer, asthma, and other diseases. These exposures take place in both occupational and in-home settings and affected individuals often experience multi-year chronic exposures that are far in excess of typical indoor air quality standards. One of the most common DNA-protein crosslink-inducing agents is formaldehyde and currently thousands of individuals in the US population are exposed to this and other aldehydic compounds. To understand the biological processing of these DNA lesions, our laboratories have i) established synthetic chemical procedures to create DNAs containing site-specifically modified DNA-protein crosslinks, ii) identified DNA polymerases that are capable of catalyzing translesion synthesis of these lesions, and iii) carried out dose-dependent, genome-wide assays that identified genes whose products function to limit DNA-protein crosslink- induced cytotoxicity. These investigations have generated a series of hypotheses which postulate that when eukaryotic cells are exposed to chronic, low levels of DNA-protein crosslinking agents, cytotoxicity and mutagenesis are minimized by tolerance pathways involving homologous recombination. However, following acute high dose exposures, it is hypothesized that cells will shift to pathways involving components of either nucleotide excision repair or translesion synthesis. To address these hypotheses, gene-specific deletions or siRNA depletion and small molecular inhibitors will be used to identify the constellation of genes and interrelated pathways that are critical in limiting cellular toxicity and mutagenesis. Possible roles of individual gene products in modulating cellular responses to DNA-protein crosslinks may include involvement in DNA repair, recombination, translesion synthesis, cell cycle check points, and proteolytic pathways. Biochemical analyses of repair intermediates and the activities of helicases and translesion synthesis polymerases will be established using DNAs containing site-specific DNA-peptide and protein crosslinks. Collectively, these investigations will yield comprehensive analyses of repair and tolerance of this class of DNA lesions.
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会议论文
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依托单位:
海外基金