Center for High-Throughput Minimally-Invasive Radiation Biodosimetry
Center for High-Throughput Minimally-Invasive Radiation Biodosimetry
批准号:
9753850
负责人:
DAVID JONATHAN BRENNER
金额:
$650.01万
依托单位国家:
美国
项目类别:
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-08-31 至 2020-07-31
关键词:
AcuteAdvisory CommitteesAreaBackBenefits and RisksBiological AssayBiological MarkersBiometryBloodCellsCharacteristicsComplexCytogeneticsDNA DamageDevelopmentDevicesDiseaseDose-RateEffectivenessEngineeringEquilibriumExperimental DesignsExposure toFundingGoalsIndividualIndustryInflammatoryInformaticsInjuryLate EffectsLate Radiation InjuryLinkLungMass Spectrum AnalysisMeasuresMethodologyMethodsMouse StrainsMusNatureNeutronsNuclearPatientsPersonsProtocols documentationPulmonary InflammationRadiationRadiation AccidentsRadiation ToleranceRadiation exposureRadiation therapyResearchResearch Project GrantsResourcesRoboticsSamplingSourceSpecificityStimulusSystemTechnologyTimeUniversitiesWorkassay developmentbasebiodosimetrycohesioncost effectivenessdirty bombfunctional genomicshigh throughput screeninginterdisciplinary approachinternal radiationirradiationmass casualtymembermetabolomicsminimally invasiveorganizational structurepersonalized predictionspredictive testprogramspublic health relevanceradiation mitigatorradiation-induced injuryresearch clinical testingresponseresponse biomarkersample collectionscreeningtechnology developmenttranscriptomics
中文摘要
描述(由申请人提供):这个整体的CMCR项目代表了一个有凝聚力的多学科方法,以高度集中的目标:高通量生物剂量测定及其在辐射损伤个性化早期预测中的应用。哥伦比亚大学CMCR项目的核心特点仍然是关注三种不同的高通量方法:全自动细胞遗传学(项目1)、功能基因组学(项目2)和代谢组学(项目3)。这些不同的方法代表了一系列的风险-收益平衡,追求这三种方法不仅在共同的实验设计和样本共享方面,而且在相互比较和解释结果及其实际意义方面,对每个人都有协同效益。这三个项目由四个综合科学核心支持,每个项目都有相同的共同主题:1。面向复杂暴露的高通量生物剂量测定:目标是评估不同的暴露情景,特别是不同的剂量率,内部发射器和中子暴露,如何调节生物标志物的反应,以及研究独特反映不同暴露情景存在的生物标志物。2. 高通量个体化放射敏感性/晚期损伤预测:转录组学和代谢组学方法已被证明在预测个体化辐射诱导的急性效应方面具有实用价值,这一概念将扩展到晚期效应。项目1的重点是放疗患者肺炎与体外血液照射后高通量DNA损伤终点之间的潜在相关性。项目2和项目3的重点是转录组学和代谢组学生物标志物,用于个体化早期预测小鼠肺致死率。根据个人敏感性的主题,计划研究炎症性疾病的重要性,以及作为辐射缓解剂开发的辅助手段的预测分析,作为缓解剂效果的早期指标。3. 技术发展:目标是利用商业高通量筛选技术,用于基于细胞的筛选,转录组学和质谱,这些技术在大学和工业环境中越来越可用。新的分析方案和“前端”样品采集系统将利用这些常见设备。进一步的技术发展是一种廉价的连续降低剂量率的137Cs辐照器,模拟由内部137Cs照射引起的任何时间递减剂量率;该装置可为CMCR 137Cs内部发射器的研究提供重要的刺激。将保持高度统一的组织结构。在最高层面监督科学计划的是外部科学咨询小组(ESAG),其成员每年亲自开会。内部咨询委员会(IAC)负责整个CMCR项目的地方协调。ESAG和IAC之间的相互作用对该计划的科学方向至关重要。
英文摘要
DESCRIPTION (provided by applicant): This overall CMCR program represents a cohesive multidisciplinary approach to highly focused goals: High-throughput biodosimetry and its application to individualized early prediction of radiation-induced injury. A central characteristi of the Columbia CMCR program remains a focus on three different high-throughput approaches: fully-automated cytogenetics (Project 1), functional genomics (Project 2), and metabolomics (Project 3). These different approaches represent a range of risk-benefit balances, and pursuing all three is of synergetic benefit to each, not only in terms of common experimental design and sample sharing, but also in terms of intercomparing and interpreting the results and their practical significance. The three Projects, supported by four integrated scientific Cores, each share the same common themes: 1. Towards High-Throughput Biodosimetry for Complex Exposures: The goal is to assess how different exposure scenarios, in particular different dose rates, internal emitters, and neutron exposure, modulate biomarker response, as well as investigating biomarkers that uniquely reflect the presence of different exposure scenarios. 2. Towards High-Throughput Individualized Predictors of Radiosensitivity / Late Injury: Transcriptomics and metabolomics approaches have been shown here to have utility for predicting individualized radiation-induced acute effects, and this concept will be extended toward late effects. The Project 1 focus is on potential correlations between pneumonitis in radiotherapy patients and high-throughput DNA damage endpoints after ex-vivo blood irradiation. The Project 2 and 3 focus is on transcriptomic and metabolomic biomarkers for individualized early prediction of pulmonary lethality in mice. In keeping with the theme of individual sensitivity, studies are planned of the significance of inflammatory diseases, as well as of predictive assays as an adjunct to radiation mitigator development, as early indicators of mitigator effectiveness. 3. Technology Development: The goal is to take advantage of commercial high-throughput screening technologies, for cell-based screening, transcriptomics, and mass spectrometry, which are increasingly available in university and industry settings. New assay protocols and "front-end" sample acquisition systems will take advantage of these common devices. A further technology development is an inexpensive continuously-decreasing-dose-rate 137Cs irradiator, simulating any time-decreasing dose rate caused by internal 137Cs exposure; the device can provide a major stimulus to CMCR 137Cs internal-emitter studies. A highly unified organizational structure will be maintained. Overseeing the scientific program at the highest level is the External Scientific Advisory Group (ESAG), whose members meet in person annually. The Internal Advisory Committee (IAC) has responsibility for local coordination of the entire CMCR Program. The interactions between the ESAG and the IAC have been central to the Program's scientific direction.
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Center for High-Throughput Minimally-Invasive Radiation Biodosimetry
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