Catalytic DNA Biosensor for Toxic Metal Ions
Catalytic DNA Biosensor for Toxic Metal Ions
批准号:
7538270
负责人:
Yi Lu
金额:
$16.29万
依托单位:
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:
2005-09-05 至 2010-03-31
关键词:
AddressAdverse effectsAreaArtsBiologyBiosensorBiotechnologyBrainCadmiumCatalytic DNAChildConditionCoupledDNADataDetectionDevelopmentDiagnosticEnvironmentEnvironmental MonitoringEnzymesGoalsGoldGovernmentGrantHealthHeavy MetalsHouseholdHumanIllinoisIn VitroIndividualIonsKidneyLaboratoriesLeadLegal patentMalignant neoplasm of kidneyMarketingMass Spectrum AnalysisMeasurementMedicalMercuryMetal exposureMetalsMolecularMonitorNanotechnologyPerformancePhasePlasmaPositioning AttributeProtocols documentationPublic HealthQuality of lifeRangeRateRenal carcinomaReproducibilityRuralSamplingSimulateSiteSmall Business Technology Transfer ResearchSoilSourceSystemTechniquesTechnologyTemperatureTerrorismTest ResultTestingTimeUnited States Environmental Protection AgencyUnited States National Institutes of HealthUniversitiesUraniumVariantWarWaterWorkaqueousbasecold temperaturecombinatorialcommercializationcostdesigndrinking wateremergency service responderfluorophoreimprovedinnovationinstrumentnanoparticleprototyperelating to nervous systemremediationresearch and developmentsensorsuccesstooltoxic metalwater samplingwater sampling/testing
中文摘要
描述(由申请人提供):将开发具有成本效益的重金属离子催化DNA生物传感器,如铅(II),铀(VI),汞(II)和镉(II)。他们将进行现场、实时检测和定量测试,以最小的假阳性或假阴性结果率。暴露于这些金属离子可对人类,特别是儿童造成严重的不利健康影响,例如对大脑、肾脏和癌症的损害。目前的金属探测技术要么使用昂贵或复杂的仪器,要么使用简单的传感器,其中许多设备的假阳性或假阴性结果的发生率很高。因此,迫切需要可靠的便携式重金属传感器,供政府检查员、环境监测员、家庭用户、农村或偏远地区的临床医生以及反恐战争中的第一反应者使用,在这些地方,现场、实时和具有成本效益的检测和量化至关重要,重金属检测市场估计为6.5亿美元。该项目基于伊利诺伊大学PI小组的几项创新,利用了催化DNA生物学、催化分子信标生物技术和纳米粒子纳米技术等最先进的工具。通过体外筛选获得重金属离子特异性的催化DNA分子,并将DNA分别与荧光团/猝灭剂对和金纳米颗粒结合,转化为荧光(用于定量测量)和比色(用于定性和半定量测量)传感器。DzymeTech将创新转化为商业成功的可行性已经在NIH STTR I期项目(1R41ES014125-01)中建立,其中获得了铅(II)和铀(VI)的催化DNA传感器,具有高灵敏度(例如,~ 11 ppt)和选择性(例如,100万倍)。第二阶段的应用解决了将传感器设计转化为市场传感器套件原型的关键问题。将确定客户需求,并开发原型组件和协议。它们包括:“获得铅(II), U(VI), Cd(II)和Hg(II)的所有四种荧光和比色传感器。通过确定每个传感器的检测限和选择性来表征传感器。“为每种金属离子设计和表征原型传感器套件。包括传感器组件,存储条件和测试方案优化,高/低温稳定性测试和多批次传感器的重复性测试。测试现场样品,以研究干涉和基质效应。实地样本,包括土壤和水样将被收集和测试。真实样品的传感器性能将用于评估传感器套件的商业化价值。
英文摘要
DESCRIPTION (provided by applicant): Cost-effective catalytic DNA biosensors for heavy metal ions such as lead(II), uranium(VI), mercury(II), and cadmium(II) will be developed. They will be tested for on-site, real-time detection and quantification with minimal rates of false positive or false negative results. Exposure to these metal ions can cause severe adverse health effects, such as damages to brain, kidneys, and cancers, to human beings, especially children. Current technologies for metal detection employ either expensive or sophisticated instruments or simple sensors, many of which have high rates of false positive or false negative results. Therefore there is an urgent need of reliable portable heavy metal sensors for government inspectors, environmental monitors, household users, clinicians in rural or remote areas, and first-responders in the war against terrorism, where on-site, real-time, and cost-effective detection and quantification are critical and the market for heavy metal detection is estimated to be >$650 million. The project is based on several innovations in the PI's group at the University of Illinois that takes advantage of state-of-the-art tools in catalytic DNA biology, catalytic molecular beacons biotechnology and nanoparticle nanotechnology. Catalytic DNA molecules specific for heavy metal ions will be obtained through in vitro selection, and converted to fluorescent (for quantitative measurement) and colorimetric (for qualitative and semi-quantitative measurement) sensors by combining the DNA with fluorophore/quencher pairs and gold nanoparticles, respectively. The feasibility of transforming the innovations into commercial success at the DzymeTech has been established in the NIH STTR Phase I project (1R41ES014125-01), in which catalytic DNA sensors for lead(II) and uranium(VI) have been obtained that have high sensitivity (e.g., ~ 11 ppt) and selectivity (e.g., > 1 million fold). This Phase II application addresses critical issues of transferring the sensor design into prototypes of sensor kits for markets. The customer requirements will be determined and prototype components and protocols will be developed. They include: "Obtain all four fluorescent and colorimetric sensors for Pb(II), U(VI), Cd(II), and Hg(II). Characterize the sensors by determining the detection limit and selectivity of each sensor. "Design and characterize prototype sensor kits for each metal ion. Including sensor components, storage condition and test protocol optimization, high/low temperature stability tests and reproducibility tests with sensors from multiple-batches. "Test field samples to study interference and matrix effects. Real field samples, including soil and water samples will be collected and tested. Sensor performance with real samples will be used to evaluate the commercialization values of the sensor kits.
PUBLIC HEALTH RELEVANCE: Highly sensitive and selective catalytic DNA sensors for lead(II), uranium(VI), cadmium(II), and mercury(II) will be developed for cost-effective on-site and real-time detection and quantification. Heavy metal ions are widely present in the environment, causing significant health problems such as damages to brain, kidney, and neural system to human beings, especially children. Convenient portable sensors developed in this project will enable government inspectors, environmental monitors, household users, clinicians and first-responders make informed decision about remediation and monitoring strategy and thus improve human health and quality of life.
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会议论文
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