Microchip to Detect Influenza Infection and Type in Nasopharyngeal Swabs
Microchip to Detect Influenza Infection and Type in Nasopharyngeal Swabs
批准号:
7632230
负责人:
CATHERINE M. KLAPPERICH
金额:
$34.66万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-09-01 至 2011-06-30
关键词:
Academic Medical CentersAccident and Emergency departmentAffectArtsBedside TestingsBindingBiological AssayBostonCessation of lifeClinicalCommunicable DiseasesCommunitiesCytolysisDetectionDevicesDiagnosisDiagnosticEarly DiagnosisEngineeringEpidemicFiltrationGlassGoalsHandHealthcareHemagglutininHumanIndividualInfluenzaLaboratory ResearchMethodsMicrofluidic MicrochipsMicrofluidicsMolecularNucleic AcidsOrganismPatientsPerformancePhasePlasticsPolymersPreparationPreventionProtocols documentationPublic HealthPumpRNAReagentResourcesReverse Transcriptase Polymerase Chain ReactionRosaSamplingScienceSensitivity and SpecificitySideSiliconSilicon DioxideSimulateSolidSwabSymptomsSystemTechnologyTestingTimeUnited StatesVariantViralWorkassay developmentbasedesignflexibilityfluimprovedinfluenza epidemicmicro-total analysis systemmicrochipnanoparticlenanoscalepandemic influenzaparticlepoint of carepressureprototypesuccessviral RNAviral detection
中文摘要
描述(由申请人提供):非常保守的估计认为,在1918年的流感流行中,全世界共有5000万人死亡。这些死亡大多发生在24周内。减少快速传播的传染病造成的死亡人数绝对需要对感染者进行快速诊断、治疗和隔离。成功需要广泛提供简单、稳健和易于使用的分子诊断,用于在护理点最早检测致病微生物。材料科学的最新进展已经使一系列功能性纳米和微米级颗粒成为可能。将这些颗粒作为复合材料并入塑料微流体装置中提供了从微升和亚微升样品体积中分离生物分子的新机会。我们开发了一种塑料芯片实验室平台,用于使用微流体通道进行样品制备、扩增和检测人体样品中的病毒RNA。这些装置能够裂解病毒颗粒,并结合,浓缩和洗脱核酸从流感感染的哺乳动物样品的10升或less. The假设要测试的是,塑料微流控诊断芯片与纳米级的功能可以检测和识别流感A微升规模的人类鼻咽样本的特异性和灵敏度可比或优于目前可用的即时检测。我们已经在实验台上证明了芯片的组件可以与感染流感的模拟样本一起工作。我们的长期目标是开发一种便携式,相对便宜的分子诊断系统,可用于各种医疗机构,以快速诊断和识别真实的人体样本中的特定流感病毒株。此外,我们的目标是创建可以在低资源环境中使用的设备,这些设备由具有很少或没有硅或玻璃成分的聚合物材料制成。为了进一步推进这项工作,我们与波士顿大学医学中心的临床医生合作,开始使用真实的样本进行工作,并使用中等规模的患者群体进行特异性和敏感性的初步研究。为了开发这种技术用于现实世界的临床和现场使用,提出了以下目标:(1)优化芯片设计,以获得更快的响应时间和更好的性能。现在我们已经有了一个工作的原型系统,我们将检查每个单独的组件,以提高设备的效率。(2)优化检测试剂盒(试剂和方案),以加快应答速度并提高可靠性。设备本身的工程设计需要与检测开发并行进行。在微流体装置中,很少像将台式测定缩小到小体积设置那样简单。(3)确定微流体诊断在特异性和灵敏度方面是否与使用人鼻咽样品的最新诊断测定相当或更好。将在BUMC急诊室从出现流感样症状的患者中采集样本。将基于芯片的检测与病毒培养、血凝素抑制和台式RT-PCR检测进行比较。
要更有效地控制传染病的传播,就必须将预防工作与广泛提供廉价和准确的诊断方法结合起来。扩增和鉴定病毒核酸的探针可用于流感,但由于复杂的方案,病毒的分子检测没有广泛进行。需要对测试方案(样品制备、分离、稀释、洗涤、阻断和检测)和设备进行专门的工程设计,以便将这些技术从研究实验室转移到对公共卫生产生更直接影响的领域。
英文摘要
DESCRIPTION (provided by applicant): Very conservative estimates hold that in total 50 million people died worldwide in the 1918 flu epidemic. Most of these deaths happened in a 24-week period. Reducing the death toll from fast spreading infectious diseases will absolutely require fast diagnosis, treatment and isolation of the infected. Success requires the wide availability of simple, robust, and easy to use molecular diagnostics for use at the point-of-care for the earliest detection of the causative organism. Recent advances in materials science have made available a wide array of functional nano and microscale particles. Incorporation of these particles as composites into plastic microfluidic devices provides new opportunities to separate biomolecules from microliter and sub-microliter sample volumes. We have developed a plastic lab-on-a-chip platform for sample preparation, amplification and detection of viral RNA in human samples using microfluidic channels. These devices are capable of lysing viral particles and binding, concentrating and eluting nucleic acids from influenza infected mammalian samples of 10 l or less. The hypothesis to be tested is that plastic microfluidic diagnostic chips with nanoscale features can detect and identify influenza A in microliter-scale human nasopharyngeal samples with a specificity and sensitivity comparable or better than presently available point-of-care testing. We have demonstrated at the bench that the components of the chip work with simulated samples infected with influenza. Our long term goal is to develop a portable, relatively inexpensive molecular diagnostic system that can be used in a variety of healthcare settings to quickly diagnose and identify specific flu strains in real human samples. In addition, we aim to create devices that can be used in low resource settings that are made of polymeric materials with few or no silicon or glass components. To further this effort, we have teamed with clinicians at the Boston University Medical Center to begin work with real samples and to perform an initial study of specificity and sensitivity using a moderately sized group of patients. In order to develop this technology for real-world clinical and field use the following aims are proposed: (1) Optimize the chip design to result in faster time-to-answer with better performance. Now that we have a working prototype system in hand, we will examine each of the individual components to improve the efficiency of the device. (2) Optimize the assay (reagents and protocol) for faster time-to-answer and reliability. Engineering of the device itself needs to proceed side by side with assay development. In microfluidic devices, it is rarely as simple as shrinking down a bench top assay into the small volume setting. (3) Determine whether the microfluidic diagnostic is comparable or better in specificity and sensitivity to state of the art diagnostic assays using human nasopharyngeal samples. Samples will be collected at BUMC Emergency Department from patients presenting with influenza-like symptoms. The chip based assay will be compared to viral culture, hemagglutinin inhibition and bench-top RT-PCR assays.
More effective control of the spread of infectious diseases requires a combination of prevention efforts and the widespread availability of inexpensive and accurate diagnostics. Probes to amplify and identify viral nucleic acids are available for influenza, but molecular detection of the virus is not widely performed due to complicated protocols. Dedicated engineering of test protocols (sample preparation, separations, dilutions, washing, blocking, and detection) and devices is required to move these technologies out of the research laboratory and into the field where they can have a more immediate impact on public health.
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