Integrated Optical Particle Trap for Biomolecule Analysis and Manipulation
Integrated Optical Particle Trap for Biomolecule Analysis and Manipulation
批准号:
7510248
负责人:
Holger Schmidt
金额:
$21.87万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-06-01 至 2011-05-31
关键词:
BacteriaBehaviorBindingBiologicalCellsCommunicable DiseasesComplementComplementary DNACountryCustomDNADetectionDevelopmentDevicesDiseaseEquipmentFluorescenceFluorescence SpectroscopyFutureGenerationsGoalsHome environmentLightLiposomesLiquid substanceMeasurementMedicalMethodsMicrofluidicsMicroscopeMicroscopyMicrospheresMiniaturizationModelingMolecular BiologyNatureOpticsPathway interactionsPerformancePositioning AttributePrincipal InvestigatorPropertyPublic HealthReactionResearchSamplingScienceSiteSolutionsStructureSystemTechniquesTechnologyTestingTranslationsbasedesigndetectorinstrumentlaser tweezermicro-total analysis systemminiaturizenext generationnoveloptical trapsparticlepoint of carepreventprogramsresearch studytooltrendtwo-dimensional
中文摘要
描述(由申请人提供):小型化是生物分析仪器的发展趋势。在小空间内集成传感、检测和操作功能,有望产生新一代廉价、便携和高灵敏度的设备,这些设备可以以许多可能具有破坏性的方式有益于公共卫生,例如家庭和医疗实践中的即时护理设备,或者作为不发达国家流行传染病的坚固探测器。因此,我们研究的长期目标是开发新一代的光流体仪器,其中微流体和光学组件都集成在单个芯片的平面上,从而允许更小,更便宜,更强大的仪器。此外,这些仪器应具有单粒子水平的灵敏度。在此应用中,提出了用于在芯片上对颗粒进行全光学操纵的集成光学颗粒阱的开发和表征。利用光镊捕获和操纵生物粒子已经使我们对细胞和分子的理解大大增加。将这些功能转化为使用集成光学器件代替高端显微镜的芯片,将使其能够应用于疾病检测和其他公共卫生问题。本研究有两个目的:目的1:介绍一种新型的集成光学粒子阱,并对其进行表征。基于集成波导固有特性的捕获原理将在作为模型光流体平台的液芯ARROW波导中实现。将使用无机微球作为测试颗粒来表征相关的陷阱特性,例如陷阱强度和利用其综合性质的独特功能。这些研究将通过分析和数值建模来补充。目标2:将展示使用光学颗粒控制的芯片上的新生物分析能力。将使用代表性生物颗粒(包括脂质体、大肠杆菌和DNA分子)证明功能能力,包括颗粒浓度、单颗粒荧光、光学控制颗粒结合和微环境中的反应。这将通过结合新的陷阱特性与波导设计和制造的现有技术以及灵敏的光学检测来实现。在该项目结束时,使用集成波导的全光学颗粒控制将被牢固地确立为光流体学的新工具,并向下一代芯片生物分析迈出重要一步。
英文摘要
DESCRIPTION (provided by applicant): Miniaturization is a growing trend for bioanalytical instruments. Integration of sensing, detection, and manipulation functionalities in a small space promises a new generation of inexpensive, portable and highly sensitive equipment that can benefit public health in many, possibly disruptive ways such as point-of-care devices in homes and medical practices or as rugged detectors for prevalent infectious diseases in underdeveloped countries. The long-term goals of our research are, therefore, to develop a new generation of optofluidic instruments in which both microfluidic and optical components are integrated in the plane of a single chip, thus allowing for smaller, less expensive, and more robust instruments. In addition, these instruments should possess exquisite sensitivity on the single-particle level. In this application, the development and characterization of integrated optical particle traps for all-optical manipulation of particles on a chip is proposed. Trapping and manipulation of bioparticles with light using optical tweezers has already led to a dramatic increase in our understanding of cells and molecules. The translation of these capabilities to a chip using integrated optics in lieu of high-end microscopes will enable their application to disease detection and other public health issues. The proposed research has two specific aims: Aim 1: A new type of integrated optical particle trap will be introduced and characterized. A trapping principle based on intrinsic properties of integrated waveguides will be implemented in liquid-core ARROW waveguides as the model optofluidic platform. The relevant trap properties such as trap strength and unique features that take advantage of its integrated nature will be characterized using inorganic microspheres as test particles. These studies will be complemented by analytical and numeric modeling. Aim 2: New bio-analytical capabilities on a chip using optical particle control will be demonstrated. Functional capabilities including particle concentration, single particle fluorescence, optically controlled particle binding and reactions in microenvironments will be demonstrated using representative biological particles including liposomes, E.coli bacteria, and DNA molecules. This will be achieved through the combination of the new trap properties with established techniques for waveguide design and fabrication, and sensitive optical detection. At the end of this project, all-optical particle control using integrated waveguides will have been firmly established as a new tool in optofluidics and major step towards next generation bio- analysis on a chip.
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