Nano-Scale Tools for Use in Cell Biology
用于细胞生物学的纳米级工具
基本信息
- 批准号:7192655
- 负责人:
- 金额:$ 43.68万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2007
- 资助国家:美国
- 起止时间:2007-08-01 至 2012-05-31
- 项目状态:已结题
- 来源:
- 关键词:ApoptosisApplications GrantsAreaBeliefBiochemicalBiochemistryBiocompatibleBiologicalBiologyBiosensorBostonCell ShapeCell SizeCellsCellular StructuresCellular biologyCharacteristicsChemicalsChemistryClassClinical MedicineComputer information processingCuesDetectionDevelopmentDevicesDiagnosisDiagnosticDimensionsDiseaseEventExhibitsFutureGene ExpressionIndividualLaboratoriesLeadLengthLifeMagnetismMammalian CellMeasuresMechanicsMedicalMedical DeviceMethodsMicrofluidicsMolecularNanotechnologyOpticsOrganellesPathologyPediatric HospitalsPhysicsPositioning AttributeProcessReadingResearchResolutionSensorySignal TransductionStructureSurfaceSystemTechnologyTherapeuticTissuesTransduction GeneUser-Computer InterfaceWorkbasebiochipcell behaviorcell growthcell motilitydirectional celldrug discoveryinsightlithographymacromoleculemedical schoolsmillimetermillisecondmolecular shapemonolayernanoparticlenanoscalenanosciencenanosystemsnanotoolnovelparticlepathogenphysical scienceprototypequantumresponseretinal rodsstudy characteristicstool
项目摘要
DESCRIPTION (provided by applicant): The proposed work will develop nanoscale tools for characterizing the mammalian cell; it will ultimately lead to new tools for drug discovery, diagnosis of disease, and studying fundamental cell biology. Its justification is that study of biological entities fundamentally involves the study of nanoscale components of the cell: subcellular organelles, pathogens, macromolecules. Nanoscale tools are required to examine and analyze these components at the subcellular scale. The research will create nanometer-scale components (rods, particles, and surfaces) using "biology-friendly" nanotechnology (soft lithography and self-assembled monolayers), and use them to examine mammalian cells. It will use nanoscience-based approaches to:1) create 2D and 3D microenvironments with controlled shapes, molecular composition, and mechanical characteristics for studies of cells; 2) create electrically, optically, and mechanically functional nanosystems that permit selective stimulation of cells, and allow read-out of cellular electrical, chemical and mechanical responses with subcellular resolution; 3) leverage systems that exhibit quantum phenomena unique to nanosystems (e.g., superparamagnetism, superluminosity) to generate new physics and chemistry relevant to biology, and use this understanding of physical science to afford fundamentally new classes of information about cell structure and function; 4) develop methods to multiplex nanoscale technologies to measure functions and characteristics of single cells in parallel, with high statistical reliability; 5) demonstrate the relevance and application of these tools using important biological problems. The work will combine to generate a "nanotool cellular workbench"; it has four specific aims: 1) To create novel multifunctional nanometer-scale structures, particles, components, and surfaces, and analytical systems that use these entities, 2) To use this "work bench" of nanotools to understand how individual cells sense mechanical cues and integrate them with chemical and electrical signals in 2D and 3D microenvironments, 3) To create nanoscale control interfaces that rapidly actuate changes in cellular signal transduction and read-out biochemical responses, and 4) To combine these nanotechnologies with microfluidic systems to create prototypes for integrated cellular biochip-based medical devices.
描述(由申请人提供):拟议的工作将开发表征哺乳动物细胞的纳米级工具;它最终将导致药物发现、疾病诊断和基础细胞生物学研究的新工具。它的理由是,对生物实体的研究从根本上涉及到对细胞的纳米级成分的研究:亚细胞器、病原体、大分子。需要纳米级的工具来检查和分析亚细胞级别的这些成分。这项研究将利用对生物友好的纳米技术(软光刻和自组装单层膜)制造纳米级的组件(棒、颗粒和表面),并用它们来检查哺乳动物细胞。它将使用基于纳米科学的方法来:1)为细胞研究创造具有受控形状、分子组成和机械特性的2D和3D微环境;2)创建电、光和机械功能的纳米系统,允许选择性地刺激细胞,并允许以亚细胞分辨率读出细胞的电、化学和机械响应;3)利用表现出纳米系统特有的量子现象的系统(例如,超顺磁性、超光度)来产生与生物学有关的新的物理和化学,并利用这种对物理科学的理解来提供关于细胞结构和功能的全新的信息类别;4)开发多种纳米级技术以并行测量单个细胞的功能和特征的方法,具有很高的统计可靠性;5)使用重要的生物学问题演示这些工具的相关性和应用。这项工作将结合起来产生一个“纳米工具细胞工作台”;它有四个具体目标:1)创建新颖的多功能纳米级结构、粒子、组件和表面,以及使用这些实体的分析系统;2)利用纳米工具的这个“工作台”了解单个细胞如何感知机械线索并将它们与2D和3D微环境中的化学和电信号相结合;3)创建纳米级控制界面,以快速驱动细胞信号转导和读出的生化反应的变化;以及4)将这些纳米技术与微流控系统相结合,创建基于集成细胞生物芯片的医疗设备的原型。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(6)
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{{ truncateString('GEORGE M WHITESIDES', 18)}}的其他基金
INFLUENCE OF THE ZN(II) COFACTOR ON THE REFOLDING OF BOVINE CARBONICANHYDRASE
Zn(II)辅助因子对牛碳酸酐酶重折叠的影响
- 批准号:
7369230 - 财政年份:2006
- 资助金额:
$ 43.68万 - 项目类别:
INFLUENCE OF THE ZN(II) COFACTOR ON THE REFOLDING OF BOVINE CARBONICANHYDRASE
Zn(II)辅助因子对牛碳酸酐酶重折叠的影响
- 批准号:
7182185 - 财政年份:2005
- 资助金额:
$ 43.68万 - 项目类别:
SYNTHESIS OF MONODISPERSE POLYMERS FROM PROTEINS
从蛋白质合成单分散聚合物
- 批准号:
6978487 - 财政年份:2004
- 资助金额:
$ 43.68万 - 项目类别: