Optically Resonant Nanotweezers
Optically Resonant Nanotweezers
批准号:
7896973
负责人:
David Carl Erickson
金额:
$22.47万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-05-01 至 2012-04-30
关键词:
AffectBindingCopperDevelopmentDevicesDiseaseEnergy TransferEnvironmentFamilial Amyotrophic Lateral SclerosisGalactosidaseGoalsHepatolenticular DegenerationHumanIonsIronJointsLeadLiquid substanceMeasurementMenkes Kinky Hair SyndromeMetalsMolecularMolecular ChaperonesNanosphereNanostructuresNucleic AcidsNutrientOpticsPathway interactionsPhycoerythrinPhysiologicalProteinsRadialSeriesSolutionsStructureSystemTechniquesTestingTimeUniversitiesWilson disease proteinWorkbasecopper-transporting ATPaseinterestlaser tweezermeetingsnanometernanoparticlenovel strategiesoptical trapsprotein complexprotein protein interactionpublic health relevanceresearch studysingle moleculesmall moleculetheoriestooltrafficking
中文摘要
描述(由申请人提供):在这项工作中,我们提出了康奈尔大学Erickson和Chen实验室的一个联合项目,通过开发单分子纳米光子光学捕获和荧光共振能量转移(FRET)技术,展示了一种全新的方法来研究弱蛋白质-蛋白质相互作用。我们在这里应用该技术的分子系统是从细胞内铜伴侣ha1到铜运输atp酶威尔逊病蛋白(WDP)的人体铜运输途径。这种转运途径的功能异常可导致Wilson病和家族性肌萎缩侧索硬化等疾病。尽管它很重要,但关于h1和WDP如何相互作用的定量信息非常有限。获得这些信息的一个主要困难是缺乏一种单分子分析工具,它可以同时:(1)捕获小分子并将其悬浮在自由溶液中一段不确定的时间;(2)有效地“浓缩”一组感兴趣的分子,使其达到可以研究弱蛋白质-蛋白质相互作用的程度;(3)允许快速调节外部环境条件(例如背景离子浓度)。为了满足这些要求,我们在这里提出的核心技术进步是我们最近展示的光学谐振纳米镊子。光约束技术在单分子分析中的优势,就像光镊子一样,在于它们可以在动态变化的背景溶液中悬浮和集中目标。然而,从根本上说,现有的光学约束技术受到衍射的限制,衍射对介电目标的尺寸设置了一个下界,介电目标可以被捕获到大约100nm。我们在这里证明,我们的平面光学共振纳米镊子允许我们以这样一种方式集中光能,这种力可以增强,从而捕获小到几纳米的分子,使我们降低到可以测量单个蛋白质的范围。在这项工作中,我们建议在我们之前捕获核酸的工作基础上,通过捕获一系列较大的测试蛋白(6-8nm)来初步开发该系统。在初步开发之后,我们将对Hah1-WDP复合物进行一系列单分子捕获- fret研究,研究结合相互作用如何响应Cu1+离子背景浓度的变化。
英文摘要
DESCRIPTION (provided by applicant): In this work, we propose a joint project between the Erickson and Chen labs at Cornell University to demonstrate an entirely new approach to the study of weak protein-protein interactions through the development of a single molecule nanophotonic optical trapping and florescence resonant energy transfer (FRET) technique. The molecular system we apply the technique to here is the human copper transport pathway from the intracellular copper chaperone Hah1 to the copper transporting ATPase Wilson disease protein (WDP). Abnormal function of this transport pathway can lead to diseases such as Wilson disease and familial amyotrophic lateral sclerosis. Despite its importance, very limited quantitative information is available on how Hah1 and WDP interact. A major difficulty in obtaining this information is the lack of a single molecule analysis tool which can simultaneously: (1) capture and suspend small molecules in free solution for an indefinite period time (2) effectively "concentrate" the set of molecules of interest to a point where weak protein-protein interactions can be studied and (3) allow rapid modulation of the external environmental conditions (e.g. background ion concentration). The core technological advancement we propose to exploit here in order to meet these requirements is our recently demonstrated optically resonant nanotweezers. The advantage of optical confinement techniques, like optical tweezers, in single molecule analysis is that they can suspend and concentrate targets in dynamically changing background solutions. Fundamentally however, existing optical confinement techniques are limited by diffraction which places a lower bound on the size of dielectric target which can be trapped to about 100nm. We demonstrate here that our planar optically resonant nanotweezers allow us to concentrate the optical energy in such a way that this force can be enhanced so as to trap molecules as small as a few nanometers, bringing us down into the range to make single protein measurements possible. In this work we propose to initially develop the system by trapping a series of larger test proteins (6-8nm) building on our previous work in trapping nucleic acids. After initial development we will conduct a series of single molecule trapping-FRET studies on the Hah1-WDP complex examining how binding interactions respond to changes in Cu1+ ion background concentration.
PUBLIC HEALTH RELEVANCE: Metal ions, for example iron and copper, are essential nutrients that can also be toxic if their concentration exceeds the physiological limit. Abnormal function of metal transport molecules can lead to diseases such as Wilson disease, Menkes disease and familial amyotrophic lateral sclerosis. In this work we propose to develop a fundamentally new approach to optically based single molecule analysis and apply it to understanding the function of a series of proteins which control intracellular copper transport.
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