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Ultra Sensitive Single Molecule Spectroscopy With Plasmonic Antennas

Ultra Sensitive Single Molecule Spectroscopy With Plasmonic Antennas
使用等离子天线的超灵敏单分子光谱
批准号:
8758334
负责人:
Hu Cang
金额:
$291.0万
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-09-30 至 2019-06-30

项目摘要

项目成果

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中文摘要
翻译
描述(由申请人提供):本研究拟在等离子体天线上开发单分子光谱(SMS),以实现1nm的空间分辨率,1nm的时间分辨率和1mM的工作浓度,比目前最先进的SMS提高3个数量级。SMS的发明使实时跟踪单个酶分子的生化反应成为可能,并对具有长读数(10-15 kb)的单个DNA分子进行测序。然而,两个主要障碍阻碍了短信的扩大使用:1)。浓度的障碍。要检测单个分子,平均而言,每次检测体积内不超过一个分子。因此,在1微摩尔以上的浓度下很难进行单分子检测,超出了生理相关浓度的高微-毫摩尔范围。2). 决议
英文摘要
DESCRIPTION (provided by applicant): This research proposes to develop single-molecule spectroscopy (SMS) on plasmonic antennas to achieve 1nm spatial resolution, 1¿s temporal resolution, and 1mM working concentration, representing improvement by 3 orders of magnitude over state-of-the-art SMS. The invention of SMS has made it possible to follow the biochemical reactions of an individual enzyme molecule in real time, and sequence a single DNA molecule with long reads (10-15 kb). However, two key barriers have hampered the expanded use of SMS: 1). Concentration barrier. To detect a single molecule requires that, on average, no more than one molecule be within the detection volume at a time. Therefore, it is difficult to carry out single-molecule detection at concentrations above 1micromolar, out of the range of physiologically relevant concentrations of high micro- to millimolar range. 2). Resolution barrier. The spatiotemporal resolution of current single-molecule F¿rster resonance energy transfer spectroscopy (SM-FRET) is about 4nm and 1ms, respectively, whereas the dynamics of most protein enzymes is on a sub-nanometer length scale and nano- to microsecond time scale, too small and too fast for SMS to capture. This project proposes to break the concentration and the resolution barriers by harnessing the extreme light manipulation power from recent breakthroughs in plasmonic antennas. Plasmonics is a flourishing field of science and technology that exploits the surface plasmon of metallic nanostructures to confine, route, and manipulate light at the nanometer length scale. In the past decade, thanks to better electromagnetic wave simulation algorithms, massive computational resources, and increasingly precise nanofabrication techniques, plasmonic antennas have been demonstrated to 1) coherently magnify fluorescent signals, 2) suppress photo-bleaching and blinking of single fluorescent molecules, and 3) reduce background noise. As a result, the antennas have been shown to enhance the fluorescence signal-to-noise ratio by up to 3 orders of magnitude, offering a means to break the concentration and resolution barriers. To develop this "lab-on-antennas" platform, this project will: 1) use computer simulation, single-molecule super-resolution microscopy, and atomic-force microscopy (AFM) assisted fabrication to rationally design and fabricate plasmonic antennas for high-resolution SMS; 2) fabricate plasmonic antennas on a large scale with novel polymer-assisted methods; and 3) use DNA molecular ruler, polypeptides, and adenylate kinase as models to establish the protocols of capturing transient dynamics of a single enzyme. By leveraging the advance of plasmonics, "lab-on-antennas" will be a general and powerful tool to visualize enzymes working at the single-molecule level with spatial and temporal resolution that has been previously unattainable.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1038/ncomms8942
发表时间: 2015-08-10
期刊: Nature communications
影响因子: 16.6
作者: [Cang H, Salandrino A, Wang Y, Zhang X]
通讯作者: Zhang X
Color-Coded Super-Resolution Small-Molecule Imaging.
颜色编码的超分辨率小分子成像。
DOI: 10.1002/cbic.201600013
发表时间: 2016
期刊: Chembiochem : a European journal of chemical biology
影响因子: --
作者: [Beuzer,Paolo, LaClair,JamesJ, Cang,Hu]
通讯作者: Cang,Hu
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