High Performance Terahertz Spectroscopy Systems for Advanced Biological Studies
High Performance Terahertz Spectroscopy Systems for Advanced Biological Studies
批准号:
1933554
负责人:
Mona Jarrahi
金额:
$42.54万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-09-01 至 2024-02-29
中文摘要
近场显微镜系统如扫描隧道显微镜、原子力显微镜、扫描光学显微镜和电子显微镜可以产生生物样品的高度详细的结构信息。然而,它们的光谱和操作限制了它们用于研究生物过程的动力学。替代的单分子方法使用各种标记技术来表征生物分子的结构动力学。在活性位点附近标记生物分子可能是一个重大挑战,并且可能影响许多生物过程中分子的自然行为。为了解决这些局限性,本项目提出了一种创新的太赫兹扫描纳米显微镜系统,作为一种强大的无标记生物研究工具,以推进生物物理学的研究。所提出的无标记探测系统将允许在天然条件下研究生物分子的复杂行为,同时避免标记反应的详尽遗传和生物化学表征。所提出的系统通过完全封装和光纤耦合平台为实际环境中的生物学研究提供了显着的灵活性(大面积扫描,同时光激发和添加外部化学刺激的灵活性)。因此,拟议的研究将有利于生物研究社区进行单分子生物物理学,细胞结构,纳米医学,蛋白质折叠等研究作为我们传播的一部分,我们与生物研究社区的成员密切合作,利用和评估开发的太赫兹光谱系统进行各种生物研究。一个特殊的培训计划是建立在吸收研究生从事这种类型的跨学科研究,本科生和暑期实习生招聘这些研究活动,并特别优先考虑招聘有才华的本科生和研究生候选人从代表性不足的群体。太赫兹波为生物分子的无标记表征和研究生物系统的结构,动力学和操作提供了前所未有的功能。这是因为太赫兹光子能量与重生物分子内分子的低结合能相当,为区分蛋白质提供了一个平台,并通过太赫兹光谱提供了有关其构象状态的信息。此外,由于生物分子的不同太赫兹特征取决于它们的分子间和分子内振动和旋转,太赫兹光谱能够研究活细胞及其在各种生物系统内的相互作用,包括细胞代谢和繁殖以及通过细胞膜从环境到细胞的化学转移和可能的构象变化。此外,由于太赫兹光谱可以捕获飞秒尺度的动态变化,它非常适合于研究蛋白质重排,折叠和与其他生物分子结合过程中的分子运动动力学。尽管太赫兹技术具有巨大的前景,但其在生物学研究中的应用范围和潜在用途仍然受到现有太赫兹光谱系统的低灵敏度和有限空间分辨率的限制。所提出的纳米系统解决了这两个限制,同时提供显着更高的灵敏度和带宽相比,国家的最先进的。所提出的时域太赫兹光谱系统包括一个等离子体激元光电导太赫兹源和电光晶体的宽带太赫兹波的产生和检测,分别。将等离子体激元太赫兹源和电光晶体与一种新型的太赫兹探测器集成在一起,该探测器由锥形波导组成,用于将产生的太赫兹光束聚焦到具有纳米级聚焦尺寸的生物样品上,并将来自样品的反射太赫兹光束耦合到电光晶体用于检测。太赫兹探测器的设计目的是在纳米尺度上进行太赫兹光谱分析,而不会对光谱带宽产生很大影响。该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Near-field microscopy systems such as Scanning Tunneling Microscopy, Atomic Force Microscopy, Scanning Optical Microscopy, and Electron Microscopy can yield highly detailed structural information of biological samples. However, their spectral and operational constraints have limited their use for studying dynamics of biological processes. Alternative single-molecule approaches use various labeling techniques for characterizing structural dynamics of biomolecules. Labeling biomolecules near their active sites can be a major challenge and can affect the natural behavior of molecules in many biological processes. To address these limitations, this project proposes an innovative Scanning Terahertz Nanoscopy system as a powerful label-free biological study tool to advance the research in biophysics. The proposed label-free probing system would allow studying the complex behavior of biomolecules under native conditions, while avoiding exhaustive genetic and biochemical characterization of labeling reactions. The proposed system offers significant flexibility for biological studies in practical settings (flexibility in large area scanning, simultaneous optical excitation, and adding external chemical stimuli) through a fully packaged and fiber-coupled platform. Therefore, the proposed research would benefit the biological research communities conducting research on single-molecule biophysics, cellular structure, nanomedicine, protein folding, etc. As a part of our dissemination, we work closely with the members of the biological research community to utilize and evaluate the developed terahertz spectroscopy system for various biological studies. A special training program is constructed to assimilate graduate students working on this type of interdisciplinary research, undergraduate students and summer interns are recruited for these research activities and special priority is given to recruitment of talented undergraduate and graduate candidates from underrepresented groups. Terahertz waves offer unprecedented functionalities for label-free characterization of biomolecules and studying the structure, dynamics and operation of biological systems. This is because terahertz photon energies are comparable with the low binding energies of molecules inside heavy biomolecules, offering a platform for differentiating proteins and providing information about their conformation states through terahertz spectroscopy. Additionally, since distinct terahertz signatures of biomolecules are dependent on their intermolecular and intramolecular vibrations and rotations, terahertz spectroscopy enables investigating living cells and their interaction inside various biological systems including cell metabolism and reproduction as well as chemical transfer from the environment to cell through cell membrane and possible conformational changes. Moreover, since terahertz spectroscopy can capture femtosecond-scale dynamic variations, it is very well suited for investigating kinetics of molecular motions during protein rearrangement, folding, and binding to other biomolecules. Despite its great promises, the scope and potential use of terahertz technology for biological studies is still limited by low sensitivity and limited spatial resolution of existing terahertz spectroscopy systems. The proposed nanoscopy system solves both limitations, while offering significantly higher sensitivities and bandwidths compared to the state-of-the-art. The proposed time-domain terahertz spectroscopy system consists of a plasmonic photoconductive terahertz source and an electro-optic crystal for broadband terahertz wave generation and detection, respectively. The plasmonic terahertz source and the electro-optic crystal are integrated with a novel terahertz probe, which consists of a tapered waveguide used for focusing the generated terahertz beam onto the biological sample with nanoscale focus dimensions and coupling the reflected terahertz beam from the sample to the electro-optic crystal for detection. The terahertz probe is designed to allow terahertz spectroscopy at the nanoscale without a considerable impact on the spectral bandwidth.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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会议论文
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资助金额:$55.0万
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财政年份:2023
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财政年份:2013
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依托单位:
Compact Whispering-Gallery TeraHertz Emitter
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资助金额:$33.0万
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财政年份:2012
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依托单位:
CAREER: Next Generation Photomixer-Based Terahertz Sources
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财政年份:2011
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依托单位:
EAGER: Coherent Terahertz Generation in Silica Micro-Resonators
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财政年份:2010
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MEMS Reconfigurable Subwavelength Metallic Slits for Broadband Terahertz Modulation
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资助金额:$40.0万
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依托单位:
国内基金
海外基金
量子限制杂质原子作为单电子量子点对Terahertz远红外发光器的应用
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批准号:60776044
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项目类别:面上项目
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负责人:郑卫民
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依托单位: