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IDBR: In vivo multifunctional photothermal cytometry

IDBR: In vivo multifunctional photothermal cytometry
IDBR:体内多功能光热细胞仪
批准号:
0852737
负责人:
Vladimir Zharov
金额:
$66.89万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-05-15 至 2013-04-30

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中文摘要
翻译
两种方法在生物学研究中占主导地位:亚细胞水平的实验室实验,以及检查活生物体中细胞群的实验。这在我们对生物现象的理解中留下了一个持续和经常性的空白。不可能在试管中充分复制在活生物体中重要的环境因素的全部库,并且整体动物研究目前在以足够的分辨率和灵敏度研究单个细胞的结构和活性方面受到限制,特别是在生物流背景下。该奖项将通过开发多参数光热细胞仪来填补这一空白,该细胞仪用于实时研究活生物体中的单个细胞,在静态和流动条件下具有分子特异性,基于固有振动光谱对比度。该先进的技术平台具有光谱可调的近红外纳秒脉冲激光器,将用于单细胞的非侵入性,快速(毫秒级)检测和成像,具有高光学分辨率,增强的吸收灵敏度(比传统吸收光谱法好四个数量级)和准确的细胞定位。该仪器适用于各种活体动物模型的研究,包括小鼠耳、肠系膜或C。优雅该项目的成果涵盖了一个几乎未开发的生物研究领域,该领域与使用弱荧光、光吸收细胞微米和纳米结构作为内在细胞特异性光热标记物有关,用于在活生物体中对各种生物过程进行非侵入性实时研究,如程序性细胞死亡(凋亡)、代谢活动和环境因素(例如,氧化应激)对体内平衡、免疫力和寿命的影响。长期目标包括增强光热细胞仪用于三维成像,开发光热多光子显微镜,并可能整合光热,荧光和光散射技术。这项跨学科的研究涉及数学家,物理学家,电气工程师,化学家和生物学家,并将包括开发一个培训计划和先进的光学成像,动物模型和细胞研究在体内的新课程,有利于本科生,研究生和研究生的教育在阿肯色州大学医学科学和阿肯色州费耶特维尔在小石城大学。来自松海崖大学的不同种族群体的学生和残疾学生(通过阿肯色州聋人学校)将得到指导。
英文摘要
Two methodologies have dominated in biological studies: Laboratory experiments at the subcellular levels, and experiments examining populations of cells in living organisms. This leaves a persistent and recurrent gap in our understanding of biological phenomena. It is not possible to adequately replicate in a test tube the full repertoire of environmental factors that are important in living organisms, and whole-animal studies currently are limited with regards to studying the structure and activities of individual cells with sufficient resolution and sensitivity, especially in a bioflow context. This award will fill this gap by developing a multiparameter photothermal cytometer for real-time study of individual cells in living organisms, in both static and flow conditions with molecular specificity, based upon intrinsic vibrational spectroscopic contrast. The advanced technical platform with a spectrally tunable near-infrared nanosecond pulse laser will be built for non-invasive, rapid (millisecond scale) detection and imaging of single cells with high optical resolution, enhanced absorption sensitivity (four orders better than in convention absorption spectroscopy), and accurate cell positioning. The instrument can be applicable to studies of various living animal models, including mouse ear and mesentery or C. elegans. The project outcomes encompass an almost unexplored area of biological research associated with the use of weakly fluorescent, light-absorbing cellular micro- and nanostructures as intrinsic cell-specific photothermal markers for the non-invasive real-time study in living organisms of various biological processes such as programmed cell death (apoptosis), metabolic activity, and the influence of environmental factors (e.g., oxidative stress) on homeostasis, immunity, and longevity. Long-term goals include enhancing the photothermal cytometer for use in three-dimensional imaging, developing photothermal multiphoton microscopy, and potentially integrating photothermal, fluorescence, and light scattering techniques. This interdisciplinary research involves mathematicians, physicists, electrical engineers, chemists and biologists, and will include developing a training program and new coursework on advanced optical imaging, animal models, and cell study in vivo to benefit the education of undergraduate, graduate, and postgraduate students at University of Arkansas for Medical Sciences and University of Arkansas at Fayetteville at Little Rock. Students from different ethnic groups from University at Pine Bluff, and disabilities (through Arkansas School for the Deaf) will be mentored.
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IDBR: Type A. Far-field optical thermal wave nanoscopy.
Biophotonics: High-Resolution Photothermal Imaging of Non-Fluorescent Living Cells
国内基金
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