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通过泵浦-探测(受激发射)荧光显微镜进行的时间分辨偏振成像。

Time-resolved polarization imaging by pump-probe (stimulated emission) fluorescence microscopy.

作者信息

Buehler C, Dong C Y, So P T, French T, Gratton E

机构信息

Novartis Pharma AG, Pharma Research, CTA, LFU/NAT S-360.4.16, CH-4002 Basel, Switzerland.

出版信息

Biophys J. 2000 Jul;79(1):536-49. doi: 10.1016/S0006-3495(00)76315-6.

Abstract

We report the application of pump-probe fluorescence microscopy in time-resolved polarization imaging. We derived the equations governing the pump-probe stimulated emission process and characterized the pump and probe laser power levels for signal saturation. Our emphasis is to use this novel methodology to image polarization properties of fluorophores across entire cells. As a feasibility study, we imaged a 15-microm orange latex sphere and found that there is depolarization that is possibly due to energy transfer among fluorescent molecules inside the sphere. We also imaged a mouse fibroblast labeled with CellTracker Orange CMTMR (5-(and-6)-(((4-chloromethyl)benzoyl)amino)tetramethyl-rhodamine). We observed that Orange CMTMR complexed with gluthathione rotates fast, indicating the relatively low fluid-phase viscosity of the cytoplasmic microenvironment as seen by Orange CMTMR. The measured rotational correlation time ranged from approximately 30 to approximately 150 ps. This work demonstrates the effectiveness of stimulated emission measurements in acquiring high-resolution, time-resolved polarization information across the entire cell.

摘要

我们报告了泵浦-探测荧光显微镜在时间分辨偏振成像中的应用。我们推导了控制泵浦-探测受激发射过程的方程,并表征了信号饱和时的泵浦和探测激光功率水平。我们的重点是使用这种新颖的方法对整个细胞中的荧光团的偏振特性进行成像。作为一项可行性研究,我们对一个15微米的橙色乳胶球进行了成像,发现存在去极化现象,这可能是由于球体内荧光分子之间的能量转移所致。我们还对用CellTracker Orange CMTMR(5-(及-6)-(((4-氯甲基)苯甲酰基)氨基)四甲基罗丹明)标记的小鼠成纤维细胞进行了成像。我们观察到与谷胱甘肽复合的Orange CMTMR快速旋转,这表明Orange CMTMR所观察到的细胞质微环境的液相粘度相对较低。测得的旋转相关时间范围约为30皮秒至约150皮秒。这项工作证明了受激发射测量在获取整个细胞的高分辨率、时间分辨偏振信息方面的有效性。

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本文引用的文献

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Annu Rev Biophys Bioeng. 1984;13:105-24. doi: 10.1146/annurev.bb.13.060184.000541.
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Pyrene eximer mapping in cultured fibroblasts by ratio imaging and time-resolved microscopy.
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