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Time-gated fluorescence lifetime imaging and microvolume spectroscopy using two-photon excitation

机译:使用双光子激发的时间门控荧光寿命成像和微体积光谱

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A scanning microscope utilizing two-photon excitation in combination with fluorescence lifetime contrast is presented. The microscope makes use of a tunable femtosecond titanium:sapphire laser enabling the two-photon excitation of a broad range of fluorescent molecules, including UV probes. Importantly, the penetration depth of the two-photon exciting (infra)red light is substantially greater than for the corresponding single-photon wavelength while photobleaching is significantly reduced, The time structure of the Ti:Sa laser can be employed in a straightforward way for the realization of fluorescence lifetime imaging. The fluorescence lifetime is sensitive to the local environment of the fluorescent molecule. This behaviour can be used for example to quantify concentrations of ions, such as pH and Ca2+, or pO(2) and pCO(2). In the set-up presented here the fluorescence lifetime imaging is accomplished by time-gated single photon counting, The performance and optical properties of the microscope are investigated by a number of test measurements on fluorescent test beads, Point-spread functions calculated from measurements on 230-nm beads using an iterative restoration procedure compare well with theoretical expectations, Lifetime imaging experiments on a test target containing two different types of test bead in a fluorescent buffer all with different lifetimes (2.15 ns, 2.56 ns and 3.34 ns) show excellent quantitative agreement with reference values obtained from time correlated single photon counting measurements. Moreover, the standard deviation in the results can be wholly ascribed to the photon statistics. Measurements of acridine orange stained biofilms are presented as an example of the potential of two-photon excitation combined with fluorescence lifetime contrast. Fluorescence lifetime and intensity images were recorded over the whole sample depth of 100 mu m. Fluorescence intensity imaging is seriously hampered by the rapid decrease of the fluorescence signal as a function of the depth into the sample. Fluorescence lifetime imaging on the other hand is not affected by the decrease of the fluorescence intensity. [References: 46]
机译:提出了利用双光子激发结合荧光寿命对比的扫描显微镜。显微镜利用可调谐飞秒钛:蓝宝石激光器,可对包括紫外线探针在内的各种荧光分子进行双光子激发。重要的是,双光子激发(红外)光的穿透深度明显大于相应的单光子波长的穿透深度,同时显着减少了光漂白。Ti:Sa激光器的时间结构可以直接用于荧光寿命成像的实现。荧光寿命对荧光分子的局部环境敏感。此行为可用于例如量化离子的浓度,例如pH和Ca2 +或pO(2)和pCO(2)。在此处介绍的设置中,荧光寿命成像是通过时间门控单光子计数完成的。显微镜的性能和光学特性通过对荧光测试珠子进行的多次测试测量来研究,点扩散函数是通过对使用迭代恢复程序的230-nm磁珠与理论预期值相得益彰,在包含两种不同寿命(2.15 ns,2.56 ns和3.34 ns)的荧光缓冲液中包含两种不同类型测试珠的测试靶上进行的终身成像实验显示出优异的定量与从时间相关的单光子计数测量获得的参考值一致。而且,结果中的标准偏差可以完全归因于光子统计。 cr啶橙染色的生物膜的测量作为双光子激发与荧光寿命对比相结合的潜力的一个例子。在整个样品厚度为100μm的范围内记录荧光寿命和强度图像。荧光强度成像严重受限于荧光信号随样品深度的快速下降。另一方面,荧光寿命成像不受荧光强度降低的影响。 [参考:46]

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