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Quantitation of Cerebral Oxygen Tension using Phasor Analysis and Phosphorescent Lifetime Imaging Microscopy (PLIM)

机译:使用量相分析和磷光寿命成像显微镜(PLIM)定量脑氧张力

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Fluorescence lifetime imaging microscopy (FLIM) and phosphorescence lifetime imaging microscopy (PLIM) often require complex and computationally intensive processes for analysis. For time-domain based measurements, computation of fluorescence and phosphorescence lifetimes conventionally involves nonlinear curve fitting techniques to model the time-resolved profiles as mono- or multi-exponential decays. The phasor, or "polar plot", analysis method has recently gained attention as a simple method to characterize variations in fluorescence lifetime. The technique involves calculations of the intensity-normalized Fourier transform of the fluorescence profiles. The phasor can be visualized by plotting the real and imaginary components on a 2-dimensional plot. We have adapted the phasor analysis method for absolute quantitation of phosphorescence lifetimes of oxygen-sensitive phosphors. We utilize the phasor-derived lifetime values to quantify oxygen partial pressure in cortical micro vessels of awake mice. Here, we describe the modifications to adapt the technique for longer-duration phosphorescence decays. Our results demonstrate that oxygen measurements obtained from phasor analysis are in strong agreement with traditional curve fitting calculations. Using simulated phosphorescence decays, we also compare the effectiveness of the phasor method to nonlinear curve fitting techniques. To our knowledge, these findings constitute the first application of the phasor analysis method for characterizing phosphorescence measurements on the microsecond time scale. The method shows . promise for monitoring cerebral metabolism and pathological changes in preclinical rodent models.
机译:荧光寿命成像显微镜(FLIM)和磷光寿命成像显微镜(PLIM)通常需要复杂和计算密集的分析过程。对于基于时域的测量,荧光和磷光寿命的计算通常涉及非线性曲线拟合技术,以将时间分辨曲线模拟为单或多指数衰减。相移或“极性图”,分析方法最近获得了一种简单的方法,以表征荧光寿命的变化。该技术涉及计算荧光谱的强度标准化傅里叶变换。通过在二维图上绘制实际和虚部来可视化相量。我们改变了相分分析方法,以实现氧敏感磷光体的磷光寿命绝对定量。我们利用量量衍生的寿命值来量化唤醒小鼠皮质微容器中的氧分压。这里,我们描述了对适应更长持续时间磷光衰减的技术的修改。我们的结果表明,从相分析中获得的氧气测量与传统曲线拟合计算的相一致。使用模拟磷光衰减,我们还比较了相量方法对非线性曲线拟合技术的有效性。据我们所知,这些发现构成了分析方法的第一次应用,用于在微秒刻度上表征磷光测量。方法显示。临床啮齿动物模型中监测脑代谢和病理变化的承诺。

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