Qian H, Elson E L
Appl Opt. 1991 Apr 1;30(10):1185-95. doi: 10.1364/AO.30.001185.
Quantitative fluorescence correlation spectroscopy (FCS) and fluorescence photobleaching recovery (FPR) measurements in bulk solution require a well characterized confocal laser microscope optical system. The introduction of a characteristic function, the collection efficiency function (CEF), provides a quantitative theoretical analysis of this system, which yields an interpretation of the FCS and FPR measurements in three dimensions. We demonstrate that when the proper field diaphragm is introduced, the 3-D FCS measurements can be mimicked by a 2-D theory with only minor error. The FPR characteristic recovery time for diffusion is expected to be slightly longer than the corresponding time measured by FCS in the same conditions. This is because the profile of the laser beam used for photobleaching is not affected by the field diaphragm. The CEF is also important for quantitative analysis of standard scanning confocal microscopy when it is carried out using a finite detection pinhole.
在体溶液中进行定量荧光相关光谱(FCS)和荧光漂白恢复(FPR)测量需要一个特性良好的共聚焦激光显微镜光学系统。引入一个特征函数,即收集效率函数(CEF),可为该系统提供定量理论分析,从而对FCS和FPR测量进行三维解释。我们证明,当引入合适的视场光阑时,二维理论可以以较小误差模拟三维FCS测量。在相同条件下,预计扩散的FPR特征恢复时间比FCS测量的相应时间略长。这是因为用于光漂白的激光束轮廓不受视场光阑影响。当使用有限检测针孔进行标准扫描共聚焦显微镜的定量分析时,CEF也很重要。