Sandison D R, Piston D W, Williams R M, Webb W W
Appl Opt. 1995 Jul 1;34(19):3576-88. doi: 10.1364/AO.34.003576.
Development of a laser scanning microscope for simultaneous three-dimensional imaging in both a full-field laser scanning mode (FLSM) and a confocal laser scanning mode (CLSM) permits the direct comparison of axial resolution and out-of-focus background rejection as a function of sample thickness for both FLSM and CLSM with varying detector aperture (pinhole) radii. The sample-dependent detector aperture radii that optimize the signal-to-noise ratio (S/N) in the CLSM are experimentally determined. The results verify earlier calculations [Appl. Opt. 33, 603 (1994)]. Using these results, we discuss the practical and theoretical limits on the S/N in the CLSM and compare them with those of a full-field epifluorescence microscope (FEM) that is enhanced by image deconvolution. The specimen volume over which the FLSM exhibits imaging properties that are equivalent to a FEM is calculated in the appendices.
一种用于同时在全场激光扫描模式(FLSM)和共聚焦激光扫描模式(CLSM)下进行三维成像的激光扫描显微镜的开发,使得能够直接比较轴向分辨率和离焦背景抑制,这是作为FLSM和CLSM在不同探测器孔径(针孔)半径下样品厚度的函数。通过实验确定了在CLSM中优化信噪比(S/N)的与样品相关的探测器孔径半径。结果验证了早期的计算[《应用光学》33, 603 (1994)]。利用这些结果,我们讨论了CLSM中S/N的实际和理论极限,并将它们与通过图像反卷积增强的全场落射荧光显微镜(FEM)的极限进行比较。附录中计算了FLSM表现出与FEM等效成像特性的样本体积。