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A demonstration of the effectiveness of a single aberration correction per optical slice in beam scanned optically sectioning microscopes

机译:在光束扫描光学切片显微镜中对每个光学片进行单像差校正的有效性的证明

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In this paper we report the use of adaptive optics to correct for sample induced aberrations in optical microscopy, crucially comparing individual pixel-by-pixel correction against a single correction for an entire optical section. Sample induced optical aberrations in slices of rat brain tissue were corrected with a deformable membrane mirror. Using axial resolution measurements, we demonstrate that a single aberration correction per optical slice achieves around 80% of the maximum possible improvement compared to individual pixel-by-pixel correction in both confocal and multiphoton microscopy. A single aberration correction per depth, compared to pixel-by-pixel aberration correction, significantly decreases scan times and therefore reduces photobleaching and phototoxic effects enabling more rapid microscopy with active aberration correction. The results confirm that the use of a "look-up" table, based upon sample type and depth, may be the most practical way of implementing adaptive optic aberration correction in beam scanning optical sectioning microscopy.
机译:在本文中,我们报告了使用自适应光学器件校正光学显微镜中样品引起的像差的方法,从而将单个逐个像素的校正与整个光学部分的单个校正进行了关键性的比较。用可变形膜镜校正大鼠脑组织切片中样品引起的光学像差。使用轴向分辨率测量,我们证明,与共焦和多光子显微镜中的逐个像素校正相比,每个光学切片的单个像差校正可达到最大可能改进的80%左右。与逐像素像差校正相比,每个深度的单个像差校正可显着减少扫描时间,因此减少了光致漂白和光毒效应,从而可以通过主动像差校正实现更快速的显微镜检查。结果证实,基于样本类型和深度的“查找”表的使用可能是在光束扫描光学切片显微镜中实现自适应光学像差校正的最实用方法。

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