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Characterizing deep optical-sectioning microscopy performance with scattering phantoms and numerical simulations

机译:用散射幽灵和数值模拟来表征深层光学切片显微镜性能

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Microscopes are being developed for use in living animals, and even humans, to image microanatomical changes and molecular markers that are associated with disease. Phantoms that can be used to evaluate the performance characteristics of these systems have nth been well described or standardized. We have been developing the tools to evaluate a dual-axis confocal (DAC) microscope design to optimize the features required for in vivo diagnosic imaging,and these may have features that are useful for evaluation of other such devices. We have performed diffraction-theory modeling, Monte-Carlo scattering simulations, reflectance experiments in tissue phantoms, and tissue-imaging validations. First, we determined how scattering from tissue, deteriorates the diffraction-limited transverse and vertical responses in reflectance DAC imaging. Specifically, the vertical and transverse responses of the DAC to a plane reflector and a knife edge, respectively, were measured at various' depths in an Intralipid scattering phantom.Comparisons were made with both diffraction-theory and Monte-Carlo scattering simulations. Secondly, as a practical demonstration of deep-tissue fluorescence microscopy, three-dimensional fluorescence images were obtained in thick human biopsy samples. These results demonstrate that the efficient rejection of scattered light in a DAC microscope enables deep optical sectioning in tissue. Finally, we will discuss our needs and plans for similar tissue-phantom experiments to validate the performance of multimodal optical- and ultrasound-imaging platforms under development.As devices are developed for the imaging of epithelial surfaces and substructures, standardized phantoms that represent the multilayered anatomical features of these tissues wilt need to be developed.
机译:显微镜正在开发用于活性动物,甚至人类,与疾病相关的图像微丙基变化和分子标记。可用于评估这些系统的性能特征的幽灵已经得到了很好的描述或标准化。我们一直在开发工具来评估双轴共焦(DAC)显微镜设计,以优化体内诊断成像所需的特征,这些功能可具有可用于评估其他此类设备的特征。我们已经进行了衍射理论建模,Monte-Carlo散射模拟,组织幽灵的反射率实验,以及组织成像验证。首先,我们确定了如何从组织散射,劣化反射DAC成像中的衍射限制横向和垂直反应。具体地,DAC的垂直和横向响应分别分别在intralipid散射阵列的各种“深度中测量捕线的各种”深度。通过衍射 - 理论和蒙特卡罗散射模拟进行。其次,作为深组织荧光显微镜的实际证明,在厚的人体活检样品中获得了三维荧光图像。这些结果表明,DAC显微镜中的散射光的有效排斥能够在组织中深光学切片。最后,我们将讨论我们的需求和计划,用于验证发展的多模式光学和超声波成像平台的性能的实验。为上皮表面和子结构的成像开发了设备,标准化的幻影,代表多层的模拟需要开发这些组织枯萎的解剖学特征。

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