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Development of Tools for Nonlinear Optical Imaging of Multiple Cells and Tissue Structures.

机译:多细胞和组织结构的非线性光学成像工具的开发。

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摘要

Studies of both normal and disease state physiology require the visualization of multiple cells and cell types simultaneously. Multiphoton microscopy has enabled researchers to visualize fluorescently-tagged cells with subcellular resolution in live animal models of disease, overcoming the optical-scattering effects of tissue. However, most multiphoton microscopes only provide two or four color channels, limiting the number of fluorescent labels, and thus cell types, that can be simultaneously imaged.;This thesis describes the development and demonstration of a hyperspectral multiphoton microscope that enables simultaneous visualization of multiple cell types. Three laser excitation sources are multiplexed with multiple detection channels, each providing improved spectral detection through the use of angle-tuned bandpass filters. The detection system was designed to provide efficient detection of highly-scattered light from tissue while minimizing the impact of scattered light on spectral resolution. We demonstrated the ability of the instrument to image multiple, spectrally-similar fluorescent labels, and developed methodology to post-process data to generate images with each fluorescent label clearly separated and indicated with a unique color in a composite image.;We demonstrated hyperspectral imaging and spectral separation of ten overlapping colors of fluorescent beads, up to seven fluorescent labels in live cells, and five labels in live mouse cortex. In addition, we demonstrated multicolor labeling techniques enabling identification of morphologically-similar cells based on color "hue", and characterized color variability using the spectral capabilities of the microscope.;In other work in this thesis, we explored third harmonic generation for label-free visualization of myelinated nerves over large viewing areas for eventual surgery room applications. Nerves are notoriously difficult to see in the surgical field, and nerve injuries are a common cause of post-surgery morbidity. Third harmonic generation has been established as an excellent tool for myelin visualization, but the requirements for a high zoom microscope objective have limited the area of imaging to areas too small for surgery room use. We demonstrated third harmonic generation imaging in both mouse sciatic nerve and rat cavernous nerve on the prostate with low-zoom, low numerical-aperture objectives, and found that myelin produces less signal than fat deposits, potentially limiting the utility for nerve visualization in areas with high fat content.
机译:正常和疾病状态生理学的研究都需要同时可视化多种细胞和细胞类型。多光子显微镜使研究人员能够在疾病的活体动物模型中以亚细胞分辨率可视化带有荧光标记的细胞,从而克服了组织的光散射效应。但是,大多数多光子显微镜只能提供两个或四个颜色通道,从而限制了可以同时成像的荧光标记的数量,从而限制了可以同时成像的细胞类型。本文描述了一种高光谱多光子显微镜的开发和演示,该显微镜能够同时可视化多个单元格类型。三个激光激发源与多个检测通道复用,每个通道都通过使用角度调谐带通滤波器来改善光谱检测。该检测系统旨在提供对组织中高度散射光的有效检测,同时将散射光对光谱分辨率的影响降至最低。我们展示了该仪器对多个光谱相似的荧光标记物成像的能力,并开发了对数据进行后处理的方法,以生成具有清晰分离的每种荧光标记物并在合成图像中以独特颜色表示的图像。和光谱分离的十种重叠颜色的荧光珠,活细胞中多达七个荧光标记和活小鼠皮质中的五个标记。此外,我们展示了多色标记技术,可基于颜色“色相”识别形态相似的细胞,并使用显微镜的光谱功能对颜色变异性进行了表征。;在本文的其他工作中,我们探索了用于标记的三次谐波产生-免费可视化大视野区域的有髓神经,最终用于手术室。众所周知,神经在外科手术领域很难见到,神经损伤是手术后发病的常见原因。已经确定三次谐波产生是髓磷脂可视化的极佳工具,但是对高倍率显微镜物镜的要求已将成像区域限制为对于手术室使用而言太小的区域。我们展示了具有低变焦,低数值孔径物镜的前列腺上的小鼠坐骨神经和大鼠海绵状神经的三次谐波成像,并发现髓磷脂产生的信号少于脂肪沉积,这可能限制了在具有以下特征的区域进行神经可视化的效用高脂肪含量。

著录项

  • 作者

    Bares, Amanda Josephine.;

  • 作者单位

    Cornell University.;

  • 授予单位 Cornell University.;
  • 学科 Biomedical engineering.;Neurosciences.;Biophysics.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 245 p.
  • 总页数 245
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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