共聚焦显微镜和三维重建厚,透明,重要组织。

Scanning microscopy. Supplement Pub Date : 1992-01-01
B R Masters
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引用次数: 0

摘要

三维可视化的400微米厚,透明,原位角膜描述,以证明使用共聚焦光显微镜对活细胞和厚组织在其正常,重要的条件下的无创成像。标本制备和生理稳定性,以及光衰减校正对数据采集至关重要。解释了在图像采集期间提供样品机械稳定性的技术。用激光扫描共聚焦光学显微镜(LSCM)对刚取出的兔眼进行光学序列切片,并将其置于生理林格氏溶液中。本研究证明了共聚焦光学显微镜能够获得一系列高对比度图像,深度分辨率为1微米,跨越活的透明组织的全厚度。讨论了非各向同性采样和有限8位动态范围的问题。采用体可视化投影技术,通过计算机图形学获得三维重建结果。角膜在原位眼的三维可视化是一个例子,图像理解厚的,有活力的生物细胞和组织。最后,对图像保真度的判据进行了说明。共聚焦光显微镜技术以其增强的横向和轴向分辨率、改进的图像对比度和体积可视化为显微镜学家提供了观察活体和体外重要细胞和组织的新技术。
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Confocal microscopy and three-dimensional reconstruction of thick, transparent, vital tissue.

The three-dimensional visualization of the 400 micron thick, transparent, in situ cornea is described to demonstrate the use of confocal light microscopy for noninvasive imaging of living cells and thick tissues in their normal, vital conditions. Specimen preparation and physiological stability, as well as light attenuation corrections are critical to data acquisition. The technique to provide mechanical stability of the specimen during the duration of the image acquisition is explained. A laser scanning confocal light microscope (LSCM) was used to obtain optical serial sections from rabbit eyes that were freshly removed and placed in a physiological Ringer's solution. This study demonstrates the capability of the confocal light microscope to obtain a series of high contrast images, with a depth resolution of one micron, across the full thickness of living, transparent tissue. The problems of nonisotropic sampling and the limited eight-bit dynamic range are discussed. The three-dimensional reconstructions were obtained by computer graphics using the volume visualization projection technique. The three-dimensional visualization of the cornea in the in situ eye is presented as an example of image understanding of thick, viable biological cells and tissues. Finally, the criterion of image fidelity is explained. The techniques of confocal light microscopy with its enhanced lateral and axial resolution, improved image contrast, and volume visualization provides microscopists with new techniques for the observation of vital cells and tissues, both in vivo and in vitro.

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