College of Optical Sciences, University of Arizona, Tucson, Arizona, 85721.
School of Medicine, Stanford University, Stanford, California, 94305.
Lasers Surg Med. 2021 Aug;53(6):872-879. doi: 10.1002/lsm.23361. Epub 2020 Dec 1.
Light-sheet microscopy (LSM) is a novel imaging technology that has been used for imaging fluorescence contrast in basic life science research. In this paper, we have developed a scattering-based LSM (sLSM) for rapidly imaging the cellular morphology of fresh tissues without any exogenous fluorescent dyes.
STUDY DESIGN/MATERIALS AND METHODS: In the sLSM device, a thin light sheet with the central wavelength of 834 nm was incident on the tissue obliquely, 45° relative to the tissue surface. The detection optics was configured to map the light sheet-illuminated area onto a two-dimensional imaging sensor. The illumination numerical aperture (NA) was set as 0.0625, and the detection NA 0.3.
The sLSM device achieved a light sheet thickness of less than 6.7 µm over 284 µm along the illumination optical axis. The detection optics of the sLSM device had a resolution of 1.8 µm. The sLSM images of the swine kidney ex vivo visualized tubules with similar sizes and shapes to those observed in histopathologic images. The swine duodenum sLSM images revealed cell nuclei and villi architecture in superficial lesions and glands in deeper regions.
The preliminary results suggest that sLSM may have the potential for rapidly examining the freshly-excised tissue ex vivo or intact tissue in vivo at microscopic resolution. Further optimization and performance evaluation of the sLSM technology will be needed in the future. Lasers Surg. Med. © 2020 Wiley Periodicals LLC.
光片显微镜(LSM)是一种新型成像技术,已被用于基础生命科学研究中的荧光对比成像。在本文中,我们开发了一种基于散射的 LSM(sLSM),用于在无需任何外源性荧光染料的情况下快速成像新鲜组织的细胞形态。
研究设计/材料与方法:在 sLSM 设备中,一束中心波长为 834nm 的薄光片以相对于组织表面 45°的角度斜入射到组织上。检测光学系统被配置为将光片照明区域映射到二维成像传感器上。照明数值孔径(NA)设置为 0.0625,检测 NA 为 0.3。
sLSM 设备在沿照明光轴 284μm 的范围内实现了厚度小于 6.7μm 的光片。sLSM 设备的检测光学系统具有 1.8μm 的分辨率。猪肾离体的 sLSM 图像显示出与组织病理学图像中观察到的相似大小和形状的小管。猪十二指肠的 sLSM 图像显示了浅层病变中的细胞核和绒毛结构以及深层区域中的腺体。
初步结果表明,sLSM 可能具有以微观分辨率快速检查离体新鲜组织或完整组织的潜力。未来需要对 sLSM 技术进行进一步优化和性能评估。激光外科学杂志。© 2020 威利父子公司。