三维生物成像中的光学切片方法。

Optical sectioning methods in three-dimensional bioimaging.

作者信息

Zhang Jing, Qiao Wei, Jin Rui, Li Hongjin, Gong Hui, Chen Shih-Chi, Luo Qingming, Yuan Jing

机构信息

Britton Chance Center for Biomedical Photonics, Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan, China.

MoE Key Laboratory for Biomedical Photonics, Innovation Institute, Huazhong University of Science and Technology, Wuhan, China.

出版信息

Light Sci Appl. 2025 Jan 1;14(1):11. doi: 10.1038/s41377-024-01677-x.

Abstract

In recent advancements in life sciences, optical microscopy has played a crucial role in acquiring high-quality three-dimensional structural and functional information. However, the quality of 3D images is often compromised due to the intense scattering effect in biological tissues, compounded by several issues such as limited spatiotemporal resolution, low signal-to-noise ratio, inadequate depth of penetration, and high phototoxicity. Although various optical sectioning techniques have been developed to address these challenges, each method adheres to distinct imaging principles for specific applications. As a result, the effective selection of suitable optical sectioning techniques across diverse imaging scenarios has become crucial yet challenging. This paper comprehensively overviews existing optical sectioning techniques and selection guidance under different imaging scenarios. Specifically, we categorize the microscope design based on the spatial relationship between the illumination and detection axis, i.e., on-axis and off-axis. This classification provides a unique perspective to compare the implementation and performances of various optical sectioning approaches. Lastly, we integrate selected optical sectioning methods on a custom-built off-axis imaging system and present a unique perspective for the future development of optical sectioning techniques.

摘要

在生命科学的最新进展中,光学显微镜在获取高质量的三维结构和功能信息方面发挥了关键作用。然而,由于生物组织中的强烈散射效应,3D图像的质量常常受到影响,再加上时空分辨率有限、信噪比低、穿透深度不足和光毒性高等几个问题,情况更加严重。尽管已经开发了各种光学切片技术来应对这些挑战,但每种方法都遵循适用于特定应用的独特成像原理。因此,在不同成像场景中有效选择合适的光学切片技术变得至关重要但也具有挑战性。本文全面概述了现有的光学切片技术以及不同成像场景下的选择指南。具体而言,我们根据照明轴和检测轴之间的空间关系,即同轴和离轴,对显微镜设计进行分类。这种分类为比较各种光学切片方法的实现和性能提供了独特的视角。最后,我们将选定的光学切片方法集成到一个定制的离轴成像系统上,并为光学切片技术的未来发展提供了独特的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84dc/11688461/5b9ccbaadfcf/41377_2024_1677_Fig1_HTML.jpg

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