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受激拉曼散射显微镜在化学和生命科学中的应用——发展、创新与展望。

Stimulated Raman scattering microscopy in chemistry and life science - Development, innovation, perspectives.

机构信息

Faculty of Chemistry, Jagiellonian University, 2 Gronostajowa Str., 30-387 Krakow, Poland.

Jagiellonian Centre for Experimental Therapeutics (JCET), Jagiellonian University, 14 Bobrzynskiego Str., 30-348 Krakow, Poland.

出版信息

Biotechnol Adv. 2022 Nov;60:108003. doi: 10.1016/j.biotechadv.2022.108003. Epub 2022 Jun 9.

Abstract

In this review, we present a summary of the basics of the Stimulated Raman Scattering (SRS) phenomenon, methods of detecting the signal, and collection of the SRS images. We demonstrate the advantages of SRS imaging, and recent developments, but also the limitations, especially in image capture speeds and spatial resolution. We also compare the use of SRS microscopy in biological system studies with other techniques such as fluorescence microscopy, second-harmonic generation (SHG)-based microscopy, coherent anti-Stokes Raman scattering (CARS), and spontaneous Raman, and we show the compatibility of SRS-based systems with other discussed methods. The review is also focused on indicating innovations in SRS microscopy, on the background of which we present the layout and performance of our homemade setup built from commercially available elements enabling for imaging of the molecular structure of single cells over the spectral range of 800-3600 cm. Methods of image analysis are discussed, including machine learning methods for obtaining images of the distribution of selected molecules and for the detection of pathological lesions in tissues or malignant cells in the context of clinical diagnosis of a wide range of diseases with the use of SRS microscopy. Finally, perspectives for the development of SRS microscopy are proposed.

摘要

在这篇综述中,我们总结了受激拉曼散射(SRS)现象的基础知识、信号检测方法和 SRS 图像的采集方法。我们展示了 SRS 成像的优势和最新进展,但也指出了其局限性,特别是在图像采集速度和空间分辨率方面。我们还比较了 SRS 显微镜在生物系统研究中的应用与荧光显微镜、基于二次谐波产生(SHG)的显微镜、相干反斯托克斯拉曼散射(CARS)和自发拉曼等其他技术的应用,并展示了 SRS 系统与其他讨论方法的兼容性。本综述还重点介绍了 SRS 显微镜的创新,在此基础上,我们展示了我们自制的基于 SRS 的显微镜的布局和性能,该显微镜由市售元件构建而成,可在 800-3600 cm 的光谱范围内对单细胞的分子结构进行成像。我们还讨论了图像分析方法,包括用于获取选定分子分布图像的机器学习方法,以及用于在临床诊断各种疾病时检测组织中的病理损伤或恶性细胞的方法。最后,我们提出了 SRS 显微镜的发展前景。

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