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用于高分辨率和高灵敏度化学成像的冷冻固定生物标本的拉曼显微镜技术。

Raman microscopy of cryofixed biological specimens for high-resolution and high-sensitivity chemical imaging.

作者信息

Mizushima Kenta, Kumamoto Yasuaki, Tamura Shoko, Yamanaka Masahito, Mochizuki Kentaro, Li Menglu, Egoshi Syusuke, Dodo Kosuke, Harada Yoshinori, Smith Nicholas I, Sodeoka Mikiko, Tanaka Hideo, Fujita Katsumasa

机构信息

Department of Applied Physics, Osaka University, Suita, Osaka 565-0871, Japan.

Advanced Photonics and Biosensing Open Innovation Laboratory, AIST-Osaka University, AIST, Suita, Osaka 565-0871, Japan.

出版信息

Sci Adv. 2024 Dec 13;10(50):eadn0110. doi: 10.1126/sciadv.adn0110. Epub 2024 Dec 11.

Abstract

Raman microscopy is an emerging molecular imaging technology, yet its signal-to-noise ratio (SNR) in measurements of biological specimens is severely limited because of the small cross section of Raman scattering. Here, we present Raman imaging techniques of cryofixed specimens to overcome SNR limitations by enabling long exposure of specimens under highly stabilized low-temperature conditions. The observation of frozen specimens in a cryostat at a constant low temperature immediately after rapid freezing enabled the improvement of SNR and enhanced the spatial and spectral resolution. We also confirmed that the cryofixation can preserve physicochemical states of specimens by observing alkyne-labeled coenzyme Q in cytosol and hemeproteins in acute ischemic myocardium, which cannot be done by fixation using chemical reagents. Last, we applied the technique for multiplex Raman imaging of label-free endogenous molecules and alkyne-tagged molecules in cryofixed HeLa cells, demonstrating its capability of high-content imaging of complex biological phenomena while maintaining physiological conditions.

摘要

拉曼显微镜是一种新兴的分子成像技术,然而由于拉曼散射的截面较小,其在生物样本测量中的信噪比(SNR)受到严重限制。在此,我们展示了冷冻固定样本的拉曼成像技术,通过在高度稳定的低温条件下对样本进行长时间曝光来克服信噪比限制。在快速冷冻后立即在低温恒温器中于恒定低温下观察冷冻样本,能够提高信噪比并增强空间和光谱分辨率。我们还通过观察胞质溶胶中炔烃标记的辅酶Q和急性缺血心肌中的血红素蛋白证实,冷冻固定可以保留样本的物理化学状态,而这是使用化学试剂固定无法做到的。最后,我们将该技术应用于冷冻固定的HeLa细胞中无标记内源性分子和炔烃标记分子的多重拉曼成像,证明了其在维持生理条件的同时对复杂生物现象进行高内涵成像的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ce0/11633761/bd9aca945471/sciadv.adn0110-f1.jpg

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