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荧光显微镜成像更快更清晰:光化学与选择性照明的作用

Fluorescence microscopy gets faster and clearer: roles of photochemistry and selective illumination.

作者信息

Wolenski Joseph S, Julich Doerthe

机构信息

Research Scientist and Lecturer, Director of Confocal Microscope Core Imaging Facility, Department of Molecular, Cellular and Developmental Biology, Yale University, New Haven, Connecticut.

Associate Research Scientist, Department of Molecular, Cellular and Developmental Biology, Yale University, New Haven, Connecticut.

出版信息

Yale J Biol Med. 2014 Mar 5;87(1):21-32. eCollection 2014 Mar.

Abstract

Significant advances in fluorescence microscopy tend be a balance between two competing qualities wherein improvements in resolution and low light detection are typically accompanied by losses in acquisition rate and signal-to-noise, respectively. These trade-offs are becoming less of a barrier to biomedical research as recent advances in optoelectronic microscopy and developments in fluorophore chemistry have enabled scientists to see beyond the diffraction barrier, image deeper into live specimens, and acquire images at unprecedented speed. Selective plane illumination microscopy has provided significant gains in the spatial and temporal acquisition of fluorescence specimens several mm in thickness. With commercial systems now available, this method promises to expand on recent advances in 2-photon deep-tissue imaging with improved speed and reduced photobleaching compared to laser scanning confocal microscopy. Superresolution microscopes are also available in several modalities and can be coupled with selective plane illumination techniques. The combination of methods to increase resolution, acquisition speed, and depth of collection are now being married to common microscope systems, enabling scientists to make significant advances in live cell and in situ imaging in real time. We show that light sheet microscopy provides significant advantages for imaging live zebrafish embryos compared to laser scanning confocal microscopy.

摘要

荧光显微镜的重大进展往往是在两种相互矛盾的特性之间取得平衡,其中分辨率的提高和低光检测能力的提升通常分别伴随着采集速率的下降和信噪比的降低。随着光电显微镜的最新进展和荧光团化学的发展,使科学家能够突破衍射极限,对活体标本进行更深层成像,并以前所未有的速度获取图像,这些权衡对于生物医学研究而言已不再是障碍。选择性平面照明显微镜在厚度达数毫米的荧光标本的空间和时间采集方面取得了显著进展。随着商业系统的问世,与激光扫描共聚焦显微镜相比,该方法有望在双光子深层组织成像的最新进展基础上进一步提高速度并减少光漂白。超分辨率显微镜也有多种模式,并且可以与选择性平面照明技术相结合。提高分辨率、采集速度和采集深度的方法组合现在正与普通显微镜系统相结合,使科学家能够在实时活细胞和原位成像方面取得重大进展。我们表明,与激光扫描共聚焦显微镜相比,光片显微镜在对活斑马鱼胚胎成像方面具有显著优势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c22/3941456/fd01df4ba623/yjbm_87_1_21_g01.jpg

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