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同步光激活成像荧光染料突破活细胞显微镜中光漂白和光毒性的限制。

Synchronous Photoactivation-Imaging Fluorophores Break Limitations of Photobleaching and Phototoxicity in Live-cell Microscopy.

机构信息

Institute of Physical Science and Information Technology, School of Chemistry and Chemical Engineering, Information Materials and Intelligent Sensing Laboratory of Anhui Province, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Anhui University, Hefei 230601, Anhui, China.

Institute of Solid-State Physics, Chinese Academy of Sciences, Hefei 230031, Anhui, China.

出版信息

Anal Chem. 2023 Nov 7;95(44):16243-16250. doi: 10.1021/acs.analchem.3c03064. Epub 2023 Oct 27.

Abstract

Fluorescence microscopy is one of the most important tools in the studies of cell biology and many other fields, but two fundamental issues, photobleaching and phototoxicity, associated with the fluorophores have still limited its use for long-term and strong-illumination imaging of live cells. Here, we report a new concept of fluorophore engineering chemistry, synchronous photoactivation-imaging (SPI) fluorophores, activating and exciting fluorophores by a single light source to thus avoid the repeated switches between activation and excitation lights. The chemically reconstructed, nonemissive fluorophores can be photolyzed to allow continuous replenishing of "bright-state" probes detectable by standard fluorescent microscopes in the imaging process so as to bypass the photobleaching barrier to greatly extend the imaging period. Equally importantly, SPI fluorophores substantially reduce photocytotoxicity due to the scavenging of reactive oxygen species (ROS) by a photoactivable group and the slow release of "bright-state" probes to minimize ROS generation. Using SPI fluorophores, the time-lapsed confocal (>16 h) and super-resolution (>3 h) imaging of subcellular organelles under intensive illumination (50 MW/cm) were achieved in live cells.

摘要

荧光显微镜是细胞生物学和许多其他领域研究中最重要的工具之一,但与荧光团相关的两个基本问题,光漂白和光毒性,仍然限制了其在活细胞的长期强照明成像中的应用。在这里,我们报告了一种新的荧光团工程化学概念,即同步光激活-成像(SPI)荧光团,它可以通过单个光源激活和激发荧光团,从而避免在激活和激发光之间反复切换。化学重构的、非发光的荧光团可以被光解,从而在成像过程中允许持续补充“亮态”探针,这些探针可以被标准荧光显微镜检测到,从而绕过光漂白障碍,大大延长成像周期。同样重要的是,SPI 荧光团由于光活化基团对活性氧(ROS)的清除以及“亮态”探针的缓慢释放,从而减少了光细胞毒性,ROS 的产生最小化。使用 SPI 荧光团,在活细胞中实现了亚细胞器在强照明(50MW/cm)下的时移共焦(>16h)和超分辨率(>3h)成像。

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