Department of Chemistry, State University of New York at Buffalo, Buffalo, New York 14260-3000, USA.
J Am Chem Soc. 2011 Aug 10;133(31):11912-5. doi: 10.1021/ja204758c. Epub 2011 Jul 15.
Photoactivatable fluorescent probes are invaluable tools for the study of biological processes with high resolution in space and time. Numerous strategies have been developed in generating photoactivatable fluorescent probes, most of which rely on the photo-"uncaging" and photoisomerization reactions. To broaden photoactivation modalities, here we report a new strategy in which the fluorophore is generated in situ through an intramolecular tetrazole-alkene cycloaddition reaction ("photoclick chemistry"). By conjugating a specific microtubule-binding taxoid core to the tetrazole/alkene prefluorophores, robust photoactivatable fluorescent probes were obtained with fast photoactivation (∼1 min) and high fluorescence turn-on ratio (up to 112-fold) in acetonitrile/PBS (1:1). Highly efficient photoactivation of the taxoid-tetrazoles inside the mammalian cells was also observed under a confocal fluorescence microscope when the treated cells were exposed to either a metal halide lamp light passing through a 300/395 filter or a 405 nm laser beam. Furthermore, a spatially controlled fluorescent labeling of microtubules in live CHO cells was demonstrated with a long-wavelength photoactivatable taxoid-tetrazole probe. Because of its modular design and tunability of the photoactivation efficiency and photophysical properties, this intramolecular photoclick reaction based approach should provide a versatile platform for designing photoactivatable fluorescent probes for various biological processes.
光活化荧光探针是研究生物过程的非常有价值的工具,可以在空间和时间上实现高分辨率。已经开发出了许多生成光活化荧光探针的策略,其中大多数都依赖于光“解笼”和光异构化反应。为了拓宽光活化方式,我们在这里报告了一种新策略,其中荧光团通过分子内四唑-烯烃环加成反应(“光点击化学”)原位生成。通过将特定的微管结合 taxoid 核心与四唑/烯烃预荧光团缀合,在乙腈/PBS(1:1)中获得了快速光活化(约 1 分钟)和高荧光开启比(高达 112 倍)的强的光活化荧光探针。在用 300/395 滤光片通过金属卤化物灯光或 405nm 激光束照射处理过的细胞时,在共聚焦荧光显微镜下也观察到 taxoid-四唑在哺乳动物细胞内的高效光活化。此外,用长波长光活化 taxoid-四唑探针实现了活 CHO 细胞中微管的空间控制荧光标记。由于其模块化设计和光活化效率和光物理性质的可调性,这种基于分子内光点击反应的方法应该为设计用于各种生物过程的光活化荧光探针提供了一个通用平台。