Institute of Transformative Bio-Molecules, Nagoya University, 464-8601 Nagoya, Japan.
Institute of Transformative Bio-Molecules, Nagoya University, 464-8601 Nagoya, Japan;
Proc Natl Acad Sci U S A. 2019 Aug 6;116(32):15817-15822. doi: 10.1073/pnas.1905924116. Epub 2019 Jul 23.
Stimulation emission depletion (STED) microscopy enables ultrastructural imaging of organelle dynamics with a high spatiotemporal resolution in living cells. For the visualization of the mitochondrial membrane dynamics in STED microscopy, rationally designed mitochondrial fluorescent markers with enhanced photostability are required. Herein, we report the development of a superphotostable fluorescent labeling reagent with long fluorescence lifetime, whose design is based on a structurally reinforced naphthophosphole fluorophore that is conjugated with an electron-donating diphenylamino group. The combination of long-lived fluorescence and superphotostable features of the fluorophore allowed us to selectively capture the ultrastructures of the mitochondrial cristae with a resolution of ∼60 nm when depleted at 660 nm. This chemical tool provides morphological information of the cristae, which has so far only been observed in fixed cells using electron microscopy. Moreover, this method gives information about the dynamic ultrastructures such as the intermembrane fusion in different mitochondria as well as the intercristae mergence in a single mitochondrion during the apoptosis-like mitochondrial swelling process.
受激发射损耗(STED)显微镜能够以高时空分辨率在活细胞中对细胞器动态进行超微结构成像。为了在 STED 显微镜中可视化线粒体膜动力学,需要使用具有增强的光稳定性的合理设计的线粒体荧光标记物。在此,我们报告了一种具有长荧光寿命的超稳定荧光标记试剂的开发,其设计基于结构增强的萘磷杂环戊烯荧光团,该荧光团与供电子的二苯氨基基团结合。荧光团的长寿命荧光和超稳定特性的结合使我们能够在以 660nm 进行耗尽时以约 60nm 的分辨率选择性地捕获线粒体嵴的超微结构。这种化学工具提供了关于嵴的形态信息,迄今为止,这些信息只能通过电子显微镜在固定细胞中观察到。此外,该方法还提供了关于动态超微结构的信息,例如在类似细胞凋亡的线粒体肿胀过程中不同线粒体之间的膜融合以及单个线粒体中嵴间融合。