Department of Organic Chemistry, University of Geneva, 1205, Geneva, Switzerland.
Angew Chem Int Ed Engl. 2023 May 8;62(20):e202217868. doi: 10.1002/anie.202217868. Epub 2023 Feb 23.
Flipper probes have been introduced as small molecule fluorophores to image physical forces, that is, membrane tension in living systems. Their emergence over one decade is described, from evolution in design and synthesis to spectroscopic properties. Responsiveness to physical compression in equilibrium at the ground state is identified as the ideal origin of mechanosensitivity to image membrane tension in living cells. A rich collection of flippers is described to deliver and release in any subcellular membrane of interest in a leaflet-specific manner. Chalcogen-bonding cascade switching and dynamic covalent flippers are developed for super-resolution imaging and dual-sensing of membrane compression and hydration. Availability and broad use in the community validate flipper probes as a fine example of the power of translational supramolecular chemistry, moving from fundamental principles to success on the market.
flipper 探针已被引入小分子荧光团,以成像物理力,即在活系统中的膜张力。描述了它们在过去十年中的发展,从设计和合成的演变到光谱特性。在平衡状态下对物理压缩的响应被确定为机械敏感性的理想起源,以在活细胞中成像膜张力。描述了丰富的 flipper 集合,以特定于小叶的方式递送到和释放任何感兴趣的亚细胞膜中的任何亚细胞膜。开发了基于硫属键级联开关和动态共价 flipper 的超分辨率成像和对膜压缩和水合的双重传感。 flipper 探针在社区中的可用性和广泛使用验证了它是翻译超分子化学力量的一个很好的例子,从基本原则到市场成功。