荧光
生物传感器
罗丹明
细胞通透性
活体细胞成像
化学
生物物理学
纳米技术
小分子
两性离子
高对比度
细胞
荧光显微镜
分子
材料科学
生物化学
生物
物理
量子力学
光学
有机化学
作者
Dongjuan Si,Quan‐Lin Li,Yifan Bao,Jingye Zhang,Lu Wang
标识
DOI:10.1002/anie.202307641
摘要
The advancement of fluorescence microscopy techniques has opened up new opportunities for visualizing proteins and unraveling their functions in living biological systems. Small-molecule organic dyes, which possess exceptional photophysical properties, small size, and high photostability, serve as powerful fluorescent reporters in protein imaging. However, achieving high-contrast live-cell labeling of target proteins with conventional organic dyes remains a considerable challenge in bioimaging and biosensing due to their inadequate cell permeability and high background signal. Over the past decade, a novel generation of fluorogenic and cell-permeable dyes has been developed, which have substantially improved live-cell protein labeling by fine-tuning the reversible equilibrium between a cell-permeable, nonfluorescent spirocyclic state (unbound) and a fluorescent zwitterion (protein-bound) of rhodamines. In this review, we present the mechanism and design strategies of these fluorogenic and cell-permeable rhodamines, as well as their applications in bioimaging and biosensing.
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