State Key Laboratory of Fine Chemicals, Dalian University of Technology, Dalian 116024, China.
State Key Laboratory of Fine Chemicals, Dalian University of Technology, Dalian 116024, China.
Biosens Bioelectron. 2017 May 15;91:313-320. doi: 10.1016/j.bios.2016.11.018. Epub 2016 Nov 10.
Viscosity, as one of the major factors of intracellular microenvironment, influences the function of proteins. To detect local micro-viscosity of a protein, it is a precondition to apply a viscosity sensor for specifically target to proteins. However, all the reported small-molecule probes are just suitable for sensing/imaging of macro-viscosity in biological fluids of entire cells or organelles. To this end, we developed a hybrid sensor BDP-V BG by connecting a viscosity-sensitive boron-dipyrromethene (BODIPY) molecular rotor (BDP-V) to O-benzylguanine (BG) for specific detection of local micro-viscosity of SNAP-tag fused proteins. We measured and calculated the reaction efficiency between the sensor and SNAP-tag protein in vitro to confirm the high labeling specificity. We also found that the labeling reaction results in a 53-fold fluorescence enhancement for the rotor, which qualifies it as a wash-free sensor with ignorable background fluorescence. The high sensitivity of protein labeled sensor (BDP-V-SNAP) to the changes of local viscosity was evaluated by detecting the enhancement of fluorescence lifetimes. Further, with the sensor BDP-V BG, we achieved high specific labeling of cells expressing two SNAP-tag fused proteins (nuclear histone H2B and mitochondrial COX8A). Two-photon excited fluorescence lifetime imaging revealed that, the micro-viscosities nearby the SNAP-tag fused two proteins are distinct. The different changes of local micro-viscosity of SNAP-tag fused histone protein in apoptosis induced by three nucleus-targeted drugs were also characterized for the first time.
黏度是细胞内微环境的主要因素之一,影响蛋白质的功能。为了检测蛋白质的局部微黏度,需要应用专门针对蛋白质的黏度传感器。然而,所有已报道的小分子探针仅适用于整个细胞或细胞器的生物流体中的宏观黏度的传感/成像。为此,我们通过将黏度敏感的硼二吡咯甲烷(BODIPY)分子转子(BDP-V)连接到 O-苄基鸟嘌呤(BG)上,开发了一种混合传感器 BDP-V-BG,用于特异性检测 SNAP 标签融合蛋白的局部微黏度。我们测量并计算了传感器与 SNAP 标签蛋白在体外的反应效率,以确认高标记特异性。我们还发现,标记反应使转子的荧光增强了 53 倍,这使其成为一种具有可忽略背景荧光的无冲洗传感器。通过检测荧光寿命的增强,评估了标记蛋白传感器(BDP-V-SNAP)对局部黏度变化的高灵敏度。此外,我们使用传感器 BDP-V-BG,实现了对表达两种 SNAP 标签融合蛋白(核组蛋白 H2B 和线粒体 COX8A)的细胞的高特异性标记。双光子激发荧光寿命成像显示,SNAP 标签融合两种蛋白附近的微黏度存在差异。还首次表征了三种靶向细胞核的药物诱导的凋亡过程中 SNAP 标签融合组蛋白局部微黏度的不同变化。