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首页> 外文期刊>Journal of Luminescence >Decay time shortening of fluorescence from donor-acceptor pair proteins using ultrafast time-resolved fluorescence resonance energy transfer spectroscopy
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Decay time shortening of fluorescence from donor-acceptor pair proteins using ultrafast time-resolved fluorescence resonance energy transfer spectroscopy

机译:使用超快时间分辨荧光共振能量转移光谱法缩短供体-受体对蛋白的荧光衰减时间

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摘要

We improved an ultrafast time-resolved fluorescence resonance energy transfer (FRET) spectroscopy system and measured directly the decrease in the fluorescence decay time of the FRET signal, without any entanglement of components in the picosecond time scale from the donor-acceptor protein pairs (such as cameleon protein for calcium ion indicator, and ligand-activated GRIN-Go proteins pair). The drastic decrease in lifetime of the donor protein fluorescence under the FRET condition (e.g. a 47.8% decrease for a GRIN-Go protein pair) proves the deformation dynamics between donor and acceptor fluorescent proteins in an activated state of a mixed donor-acceptor protein pair. This study is the first clear evidence of physical contact of the GRIN-Go proteins pair using time-resolved FRET system. G protein-coupled receptors (GPCRs) are the most important protein family for the recognition of many chemical substances at the cell surface. They are the targets of many drugs. Simultaneously, we were able to observe the time-resolved spectra of luminous proteins at the initial stage under the FRET condition, within 10 ns from excitation. This new FRET system allows us to trace the dynamics of the interaction between proteins at the ligand-induced activated state, molecular structure change and combination or dissociation. It will be a key technology for the development of protein chip technology.
机译:我们改进了超快时间分辨荧光共振能量转移(FRET)光谱系统,并直接测量了FRET信号的荧光衰减时间的减少,而皮秒级时域中的任何供体-受体蛋白对(例如作为钙离子指示剂的喀麦隆蛋白,以及配体激活的GRIN-Go蛋白对)。在FRET条件下,供体蛋白荧光寿命的急剧减少(例如,GRIN-Go蛋白对减少47.8%)证明了在供体-受体蛋白对混合的激活状态下供体和受体荧光蛋白之间的变形动力学。这项研究是使用时间分辨FRET系统对GRIN-Go蛋白对进行物理接触的第一个明确证据。 G蛋白偶联受体(GPCR)是识别细胞表面许多化学物质的最重要的蛋白家族。它们是许多药物的目标。同时,我们能够在激发后10 ns内的FRET条件下观察发光蛋白在初始阶段的时间分辨光谱。这种新的FRET系统使我们能够追踪配体诱导的活化状态,分子结构变化以及组合或解离之间蛋白质之间相互作用的动力学。这将是蛋白质芯片技术发展的关键技术。

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