Graduate School of Arts & Sciences, The University of Tokyo, 3-8-1 Komaba, Meguro-ku, Tokyo, 153-8902, Japan.
Department of Applied Biological Science, Faculty of Science and Technology, Tokyo University of Science, 2641 Yamazaki, Noda City, Chiba, 278-8510, Japan.
Biochem Biophys Res Commun. 2018 Oct 12;504(4):709-714. doi: 10.1016/j.bbrc.2018.08.178. Epub 2018 Sep 10.
Single-molecule fluorescence polarization technique has been utilized to detect structural changes in biomolecules and intermolecular interactions. Here we developed a single-molecule fluorescence polarization measurement system, named circular orientation fluorescence emitter imaging (COFEI), in which a ring pattern of an acquired fluorescent image (COFEI image) represents an orientation of a polarization and a polarization factor. Rotation and pattern change of the COFEI image allow us to find changes in the polarization by eye and further values of the parameters of a polarization are determined by simple image analysis with high accuracy. We validated its potential applications of COFEI by three assays: 1) Detection of stepwise rotation of F-ATPase via single quantum nanorod attached to the rotary shaft γ; 2) Visualization of binding of fluorescent ATP analog to the catalytic subunit in F-ATPase; and 3) Association and dissociation of one head of dimeric kinesin-1 on the microtubule during its processive movement through single bifunctional fluorescent probes attached to the head. These results indicate that the COFEI provides us the advantages of the user-friendly measurement system and persuasive data presentations.
单分子荧光偏振技术已被用于检测生物分子的结构变化和分子间相互作用。在这里,我们开发了一种单分子荧光偏振测量系统,命名为圆形取向荧光发射器成像(COFEI),其中获得的荧光图像(COFEI 图像)的环形图案表示偏振和偏振因子的方向。COFEI 图像的旋转和图案变化可以让我们通过肉眼发现偏振的变化,并且进一步通过简单的图像分析以高精度确定偏振参数的值。我们通过三个检测实验验证了 COFEI 的潜在应用:1)通过附着在旋转轴γ上的单个量子纳米棒检测 F-ATPase 的逐步旋转;2)可视化荧光 ATP 类似物与 F-ATPase 催化亚基的结合;3)在双功能荧光探针附着于头部时,单体驱动蛋白-1 的头部在微管上的聚合运动过程中的结合和解离。这些结果表明,COFEI 为我们提供了用户友好的测量系统和有说服力的数据呈现的优势。