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单个生物分子的成像与纳米操纵

Imaging and nano-manipulation of single biomolecules.

作者信息

Funatsu T, Harada Y, Higuchi H, Tokunaga M, Saito K, Ishii Y, Vale R D, Yanagida T

机构信息

Yanagida Biomotron Project, ERATO, JST, Osaka, Japan.

出版信息

Biophys Chem. 1997 Oct;68(1-3):63-72. doi: 10.1016/s0301-4622(97)00008-2.

Abstract

We have developed a new technique for imaging single fluorescent dye molecules by refining epifluorescence and total internal reflection fluorescence microscopies. In contrast to previously reported single fluorescent molecule imaging methods, in which specimens were immobilized on an air-dried surface, our method enables video-rate imaging of single molecules in aqueous solution. This approach enabled us to directly image the processive movement of individual fluorescently labeled kinesin molecules along a microtubule. This method was also used to visualize individual ATP turnover reactions of single myosin molecules. The method can be combined with molecular manipulation using an optical trap. A single kinesin molecule attached to a polystyrene bead was brought into contact with a microtubule adsorbed onto the glass surface. The lifetime of bound Cy3-nucleotide in the absence or presence of the microtubule was 10 s or 0.08 s, respectively, showing that ATPase activity of the kinesin is strongly activated by microtubules. As the present system is equipped with a nanometer sensor, elemental steps of a single kinesin molecule can also be measured. By simultaneously measuring the individual ATP turnovers and elementary mechanical events of a single kinesin molecule, we will be able to obtain a clear answer to the fundamental problem of how the mechanical events are coupled to the ATPase reaction.

摘要

我们通过改进落射荧光显微镜和全内反射荧光显微镜技术,开发出一种用于对单个荧光染料分子进行成像的新技术。与之前报道的单荧光分子成像方法不同,在那些方法中样本被固定在空气干燥的表面上,而我们的方法能够对水溶液中的单分子进行视频速率成像。这种方法使我们能够直接观察单个荧光标记的驱动蛋白分子沿着微管的连续运动。该方法还被用于可视化单个肌球蛋白分子的ATP周转反应。此方法可与使用光镊的分子操纵相结合。将附着在聚苯乙烯珠上的单个驱动蛋白分子与吸附在玻璃表面的微管接触。在不存在或存在微管的情况下,结合的Cy3 - 核苷酸的寿命分别为10秒或0.08秒,这表明微管强烈激活了驱动蛋白的ATP酶活性。由于本系统配备了纳米传感器,单个驱动蛋白分子的基本步移也能够被测量。通过同时测量单个驱动蛋白分子的ATP周转和基本机械事件,我们将能够为机械事件如何与ATP酶反应偶联这一基本问题获得明确答案。

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