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首页> 外文期刊>Biophysical Journal >Simple dark-field microscopy with nanometer spatial precision and microsecond temporal resolution.
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Simple dark-field microscopy with nanometer spatial precision and microsecond temporal resolution.

机译:简单的暗场显微镜,具有纳米级的空间精度和微秒级的时间分辨率。

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摘要

Molecular motors such as kinesin, myosin, and F(1)-ATPase are responsible for many important cellular processes. These motor proteins exhibit nanometer-scale, stepwise movements on micro- to millisecond timescales. So far, methods developed to measure these small and fast movements with high spatial and temporal resolution require relatively complicated experimental systems. Here, we describe a simple dark-field imaging system that employs objective-type evanescent illumination to selectively illuminate a thin layer on the coverslip and thus yield images with high signaloise ratios. Only by substituting the dichroic mirror in conventional objective-type total internal reflection fluorescence microscope with a perforated mirror, were nanometer spatial precision and microsecond temporal resolution simultaneously achieved. This system was applied to the study of the rotary mechanism of F(1)-ATPase. The fluctuation of a gold nanoparticle attached to the gamma-subunit during catalytic dwell and the stepping motion during torque generation were successfully visualized with 9.1-mus temporal resolution. Because of the simple optics, this system will be applicable to various biophysical studies requiring high spatial and temporal resolution in vitro and also in vivo.
机译:分子动力,如驱动蛋白,肌球蛋白和F(1)-ATPase负责许多重要的细胞过程。这些运动蛋白在微秒到毫秒的时间尺度上显示出纳米级的逐步运动。迄今为止,开发出以高时空分辨率测量这些小而快速的运动的方法需要相对复杂的实验系统。在这里,我们描述了一种简单的暗场成像系统,该系统采用物镜式渐逝照明来有选择地照亮盖玻片上的薄层,从而产生具有高信噪比的图像。仅通过在传统的物镜型全内反射荧光显微镜中用分光镜代替二向色镜,才能同时实现纳米级的空间精度和微秒级的时间分辨率。该系统已应用于研究F(1)-ATPase的旋转机制。在9.1毫秒的时间分辨率下成功观察到了催化停留期间附着在γ亚基上的金纳米粒子的波动和扭矩产生期间的步进运动。由于光学简单,该系统将适用于需要在体外​​以及体内都具有高时空分辨率的各种生物物理研究。

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