Department of Applied Chemistry, Graduate School of Engineering, The University of Tokyo , Tokyo 113-8656, Japan.
Anal Chem. 2015 Feb 17;87(4):2079-86. doi: 10.1021/ac502408c. Epub 2015 Feb 3.
We developed two types of high-speed angle-resolved imaging methods for single gold nanorods (SAuNRs) using objective-type vertical illumination dark-field microscopy and a high-speed CMOS camera to achieve microsecond temporal and one-degree angle resolution. These methods are based on: (i) an intensity analysis of focused images of SAuNR split into two orthogonally polarized components and (ii) the analysis of defocused SAuNR images. We determined the angle precision (statistical error) and accuracy (systematic error) of the resultant SAuNR (80 nm × 40 nm) images projected onto a substrate surface (azimuthal angle) in both methods. Although both methods showed a similar precision of ∼1° for the azimuthal angle at a 10 μs temporal resolution, the defocused image analysis showed a superior angle accuracy of ∼5°. In addition, the polar angle was also determined from the defocused SAuNR images with a precision of ∼1°, by fitting with simulated images. By taking advantage of the defocused image method's full revolution measurement range in the azimuthal angle, the rotation of the rotary molecular motor, F1-ATPase, was measured with 3.3 μs temporal resolution. The time constants of the pauses waiting for the elementary steps of the ATP hydrolysis reaction and the torque generated in the mechanical steps have been successfully estimated. The high-speed angle-resolved SAuNR imaging methods will be applicable to the monitoring of the fast conformational changes of many biological molecular machines.
我们开发了两种基于物方垂直照明暗场显微镜和高速 CMOS 相机的高速角分辨成像方法,用于单根金纳米棒(SAuNR),以实现微秒级时间和一度角分辨率。这两种方法基于:(i)对分为两个正交偏振分量的聚焦 SAuNR 图像的强度分析,以及(ii)对离焦 SAuNR 图像的分析。我们确定了两种方法在投影到基底表面上的 SAuNR(80nm×40nm)图像的角精度(统计误差)和角准确度(系统误差)(方位角)。虽然两种方法在 10μs 时间分辨率下的方位角精度相似(均约为 1°),但离焦图像分析的角度准确度更高(约为 5°)。此外,还可以通过对离焦的 SAuNR 图像进行拟合模拟图像,以约 1°的精度确定其极角。利用离焦图像方法在方位角上的全旋转测量范围,我们以 3.3μs 的时间分辨率测量了旋转分子马达 F1-ATP 酶的旋转。成功估计了等待 ATP 水解反应的基本步骤和机械步骤中产生的扭矩的停顿的时间常数。高速角分辨 SAuNR 成像方法将适用于监测许多生物分子机器的快速构象变化。