Grover Ginni, Mohrman Wyatt, Piestun Rafael
Opt Express. 2015 Sep 7;23(18):23887-98. doi: 10.1364/OE.23.023887.
Super-resolution localization microscopy involves acquiring thousands of image frames of sparse collections of single molecules in the sample. The long acquisition time makes the imaging setup prone to drift, affecting accuracy and precision. Localization accuracy is generally improved by a posteriori drift correction. However, localization precision lost due to sample drifting out of focus cannot be recovered as the signal is originally detected at a lower peak signal. Here, we demonstrate a method of stabilizing a super-resolution localization microscope in three dimensions for extended periods of time with nanometer precision. Hence, no localization correction after the experiment is required to obtain super-resolved reconstructions. The method incorporates a closed-loop with a feedback signal generated from camera images and actuation on a 3D nanopositioning stage holding the sample.
超分辨率定位显微镜涉及获取样品中单个分子稀疏集合的数千个图像帧。较长的采集时间使成像装置容易发生漂移,影响准确性和精度。通常通过后验漂移校正来提高定位精度。然而,由于样品失焦而导致的定位精度损失无法恢复,因为信号最初是在较低的峰值信号下检测到的。在这里,我们展示了一种在三维空间中长时间以纳米精度稳定超分辨率定位显微镜的方法。因此,实验后无需进行定位校正即可获得超分辨重建。该方法包含一个闭环,该闭环具有从相机图像生成的反馈信号,并在固定样品的三维纳米定位台上进行驱动。