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生物荧光显微镜中三维色移的精确无标记校正

Accurate and fiducial-marker-free correction for three-dimensional chromatic shift in biological fluorescence microscopy.

机构信息

Advanced ICT Research Institute Kobe, National Institute of Information and Communications Technology, 588-2 Iwaoka, Iwaoka-cho, Nishi-ku, Kobe, 651-2492, Japan.

Graduate School of Frontier Biosciences, Osaka University, 1-3 Yamadaoka, Suita, 565-0871, Japan.

出版信息

Sci Rep. 2018 May 15;8(1):7583. doi: 10.1038/s41598-018-25922-7.

Abstract

Correction of chromatic shift is necessary for precise registration of multicolor fluorescence images of biological specimens. New emerging technologies in fluorescence microscopy with increasing spatial resolution and penetration depth have prompted the need for more accurate methods to correct chromatic aberration. However, the amount of chromatic shift of the region of interest in biological samples often deviates from the theoretical prediction because of unknown dispersion in the biological samples. To measure and correct chromatic shift in biological samples, we developed a quadrisection phase correlation approach to computationally calculate translation, rotation, and magnification from reference images. Furthermore, to account for local chromatic shifts, images are split into smaller elements, for which the phase correlation between channels is measured individually and corrected accordingly. We implemented this method in an easy-to-use open-source software package, called Chromagnon, that is able to correct shifts with a 3D accuracy of approximately 15 nm. Applying this software, we quantified the level of uncertainty in chromatic shift correction, depending on the imaging modality used, and for different existing calibration methods, along with the proposed one. Finally, we provide guidelines to choose the optimal chromatic shift registration method for any given situation.

摘要

为了精确注册生物样本的多色荧光图像,需要对色偏进行校正。随着荧光显微镜技术在空间分辨率和穿透深度方面的不断发展,新兴技术对更精确的色偏校正方法提出了需求。然而,由于生物样本中未知的色散,感兴趣区域的色偏量往往偏离理论预测。为了测量和校正生物样本中的色偏,我们开发了一种四分割相位相关方法,通过参考图像计算平移、旋转和放大。此外,为了考虑局部色偏,将图像分成较小的元素,分别测量通道之间的相位相关并进行相应校正。我们在一个易于使用的开源软件包 Chromagnon 中实现了这种方法,该软件能够以大约 15nm 的 3D 精度校正位移。通过应用该软件,我们根据所使用的成像方式以及不同现有的校准方法(包括提出的方法),量化了色偏校正的不确定性水平。最后,我们提供了指导方针,以选择任何给定情况下的最佳色偏注册方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8086/5954143/ef390a6888e1/41598_2018_25922_Fig1_HTML.jpg

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