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泽尼克位相板的调谐用于可视化复杂生物样本中的详细超微结构。

Tuning of the Zernike phase-plate for visualization of detailed ultrastructure in complex biological specimens.

机构信息

Division of Nano-Structure Physiology, Okazaki Institute for Integrative Bioscience, Myodaiji, Okazaki, Japan.

出版信息

J Struct Biol. 2009 Dec;168(3):476-84. doi: 10.1016/j.jsb.2009.08.011. Epub 2009 Sep 2.

Abstract

In order to acquire phase-contrast images with adequate contrast, conventional TEM requires large amount of defocus. Increasing the defocus improves the low-frequency components but attenuates the high-frequency ones. On the other hand, Zernike phase-contrast TEM (ZPC-TEM) can recover low-frequency components without losing the high-frequency ones under in-focus conditions. ZPC-TEM however, has another problem, especially in imaging of complex biological specimens such as cells and tissues; strong halos appear around specimen structures, and these halos hinder the interpretation of images. Due to this problem, the application of ZPC-TEM has been restricted to imaging of smaller particles. In order to improve the halo appearance, we fabricated a new quarter-wave thin film phase-plate with a smaller central hole and tested it on vitreous biological specimens. ZPC-TEM with the new plate could successfully visualize, in in-focus images, the intracellular fine features of cultured cells and brain tissues. This result indicates that reduction of the central hole diameter makes ZPC-TEM applicable on size scales ranging from protein particles to tissue sections. The application of ZPC-TEM to vitreous biological specimens will be a powerful method to advance the new field of imaging science for ultrastructures in close-to-physiological state.

摘要

为了获得具有足够对比度的相衬图像,传统的 TEM 需要大量的离焦。增加离焦可以提高低频分量,但会衰减高频分量。另一方面,Zernike 相衬 TEM(ZPC-TEM)可以在聚焦条件下恢复低频分量而不会丢失高频分量。然而,ZPC-TEM 还有另一个问题,特别是在成像复杂的生物样本(如细胞和组织)时;样本结构周围会出现强烈的晕环,这些晕环阻碍了图像的解释。由于这个问题,ZPC-TEM 的应用仅限于较小颗粒的成像。为了改善晕环的出现,我们制作了一个带有较小中心孔的新的四分之一波薄膜相板,并在玻璃状生物样本上进行了测试。使用新相板的 ZPC-TEM 可以成功地在聚焦图像中可视化培养细胞和脑组织的细胞内精细特征。这一结果表明,减小中心孔直径使得 ZPC-TEM 适用于从蛋白质颗粒到组织切片的尺寸范围。将 ZPC-TEM 应用于玻璃状生物样本将是推进接近生理状态的超微结构成像科学新领域的有力方法。

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