Yamada Yutaro, Konno Hiroki, Shimabukuro Katsuya
Department of Chemical and Biological Engineering, National College of Technology, Ube College, Ube, Yamaguchi 755-8555, Japan.
Bio-AFM Frontier Research Center, Kanazawa University, Kanazawa, Ishikawa 920-1192, Japan.
Biophys Physicobiol. 2017 Jul 28;14:111-117. doi: 10.2142/biophysico.14.0_111. eCollection 2017.
In this study, we present a new technique called correlative atomic force and transmission electron microscopy (correlative AFM/TEM) in which a targeted region of a sample can be observed under AFM and TEM. The ultimate goal of developing this new technique is to provide a technical platform to expand the fields of AFM application to complex biological systems such as cell extracts. Recent advances in the time resolution of AFM have enabled detailed observation of the dynamic nature of biomolecules. However, specifying molecular species, by AFM alone, remains a challenge. Here, we demonstrate correlative AFM/TEM, using actin filaments as a test sample, and further show that immuno-electron microscopy (immuno-EM), to specify molecules, can be integrated into this technique. Therefore, it is now possible to specify molecules, captured under AFM, by subsequent observation using immuno-EM. In conclusion, correlative AFM/TEM can be a versatile method to investigate complex biological systems at the molecular level.
在本研究中,我们提出了一种名为相关原子力和透射电子显微镜(相关AFM/TEM)的新技术,该技术可在AFM和TEM下观察样品的目标区域。开发这项新技术的最终目标是提供一个技术平台,以将AFM的应用领域扩展到细胞提取物等复杂生物系统。AFM时间分辨率的最新进展使得能够详细观察生物分子的动态特性。然而,仅通过AFM来确定分子种类仍然是一个挑战。在这里,我们以肌动蛋白丝为测试样品演示了相关AFM/TEM,并进一步表明,用于确定分子的免疫电子显微镜(免疫EM)可以集成到该技术中。因此,现在可以通过随后使用免疫EM观察来确定在AFM下捕获的分子。总之,相关AFM/TEM可以成为在分子水平上研究复杂生物系统的通用方法。