Frese Natalie, Schmerer Patrick, Wortmann Martin, Schürmann Matthias, König Matthias, Westphal Michael, Weber Friedemann, Sudhoff Holger, Gölzhäuser Armin
Physics of Supramolecular Systems and Surfaces, Faculty of Physics, Bielefeld University, Bielefeld, Germany.
Institute of Virology, Faculty of Veterinary Medicine, Justus-Liebig-University Giessen, Germany.
Beilstein J Nanotechnol. 2021 Feb 2;12:172-179. doi: 10.3762/bjnano.12.13. eCollection 2021.
Helium ion microscopy (HIM) offers the opportunity to obtain direct views of biological samples such as cellular structures, virus particles, and microbial interactions. Imaging with the HIM combines sub-nanometer resolution, large depth of field, and high surface sensitivity. Due to its charge compensation capability, the HIM can image insulating biological samples without additional conductive coatings. Here, we present an exploratory HIM study of SARS-CoV-2 infected Vero E6 cells, in which several areas of interaction between cells and virus particles, as well as among virus particles, were imaged. The HIM pictures show the three-dimensional appearance of SARS-CoV-2 and the surface of Vero E6 cells at a multiplicity of infection of approximately 1 with great morphological detail. The absence of a conductive coating allows for a distinction between virus particles bound to the cell membrane and virus particles lying on top of the membrane. After prolonged imaging, it was found that ion-induced deposition of hydrocarbons from the vacuum renders the sample sufficiently conductive to allow for imaging even without charge compensation. The presented images demonstrate the potential of the HIM in bioimaging, especially for the imaging of interactions between viruses and their host organisms.
氦离子显微镜(HIM)为直接观察生物样本提供了机会,如细胞结构、病毒颗粒和微生物相互作用。HIM成像结合了亚纳米分辨率、大景深和高表面灵敏度。由于其电荷补偿能力,HIM可以对绝缘生物样本进行成像,而无需额外的导电涂层。在此,我们展示了一项对感染了严重急性呼吸综合征冠状病毒2(SARS-CoV-2)的非洲绿猴肾细胞(Vero E6)的探索性HIM研究,其中对细胞与病毒颗粒之间以及病毒颗粒之间的几个相互作用区域进行了成像。HIM图像以大约1的感染复数显示了SARS-CoV-2和Vero E6细胞表面的三维外观,具有很高的形态细节。没有导电涂层使得能够区分结合在细胞膜上的病毒颗粒和位于膜顶部的病毒颗粒。经过长时间成像后,发现真空中离子诱导的碳氢化合物沉积使样本具有足够的导电性,即使没有电荷补偿也能进行成像。所呈现的图像展示了HIM在生物成像中的潜力,特别是在病毒与其宿主生物体相互作用的成像方面。