SM Technical Development Department, SM Business Unit, JEOL Ltd., 1-2 Musashino 3-chome, Akishima, Tokyo, 196-8558, Japan.
Microsc Res Tech. 2014 Feb;77(2):153-60. doi: 10.1002/jemt.22322. Epub 2013 Dec 16.
Optical microscopy is generally the first choice to observe microbes and cells. However, its resolution is not always sufficient to reveal specific target structures, such as flagella and pili, which are only nanometers wide. ASEM is an attractive higher resolution alternative, as the sample is observed in aqueous solution at atmospheric pressure. Sample pretreatment for ASEM only comprises simple tasks including fixation, gold labeling, and reagent exchange, taking less than 1 h in total. The lengthy sample pretreatments often required for more classical electron microscopies, such as embedding and dehydration, are unnecessary, and native morphology is preserved. In this study, positively charged nanogold particles were used to label the surfaces of bacteria and cultured animal cells, exploiting their net negative surface charge. After gold enhancement to increase the size of the nanogold particles, ASEM imaging of the bacteria in aqueous solution revealed pili and delicate spiral flagella. This natural shape contrasts starkly with images of dried flagella recorded by standard SEM. Positively charged nanogold labeled the plasma membrane of cultured COS7 cells, and after enhancement allowed filopodia as thin as 100 nm in diameter to be clearly visualized. Based on these studies, ASEM combined with positively charged nanogold labeling promises to become an important tool for the study of cell morphology and dynamics in the near future.
光学显微镜通常是观察微生物和细胞的首选方法。然而,其分辨率并不总是足以揭示特定的目标结构,例如只有纳米宽的鞭毛和菌毛。原子力扫描电子显微镜(AS-SEM)是一种有吸引力的更高分辨率的替代方法,因为样品在大气压下的水溶液中进行观察。AS-SEM 的样品预处理仅包括固定、金标记和试剂交换等简单任务,总共不到 1 小时。与更经典的电子显微镜(如包埋和脱水)相比,不需要进行耗时冗长的样品预处理,从而可以保留样品的天然形态。在这项研究中,带正电荷的纳米金颗粒被用于标记细菌和培养的动物细胞的表面,利用它们的净负表面电荷。在金增强以增大纳米金颗粒的尺寸之后,在水溶液中对细菌进行 ASEM 成像揭示了菌毛和精细的螺旋鞭毛。这种自然形状与标准 SEM 记录的干燥鞭毛图像形成鲜明对比。带正电荷的纳米金标记了培养的 COS7 细胞的质膜,增强后允许直径细达 100nm 的丝状伪足清晰可见。基于这些研究,AS-SEM 结合带正电荷的纳米金标记有望成为未来研究细胞形态和动力学的重要工具。