Nanoscopy Group, Central Unit for Ion beams and Radionuclides (RUBION), Ruhr-University Bochum, Universitätsstraβe 150, D-44780 Bochum, Germany.
Nanoscale. 2017 Sep 28;9(37):14172-14183. doi: 10.1039/c7nr04306f.
Nanoparticles have the potential to become versatile tools in the medical and life sciences. One potential application is delivering drugs or other compounds to the cell cytoplasm, which requires the nanoparticles to bind to or cross the cell membrane. However, there are only a few tools available which allow studying the interaction of nanoparticles and the cell membrane of living cells in a physiological environment. Currently, the tool which least biases living cells is Scanning Ion Conductance Microscopy (SICM). Specialized SICMs allow imaging at high resolution, however, they are cost intensive, particularly when providing a large field-of-view. In contrast, less cost intensive SICMs which provide a large field-of-view do not allow imaging at high resolutions. We have developed a SICM setup consisting of a compact three-axis piezo system and an additional fast shear-force piezo actor. This combination allows imaging fields-of-view of up to 80 μm × 80 μm, recording sections of living cells with a temporal resolution in the range of minutes as well as imaging with a spatial resolution of below 70 nm. Using our SICM we found that the cell membrane of HeLa cells treated with carboxylated latex nanoparticles was significantly more convoluted compared to control cells. The SICM setup we introduce here combines high resolution imaging with a large field-of-view at low costs. Our setup only requires a mounting adapter to extend existing inverted light microscopes, thus it could be a valuable and cost effective tool for researchers in all fields of the medical and life sciences performing investigations at the nanometer scale.
纳米颗粒有可能成为医学和生命科学领域的多功能工具。一种潜在的应用是将药物或其他化合物递送到细胞质中,这需要纳米颗粒结合或穿过细胞膜。然而,目前只有少数工具可用于研究纳米颗粒与活细胞细胞膜在生理环境中的相互作用。目前,对活细胞干扰最小的工具是扫描离子电导显微镜(SICM)。专用的 SICM 允许高分辨率成像,但成本较高,特别是当提供大视野时。相比之下,成本较低的 SICM 提供大视野,但不允许高分辨率成像。我们开发了一种 SICM 装置,由一个紧凑的三轴压电系统和一个额外的快速剪切力压电元件组成。这种组合允许成像视野达到 80μm×80μm,以分钟级的时间分辨率记录活细胞的部分区域,以及以低于 70nm 的空间分辨率进行成像。使用我们的 SICM,我们发现用羧基化乳胶纳米颗粒处理的 HeLa 细胞的细胞膜比对照细胞明显更加卷曲。我们在这里介绍的 SICM 装置结合了大视野和低成本的高分辨率成像。我们的装置只需要一个安装适配器来扩展现有的倒置显微镜,因此它可能是医学和生命科学各个领域的研究人员在纳米尺度进行研究的有价值且具有成本效益的工具。