Lim Heejin, Lee Sun Young, Moon Dae Won, Kim Jae Young
Department of New Biology, Daegu Gyeongbuk Institute of Science and Technology (DGIST) 333 Techno Jungang Daero, Hyeonpung-Eup, Dalseong-Gun Daegu 42988 Republic of Korea
Division of Technology Business, National Institute for Nanomaterials Technology (NINT), Pohang University of Science and Technology (POSTECH) 77 Cheongam-Ro, Nam-Gu Pohang Gyeongbuk 37673 Republic of Korea.
RSC Adv. 2019 Sep 9;9(49):28432-28438. doi: 10.1039/c9ra05205d.
We report on sample preparation methods based on plasma treatment for an improvement of multiple molecular ion images of cellular membranes in the ToF-SIMS method. The air-plasma treatment of fixed cellular samples efficiently removed the organic residues of any solutions used during sample preparation and improved the quality of ToF-SIMS images due to the resulting clean surface. We also studied cell preparation methods that combine single-layer graphene covering with air-plasma treatment to achieve a synergistic effect that eliminates background spectra by organic impurities while minimizing morphological cell deformation in a vacuum environmental analysis. When the cellular sample on the glass substrate is completely covered with the single-layer graphene, the cells trapped between the graphene and the substrate can effectively reduce morphological deformation by slow-dehydration. After slow-dehydration of cells is completed inside the graphene-cover, the covered graphene layer can be peeled off by air-plasma treatment, and the unwanted organic residues on the surface of cells and substrate can also be removed by plasma cleaning, thereby much improving ion imaging of cells with the ToF-SIMS method. It is confirmed that the cell samples in which the graphene-cover was removed by air-plasma treatment maintained their morphology well in comparison with the rapid air-dried cells in atomic force microscopy (AFM) and ToF-SIMS images.
我们报道了基于等离子体处理的样品制备方法,以改善飞行时间二次离子质谱(ToF-SIMS)方法中细胞膜的多个分子离子图像。对固定细胞样品进行空气等离子体处理可有效去除样品制备过程中使用的任何溶液的有机残留物,并由于表面清洁而提高了ToF-SIMS图像的质量。我们还研究了将单层石墨烯覆盖与空气等离子体处理相结合的细胞制备方法,以实现协同效应,即在真空环境分析中消除有机杂质的背景光谱,同时使细胞形态变形最小化。当玻璃基板上的细胞样品完全被单层石墨烯覆盖时,被困在石墨烯和基板之间的细胞可以通过缓慢脱水有效地减少形态变形。在石墨烯覆盖层内细胞缓慢脱水完成后,覆盖的石墨烯层可通过空气等离子体处理剥离,细胞和基板表面不需要的有机残留物也可通过等离子体清洗去除,从而大大提高了ToF-SIMS方法对细胞的离子成像。结果证实,与原子力显微镜(AFM)和ToF-SIMS图像中快速风干的细胞相比,通过空气等离子体处理去除石墨烯覆盖层的细胞样品保持了良好的形态。