Department of Micro-Nano Systems Engineering, Nagoya University, Japan.
Nanotechnology. 2013 Apr 12;24(14):145703. doi: 10.1088/0957-4484/24/14/145703. Epub 2013 Mar 18.
This paper presents a method for single cell stiffness measurement based on a nano-needle and nanomanipulation. The nano-needle with a buffering beam was fabricated from an atomic force microscope cantilever by the focused ion beam etching technique. Wild type yeast cells (W303) were prepared and placed on the sample stage inside an environmental scanning electron microscope (ESEM) chamber. The nanomanipulator actuated the nano-needle to press against a single yeast cell. As a result, the deformation of the cell and nano-needle was observed by the ESEM system in real-time. Finally, the stiffness of the single cell was determined based on this deformation information. To reveal the relationship between the cell stiffness and the environmental humidity conditions, the cell stiffness was measured at three different humidity conditions, i.e. 40, 70 and 100%, respectively. The results show that the stiffness of a single cell is reduced with increasing humidity.
本文提出了一种基于纳米针和纳米操纵的单细胞刚性测量方法。纳米针通过聚焦离子束刻蚀技术从原子力显微镜悬臂梁制造而成。制备野生型酵母细胞(W303)并将其置于环境扫描电子显微镜(ESEM)腔室内的样品台上。纳米操纵器驱动纳米针压向单个酵母细胞。结果,ESEM 系统实时观察细胞和纳米针的变形。最后,基于此变形信息确定单细胞的刚性。为了揭示细胞刚性与环境湿度条件之间的关系,在三种不同的湿度条件下(分别为 40%、70%和 100%)测量了细胞刚性。结果表明,随着湿度的增加,单个细胞的刚性降低。