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Measurement of the mechanical properties of living cell using micro hand and developed AFM system

机译:使用微型手和发达的AFM系统测量活细胞的机械性能

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In this paper, the mechanical properties of yeast cell are determined by means of the developed two-fingered micro hand and an atomic force microscope (AFM). The micro hand has excellent absolute positioning accuracy after the elaborated calibration, and is typically capable of obtaining less than several hundred nanometer of positioning accuracy by human tele-operation. The authors also developed an AFM system of our own composition. The AFM consists of a laser diode module, a cantilever, a 4-segment photodiode and output circuit. The task to measure the mechanical properties of cells include moving of the fingers from the home position to the target object (cell), then picking and grasping it, moving it to a target position (AFM tip), and finally pushing it against the cantilever tip. However, since it is difficult to stabilize the sample, the authors utilized the capillary phenomenon, i.e. the liquid inside the tube-shaped object ascends the inner wall in order to stabilize the sample strongly. And force-indentation relation was obtained applying a force to individual yeast cells by moving the sample to the cantilever tip. Force is automatically calculated from the cantilever deflection measured with a laser beam and a quadrature photodiode, while indentation is obtained from the difference between the movement of the micro hand and that of the cantilever tip caused by cantilever deflection. The mechanical properties of yeast cells is finally determined using the produced force-indentation curves, the Hertz model and FIEL (force indentation to equal limits) mapping, which is an analytical way for determining relative microelastic properties from force volumes of viscoelastic materials.
机译:在本文中,致酵母细胞的力学性能通过开发的双指微小手和原子力显微镜(AFM)测定。微手在阐述校准后具有优异的绝对定位精度,并且通常能够通过人类的电信操作获得小于数百纳米的定位精度。作者还开发了自己构成的AFM系统。 AFM由激光二极管模块,悬臂,4分段光电二极管和输出电路组成。测量单元的机械性能的任务包括将手指从原始位置移动到目标物体(单元),然后挑选并抓住它,将其移动到目标位置(AFM尖端),并最终将其推向悬臂小费。然而,由于难以稳定样品,作者利用毛细管现象,即管形物体内的液体上升,以便强烈地稳定样品。通过将样品移动到悬臂尖端将力施加力对单独的酵母细胞来获得力凹凸。使用激光束和正交光电二极管测量的悬臂偏转自动计算力,而从微手的运动和由悬臂偏转引起的悬臂尖端之间的差异获得压痕。最终使用所产生的力缩进曲线,赫兹模型和缩进到等限制)映射最终确定酵母细胞的机械性能,这是用于从粘弹性材料的力量测定相对微弹性的分析方法。

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