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Atomic force microscope based biomolecular force-clamp measurements using a micromachined electrostatic actuator

机译:基于原子力显微镜的基于生物分子 - 钳位使用微机械静电致动器进行测量

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摘要

The authors describe a method for biomolecular force clamp measurements using atomic force microscope (AFM) cantilevers and micromachined membrane-based electrostatic actuators. The actuators comprise of Parylene membranes with embedded side actuation electrodes and are fabricated on a silicon substrate. The devices have a displacement range of 1.8 μm with 200 V actuation voltage, and displacement uncertainty is 0.8 nm, including the noise and drift. The settling time, limited by the particular amplifier is 5 ms, with an inherent range down to 20 μs. A force clamp measurement setup using these actuators in a feedback loop has been used to measure bond life-times between human IgG and anti-human IgG molecules to demonstrate the feasibility of this method for biological experiments. The experimental findings are compared with a molecular pulling experiment and the results are found to be in good agreement.
机译:作者介绍了一种使用原子力显微镜(AFM)悬臂和基于微机械膜的静电致动器进行生物分子力钳测量的方法。致动器由具有嵌入式侧致动电极的聚对二甲苯膜构成,并制造在硅基板上。器件在200 V激励电压下的位移范围为1.8μm,位移不确定度为0.8 nm,包括噪声和漂移。受特定放大器限制的建立时间为5 ms,固有范围低至20μs。在反馈回路中使用这些致动器的力钳测量设置已用于测量人IgG和抗人IgG分子之间的结合寿命,以证明该方法用于生物学实验的可行性。将实验结果与分子拉伸实验进行比较,发现结果吻合良好。

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