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CHARACTERIZING THE SOURCES OF CURRENT GENERATED BY A MEMBRANE-BASED HAIR CELL SENSOR

机译:表征基于膜的毛细胞传感器产生的电流源

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Recently, researchers have developed a method to construct a membrane-based hair cell sensor that generates a measurable current in response to physical disturbance of the hair. Representing the cell membrane, a phospholipid bilayer is formed at the interface of two lipid-encased hydrophilic volumes and a hair is located in a center of one of the volumes act a shaking element. In this work, we study the current generated by free vibration of the hair in a revised hair cell embodiment that uses a hair that is physically supported by the surrounding substrate. The current generated by the sensor is measured by a patch clamp amplifier, and the net charge displaced across the membrane during motion of the hair is computed. Experiments performed with a complete hair cell sensor and various control cases that lack a bilayer indicate that the current measured at 0mV applied across the membrane is due to vibration of the positive electrode that changes the local electromagnetic field. Experiments conducted with both gel-and liquid-supported membranes indicate that gel-supported membranes have a higher sensitivity of (0.066 pC/mV) than liquid-supported membranes (0.015 pC/mV) as the applied voltage increases. Lastly, the motion of the tip of the hair is imaged using a high-speed camera. This test shows that the hair oscillates at the same frequency observed in the measured current traces, which indicates that transverse bending of the bilayer is the cause for the time rate of change in capacitance in the membrane that produces a voltage-dependent current.
机译:最近,研究人员开发了一种构造基于膜的毛细胞传感器的方法,该传感器可响应头发的物理干扰而产生可测量的电流。代表细胞膜的磷脂双层形成在两个脂质包裹的亲水体积的界面上,位于其中一个体积中心的毛发起振子作用。在这项工作中,我们研究了在修改后的毛细胞实施例中由头发的自由振动产生的电流,该实施例使用的是由周围基质物理支撑的头发。由传感器产生的电流由膜片钳放大器测量,并计算出在头发运动过程中跨膜位移的净电荷。使用完整的毛细胞传感器和缺少双层的各种控制案例进行的实验表明,在0mV时跨膜施加的电流是由于正极振动改变了局部电磁场而引起的。用凝胶和液体支撑的膜进行的实验表明,随着施加电压的增加,凝胶支撑的膜的灵敏度(0.066 pC / mV)比液体支撑的膜(0.015 pC / mV)高。最后,使用高速相机对发梢的运动进行成像。该测试表明,头发以在测得的电流轨迹中观察到的相同频率振荡,这表明双层的横向弯曲是产生电压依赖性电流的膜中电容的时间变化率的原因。

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