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A chip device to determine surface charge properties of confluent cell monolayers by measuring streaming potential

机译:通过测量流势来确定汇合细胞单层的表面电荷性能的芯片装置

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Cell surface charge is an important element of the function of biological barriers, but no chip device has been described to measure cell surface charge properties of confluent barrier cell monolayers. The aim of this study was the design and fabrication of a dynamic lab-on-a-chip (LOC) device which is suitable to monitor transcellular electrical resistance, as well as streaming potential parallel to the surface of cell layers. We successfully measured the streaming potential of a biological barrier culture model with the help of our previously published versatile lab-on-a-chip device equipped with two Ag/AgCl electrodes. The inclusion of these "zeta electrodes", a voltage preamplifier and an oscilloscope in our set-up made it possible to successfully record signals describing the surface charge properties of brain endothelial cell monolayers, used as a barrier model in our experiments. Data obtained on the new chip device were verified by comparing streaming potential results measured in the LOC device and zeta potential results by the commonly used laser-Doppler velocimetry (LDv) method and model simulations. Changes in the negative surface charge of the barrier model by treatments with neuraminidase enzyme modifying the cell membrane glycocalyx or lidocaine altering the lipid membrane charge could be measured by both the upgraded LOC device and LDv. The new chip device can help to gain meaningful new information on how surface charge is linked to barrier function in both physiological and pathological conditions.
机译:细胞表面电荷是生物屏障功能的重要因素,但已经描述了芯片装置来测量汇合阻挡电池单层的细胞表面电荷性能。本研究的目的是设计和制造动态实验室的芯片(LOC)装置,该装置适于监测型晶状体电阻,以及平行于电池层表面的流电位。我们在先前发布的具有两个AG / AGCL电极的芯片装置的帮助下成功地测量了生物屏障培养模型的流势。在我们的设置中包含这些“Zeta电极”,电压前置放大器和示波器使得可以成功地记录描述脑内皮细胞单层的表面电荷性质的信号,在我们的实验中用作屏障模型。通过将常用的激光多普勒速率(LDV)方法(LDV)方法和模型模拟在LOC器件和Zeta电位结果中测量测量的流电位结果来验证新芯片设备上获得的数据。通过升级的LOC器件和LDV可以测量通过修饰细胞膜糖类酶或改变脂质膜电荷的细胞膜糖蛋白酶或利多卡因的屏障模型的阴性表面电荷的变化。新的芯片设备可以帮助获得有关如何在生理和病理条件下与屏障功能相关的有意义的新信息。

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