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Bioelectronics-on-a-chip for cardio myoblast proliferation enhancement using electric field stimulation

机译:用于Cardio肌细胞增殖增强的生物电化机芯片使用电场刺激

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Abstract Background Cardio myoblast generation from conventional approaches is laborious and time-consuming. We present a bioelectronics on-a-chip for stimulating cells cardio myoblast proliferation during culture. Method The bioelectronics chip fabrication methodology involves two different process. In the first step, an aluminum layer of 200?nm is deposited over a soda-lime glass substrate using physical vapor deposition and selectively removed using a Q-switched Nd:YVO 4 laser to create the electric tracks. To perform the experiments, we developed a biochip composed of a cell culture chamber fabricated with polydimethylsiloxane (PDMS) with a glass coverslip or a cell culture dish placed over the electric circuit tracks. By using such a glass cover slip or cell culture dish we avoid any toxic reactions caused by electrodes in the culture or may be degraded by electrochemical reactions with the cell medium, which is crucial to determine the effective cell-device coupling. Results The chip was used to study the effect of electric field stimulation of Rat ventricular cardiomyoblasts cells (H9c2). Results shows a remarkable increase in the number of H9c2 cells for the stimulated samples, where after 72?h the cell density double the cell density of control samples. Conclusions Cell proliferation of Rat ventricular cardiomyoblasts cells (H9c2) using the bioelectronics-on-a-chip was enhanced upon the electrical stimulation. The dependence on the geometrical characteristics of the electric circuit on the peak value and homogeneity of the electric field generated are analyzed and proper parameters to ensure a homogeneous electric field at the cell culture chamber are obtained. It can also be observed a high dependence of the electric field on the geometry of the electrostimulator circuit tracks and envisage the potential applications on electrophysiology studies, monitoring and modulate cellular behavior through the application of electric fields.
机译:从传统方法中的摘要背景Cardio Myooblast生成的生成是费力且耗时的。我们介绍了一种用于刺激培养中的细胞心肌细胞增殖的芯片的生物化电池。方法生物电力芯片制造方法涉及两个不同的过程。在第一步中,使用物理气相沉积在钠钙玻璃基板上沉积200μm的铝层,并选择性地使用Q开关的Nd:YVO 4激光器以产生电动轨道。为了进行实验,我们开发了由用聚二甲基硅氧烷(PDMS)制造的细胞培养室组成的Biochip,其中玻璃盖板或放置在电路轨道上的细胞培养皿。通过使用这种玻璃盖滑动或细胞培养皿,我们避免由培养物中的电极引起的任何毒性反应,或者可以通过与细胞介质的电化学反应来降解,这对于确定有效的细胞器件耦合至关重要。结果芯片用于研究大鼠心室心肌细胞细胞电场刺激的影响(H9C2)。结果显示出刺激的样品的H9C2细胞数量显着增加,其中72℃之后的细胞密度是对照样品的细胞密度。结论电刺激上增强了使用生物电联的对铝膜的大鼠心室心肌细胞细胞(H9C2)的细胞增殖。分析了对产生电场的峰值和均匀性的电路的几何特征的依赖性,并且获得了适当的参数,以确保电池培养室处的均匀电场。还可以观察到电场对电刺激电路轨道的几何形状的高依赖性,并通过应用电场的应用设想电生理研究,监测和调节蜂窝行为的潜在应用。

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