Electric and Magnetic Field Devices for Stimulation of Biological Tissues

电压 电极 生物组织 磁场 生物系统 组织工程 电极阵列 变压器 同种类的 生物医学工程 材料科学 刺激 神经科学 电场 纳米技术 光电子学 物理 电磁线圈 化学 电气工程 生物 工程类 量子力学 物理化学 热力学
作者
Juan José Saiz Culma,Juan Felipe Escobar Huertas,Diego Alexánder Garzón-Alvarado,Juan Jairo Vaca‐González
出处
期刊:Journal of Visualized Experiments [MyJoVE Corporation]
卷期号: (171)
标识
DOI:10.3791/62111
摘要

Electric fields (EFs) and magnetic fields (MFs) have been widely used by tissue engineering to improve cell dynamics such as proliferation, migration, differentiation, morphology, and molecular synthesis. However, variables such stimuli strength and stimulation times need to be considered when stimulating either cells, tissues or scaffolds. Given that EFs and MFs vary according to cellular response, it remains unclear how to build devices that generate adequate biophysical stimuli to stimulate biological samples. In fact, there is a lack of evidence regarding the calculation and distribution when biophysical stimuli are applied. This protocol is focused on the design and manufacture of devices to generate EFs and MFs and implementation of a computational methodology to predict biophysical stimuli distribution inside and outside of biological samples. The EF device was composed of two parallel stainless-steel electrodes located at the top and bottom of biological cultures. Electrodes were connected to an oscillator to generate voltages (50, 100, 150 and 200 Vp-p) at 60 kHz. The MF device was composed of a coil, which was energized with a transformer to generate a current (1 A) and voltage (6 V) at 60 Hz. A polymethyl methacrylate support was built to locate the biological cultures in the middle of the coil. The computational simulation elucidated the homogeneous distribution of EFs and MFs inside and outside of biological tissues. This computational model is a promising tool that can modify parameters such as voltages, frequencies, tissue morphologies, well plate types, electrodes and coil size to estimate the EFs and MFs to achieve a cellular response.
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