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用于刺激生物组织的电场和磁场设备。

Electric and Magnetic Field Devices for Stimulation of Biological Tissues.

机构信息

Biomimetics Laboratory, Instituto de Biotecnología, Universidad Nacional de Colombia; Numerical Methods and Modeling Research Group (GNUM), Universidad Nacional de Colombia.

Numerical Methods and Modeling Research Group (GNUM), Universidad Nacional de Colombia; Design, Analysis and Development of Engineering Systems Research group (GIDAD), Fundación Universitaria Los Libertadores.

出版信息

J Vis Exp. 2021 May 15(171). doi: 10.3791/62111.

Abstract

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.

摘要

电场 (EFs) 和磁场 (MFs) 已被广泛应用于组织工程学,以改善细胞的动态变化,如增殖、迁移、分化、形态和分子合成。然而,在刺激细胞、组织或支架时,需要考虑刺激强度和刺激时间等变量。鉴于 EFs 和 MFs 根据细胞反应而变化,目前尚不清楚如何构建能够产生足够生物物理刺激来刺激生物样本的设备。事实上,关于生物物理刺激的应用,缺乏计算和分布方面的证据。本方案重点介绍了生成 EFs 和 MFs 的设备设计和制造,以及实施计算方法来预测生物样本内外生物物理刺激分布的情况。EF 设备由位于生物培养物顶部和底部的两个平行不锈钢电极组成。电极与振荡器相连,以在 60 kHz 时产生 50、100、150 和 200 Vp-p 的电压。MF 设备由一个线圈组成,该线圈通过变压器通电,以在 60 Hz 时产生 1 A 的电流和 6 V 的电压。建造了一个聚甲基丙烯酸甲酯支架,以将生物培养物定位在线圈的中间。计算模拟阐明了 EFs 和 MFs 在生物组织内外的均匀分布。这种计算模型是一种很有前途的工具,可以修改电压、频率、组织形态、微孔板类型、电极和线圈尺寸等参数,以估计 EFs 和 MFs,从而实现细胞反应。

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