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Electric field distribution analysis for the design of an electrode system in a 3D neuromuscular junction microfluidic device

机译:3D神经肌肉结微流体装置中电极系统设计的电场分布分析

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Electrical stimulation (ES) highly influences the cellular microenvironment, affecting cell migration, proliferation and differentiation. It also plays a crucial role in tissue engineering to improve the biomechanical properties of the constructs and regenerate the damaged tissues. However, the effects of the ES on the neuromuscular junction (NMJ) are still not fully analyzed. In this context, the development of a specialized microfluidic device combined with an ad-hoc electrical stimulation can allow a better investigation of the NMJ functionality. To this aim, we performed an analysis of the electric field distribution in a 3D neuromuscular junction microfluidic device for the design of several electrode systems. At first, we designed and modeled the 3D microfluidic device in order to promote the formation of the NMJ between neuronal cells and the muscle engineered tissue. Subsequently, with the aim of identifying the optimal electrode configuration able to properly stimulate the neurites, thus enhancing the formation of the NMJ, we performed different simulation tests of the electric field distribution, by varying the electrode type, size, position and applied voltage. Our results revealed that all the tested configurations did not induce an electric field dangerous for the cell vitality. Among these configurations, the one with cylindrical pin of 0.3 mm of radius, placed in the internal position of the neuronal chambers, allowed to obtain the highest electrical field in the zone comprising the neurites.
机译:电刺激(ES)高度影响细胞微环境,影响细胞迁移,增殖和分化。它还在组织工程中起着至关重要的作用,以改善构建体的生物力学性质并再生受损组织。然而,ES对神经肌肉结(NMJ)的影响仍未完全分析。在这种情况下,与Ad-hoc电刺激结合的专用微流体装置的开发可以更好地研究NMJ功能。为此目的,我们对用于设计多个电极系统的3D神经肌肉结微流体装置的电场分布进行了分析。首先,我们设计并建模了3D微流体装置,以促进神经元细胞和肌肉工程组织之间的NMJ的形成。随后,目的通过识别能够适当地刺激神经肌腱的最佳电极配置,从而增强NMJ的形成,通过改变电极类型,尺寸,位置和施加的电压,我们执行了电场分布的不同模拟测试。我们的研究结果表明,所有测试的配置都没有诱导对细胞生命力危险的电场。在这些配置中,允许圆柱销的半径为0.3mm的圆柱销,放置在神经元腔室的内部位置,允许在包括神经牙的区域中获得最高电场。

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