Development and application of a novel multi-channel in vitro electrical stimulator for cellular research.

Jorge R Cibrão, Miguel Armada, Marta F Lima, André Vidinha-Mira, Jonas Campos, Tiffany S Pinho, António J Salgado, Alar Ainla, Nuna A Silva
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Abstract

Background: Exposure to electric fields affects cell membranes impacting their potential and altering cellular excitability, nerve transmission, or muscle contraction. Furthermore, electric stimulation influences cell communication, migration, proliferation, and differentiation, with potential therapeutic applications. In vitro platforms for electrical stimulation are valuable tools for studying these effects and advancing medical research. In this study, we developed and tested a novel multi-channel in vitro electrical stimulator designed for cellular applications. The device aims to facilitate research on the effects of electrical stimulation (ES) on cellular processes, providing a versatile platform that is easy to reproduce and implement in various laboratory settings.

Methods: The stimulator was designed to be simple, cost-effective, and versatile, fitting on standard 12-well plates for parallel experimentation. Extensive testing was conducted to evaluate the performance of the stimulator, including 3D finite element modelling to analyse electric field distribution. Moreover, the stimulator was evaluated in vitro using neuronal and stem cell cultures.

Results: Finite element modelling confirmed that the electric field was sufficiently homogeneous within the stimulation zone, though liquid volume affected field strength. A custom controller was developed to program stimulation protocols, ensuring precise and adjustable current delivery up to 160 V/m. ES promoted neurite outgrowth when applied to SH-SY5Y neural cells or to primary spinal cord-derived cells. In human neuronal progenitor cells (hNPCs), ES enhanced neurite growth as well as differentiation into neurons. In adipose stem cells (ASCs), ES altered the secretome, enriching it in molecules that promoted hNPC differentiation into neurons without enhancing neurite growth.

Conclusions: Our results highlight the potential of this multi-channel electrical stimulator as a valuable tool for advancing the understanding of ES mechanisms and its therapeutic applications. The simplicity and adaptability of this novel platform make it a promising addition to the toolkit of researchers studying electrical stimulation in cellular models.

用于细胞研究的新型多通道体外电刺激器的开发与应用。
背景:暴露于电场会影响细胞膜,影响其电位,改变细胞兴奋性、神经传递或肌肉收缩。此外,电刺激影响细胞通讯、迁移、增殖和分化,具有潜在的治疗应用。体外电刺激平台是研究这些效应和推进医学研究的宝贵工具。在这项研究中,我们开发并测试了一种新型的多通道体外电刺激器,设计用于细胞应用。该设备旨在促进电刺激(ES)对细胞过程影响的研究,提供一个多功能平台,易于在各种实验室环境中复制和实施。方法:设计了一种简单、经济、通用的刺激器,可安装在标准的12孔板上进行平行实验。进行了大量的测试来评估刺激器的性能,包括三维有限元建模来分析电场分布。此外,在体外使用神经元和干细胞培养对刺激物进行了评估。结果:有限元模拟证实,尽管液体体积会影响电场强度,但在增产区内电场是足够均匀的。开发了定制控制器来编程刺激协议,确保精确和可调的电流输出高达160 V/m。当应用于SH-SY5Y神经细胞或原代脊髓源性细胞时,ES促进了神经突起的生长。在人神经元祖细胞(hNPCs)中,ES促进了神经突的生长和向神经元的分化。在脂肪干细胞(ASCs)中,ES改变分泌组,使其在促进hNPC分化为神经元的分子中富集,而不促进神经突生长。结论:我们的研究结果强调了这种多通道电刺激器作为促进对ES机制及其治疗应用的理解的有价值的工具的潜力。这种新平台的简单性和适应性使其成为研究人员在细胞模型中研究电刺激的工具包的一个有希望的补充。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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