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Electrical Stimulation Promotes Stem Cell Neural Differentiation in Tissue Engineering

机译:电刺激促进组织工程中的干细胞神经分化

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Nerve injuries and neurodegenerative disorders remain serious challenges, owing to the poor treatment outcomes of in situ neural stem cell regeneration. The most promising treatment for such injuries and disorders is stem cell-based therapies, but there remain obstacles in controlling the differentiation of stem cells into fully functional neuronal cells. Various biochemical and physical approaches have been explored to improve stem cell-based neural tissue engineering, among which electrical stimulation has been validated as a promising one both in vitro and in vivo. Here, we summarize the most basic waveforms of electrical stimulation and the conductive materials used for the fabrication of electroactive substrates or scaffolds in neural tissue engineering. Various intensities and patterns of electrical current result in different biological effects, such as enhancing the proliferation, migration, and differentiation of stem cells into neural cells. Moreover, conductive materials can be used in delivering electrical stimulation to manipulate the migration and differentiation of stem cells and the outgrowth of neurites on two- and three-dimensional scaffolds. Finally, we also discuss the possible mechanisms in enhancing stem cell neural differentiation using electrical stimulation. We believe that stem cell-based therapies using biocompatible conductive scaffolds under electrical stimulation and biochemical induction are promising for neural regeneration.
机译:神经损伤和神经退行性疾病仍然是严重的挑战,由于原位神经干细胞再生治疗效果不佳的结果。最有前途的治疗这种损伤和疾病是基于干细胞的疗法,但仍然存在着控制干细胞分化为功能完整的神经细胞障碍。各种生物化学和物理方法已经被探索,以改善基于干细胞的神经组织工程,其中的电刺激已经被验证为一个有前途的在体外和体内。这里,我们总结电刺激和最基本的波形用于在神经组织工程电基片或支架的制造中的导电材料。各种强度和电流结果在不同的生物效应,例如增强的增殖,迁移,和干细胞分化为神经细胞的图案。此外,导电材料可以在递送电刺激来操纵的迁移和干细胞的分化和神经突的上二维和三维支架的向外生长被使用。最后,我们还讨论了使用电刺激促进干细胞神经分化的可能机制。我们相信,在使用电刺激和生物化学感应生物相容性导电支架是基于干细胞疗法有望用于神经再生。

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