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脉冲电磁场和声波对人骨髓间充质干细胞体外及体内神经分化的联合作用

Combined effect of pulsed electromagnetic field and sound wave on In vitro and In vivo neural differentiation of human mesenchymal stem cells.

作者信息

Choi Yun-Kyong, Urnukhsaikhan Enerelt, Yoon Hee-Hoon, Seo Young-Kwon, Cho Hyunjin, Jeong Jong-Seob, Kim Soo-Chan, Park Jung-Keug

机构信息

Dept. of Medical Biotechnology, Dongguk University, Seoul, Korea.

Dongguk University Research Inst. of Biotechnology, Seoul, Korea.

出版信息

Biotechnol Prog. 2017 Jan;33(1):201-211. doi: 10.1002/btpr.2389. Epub 2016 Nov 18.

DOI:10.1002/btpr.2389
PMID:27790871
Abstract

Biophysical wave stimulus has been used as an effective tool to promote cellular maturation and differentiation in the construction of engineered tissue. Pulsed electromagnetic fields (PEMFs) and sound waves have been selected as effective stimuli that can promote neural differentiation. The aim of this study was to investigate the synergistic effect of PEMFs and sound waves on the neural differentiation potential in vitro and in vivo using human bone marrow mesenchymal stem cells (hBM-MSCs). In vitro, neural-related genes in hBM-MSCs were accelerated by the combined exposure to both waves more than by individual exposure to PEMFs or sound waves. The combined wave also up-regulated the expression of neural and synaptic-related proteins in a three-dimensional (3-D) culture system through the phosphorylation of extracellular signal-related kinase. In a mouse model of photochemically induced ischemia, exposure to the combined wave reduced the infarction volume and improved post-injury behavioral activity. These results indicate that a combined stimulus of biophysical waves, PEMFs and sound can enhance and possibly affect the differentiation of MSCs into neural cells. Our study is meaningful for highlighting the potential of combined wave for neurogenic effects and providing new therapeutic approaches for neural cell therapy. © 2016 American Institute of Chemical Engineers Biotechnol. Prog., 33:201-211, 2017.

摘要

生物物理波刺激已被用作一种有效工具,用于在工程组织构建中促进细胞成熟和分化。脉冲电磁场(PEMFs)和声波已被选为可促进神经分化的有效刺激因素。本研究的目的是使用人骨髓间充质干细胞(hBM-MSCs),在体外和体内研究PEMFs和声波对神经分化潜能的协同作用。在体外,与单独暴露于PEMFs或声波相比,hBM-MSCs中与神经相关的基因在同时暴露于两种波时加速表达。在三维(3-D)培养系统中,联合波还通过细胞外信号调节激酶的磷酸化上调了神经和突触相关蛋白的表达。在光化学诱导缺血的小鼠模型中,暴露于联合波可减少梗死体积并改善损伤后行为活动。这些结果表明,生物物理波(PEMFs和声音)的联合刺激可增强并可能影响间充质干细胞向神经细胞的分化。我们的研究对于突出联合波的神经源性效应潜力以及为神经细胞治疗提供新的治疗方法具有重要意义。© 2016美国化学工程师学会生物技术进展,33:201 - 211,2017。

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