Department of Biomedical Engineering, National University of Singapore, E4, 4 Engineering Drive 3, Singapore, 117583, Singapore.
Singapore Institute of Neurotechnology (SINAPSE), National University of Singapore, 28 Medical Drive, 5-COR, Singapore, 117456, Singapore.
Sci Rep. 2017 Jul 27;7(1):6743. doi: 10.1038/s41598-017-06331-8.
The cellular-level effects of low/high frequency oscillating magnetic field on excitable cells such as neurons are well established. In contrast, the effects of a homogeneous, static magnetic field (SMF) on Central Nervous System (CNS) glial cells are less investigated. Here, we have developed an in vitro SMF stimulation set-up to investigate the genomic effects of SMF exposure on oligodendrocyte differentiation and neurotrophic factors secretion. Human oligodendrocytes precursor cells (OPCs) were stimulated with moderate intensity SMF (0.3 T) for a period of two weeks (two hours/day). The differential gene expression of cell activity marker (c-fos), early OPC (Olig1, Olig2. Sox10), and mature oligodendrocyte markers (CNP, MBP) were quantified. The enhanced myelination capacity of the SMF stimulated oligodendrocytes was validated in a dorsal root ganglion microfluidics chamber platform. Additionally, the effects of SMF on the gene expression and secretion of neurotrophic factors- BDNF and NT3 was quantified. We also report that SMF stimulation increases the intracellular calcium influx in OPCs as well as the gene expression of L-type channel subunits-CaV1.2 and CaV1.3. Our findings emphasize the ability of glial cells such as OPCs to positively respond to moderate intensity SMF stimulation by exhibiting enhanced differentiation, functionality as well as neurotrophic factor release.
低频/高频振荡磁场对神经元等可兴奋细胞的细胞水平影响已得到充分证实。相比之下,均质静磁场(SMF)对中枢神经系统(CNS)神经胶质细胞的影响研究较少。在这里,我们开发了一种体外 SMF 刺激装置,以研究 SMF 暴露对少突胶质细胞分化和神经营养因子分泌的基因组影响。用人少突胶质细胞前体细胞(OPC)在中等强度 SMF(0.3T)下刺激两周(每天两小时)。细胞活性标志物(c-fos)、早期 OPC(Olig1、Olig2、Sox10)和成熟少突胶质细胞标志物(CNP、MBP)的差异基因表达进行了定量。在背根神经节微流控室平台上验证了 SMF 刺激的少突胶质细胞增强的髓鞘形成能力。此外,还定量了 SMF 对神经营养因子 BDNF 和 NT3 的基因表达和分泌的影响。我们还报告称,SMF 刺激会增加 OPC 中的细胞内钙流入以及 L 型通道亚基-CaV1.2 和 CaV1.3 的基因表达。我们的研究结果强调了 OPC 等神经胶质细胞能够通过表现出增强的分化、功能以及神经营养因子释放来对中等强度 SMF 刺激做出积极响应的能力。