Static Magnetic Field Effect on Cell Alignment, Growth, and Differentiation in Human Cord-Derived Mesenchymal Stem Cells

被引:0
作者
Maryam Sadri
Parviz Abdolmaleki
Saeid Abrun
Bahareh Beiki
Fazel Sahraneshin Samani
机构
[1] Tarbiat Modares University,Department of Biophysics, Faculty of Biological Sciences
[2] Tarbiat Modares University (TMU),Department of Hematology, Faculty of Biological Sciences
[3] Royan Stem Cell Technology Company (Cord Blood Bank),Department of Stem Cells and Developmental Biology at Cell Science Research Center, Royan Institute for Stem Cell Biology and Technology
[4] ACECR,undefined
来源
Cellular and Molecular Bioengineering | 2017年 / 10卷
关键词
Magnetic field; Mesenchymal stem cell; Cord; Viability; Cell cycle; Proliferation; Differentiation;
D O I
暂无
中图分类号
学科分类号
摘要
This investigation is performed to evaluate the impact of static magnetic field on the Cell growth alignment, and differentiation potential in Human Mesenchymal Stem cells derived from human newborn cords. In vitro-cultured mesenchymal stem cells derived from human newborn cords were exposed to SMF up to 24 mT and compared with the control (unexposed) cultures. Viability was assessed via Trypan Blue staining and MTT assay. Cell cycle progression was studied after flow cytometry data analysis. Sox-2, Nanong, and Oct-4 Primers used for RT-PCR experiment. Morphological studies showed that the exposed cells were significantly aligned in parallel bundles in a correlation with the magnetic field lines. Viability measurements showed a significant reduction in cell viability which was noted after exposure to static magnetic field and initiated 36 h after the end of exposure time. Flow cytometric data analysis confirmed a decrease in G1 phase cell population within the treated and cultured groups compared with the corresponding control samples. However, the induced changes were recovered in the cell cultures after the post-exposure culture recovery time which may be attributed to the cellular repair mechanisms. Furthermore, the proliferation rate and Oct-4 gene expression were reduced due to the 18 mT static magnetic field exposure. The significant proliferation rate decrease accompanied by the Sox-2, Nanong, and Oct-4 gene expression decline, suggested the differentiation inducing effects of SMF exposure. Exposure to Static Magnetic fields up to 24 mT affects mesenchymal stem cell alignment and proliferation rate as well as mRNA expression of Sox-2, Nanong, and Oct-4 genes, therefore can be considered as a new differentiation inducer in addition to the other stimulators.
引用
收藏
页码:249 / 262
页数:13
相关论文
共 266 条
  • [1] Ahmadianpour MR(2013)Static magnetic field of 6 mT induces apoptosis and alters cell cycle in p53 mutant Jurkat cells Electromagn. Biol. Med. 32 9-19
  • [2] Abdolmaleki P(2003)The effect of strong static magnetic field on lymphocytes Bioelectromagnetics 24 109-117
  • [3] Mowla SJ(2004)Mesenchymal stem cells: clinical applications and biological characterization Int. J. Biochem. Cell Biol. 36 568-584
  • [4] Hosseinkhani S(2009)CircStat: a MATLAB toolbox for circular statistics J. Stat. Softw. 31 1-21
  • [5] Aldinucci C(1998)The susceptibility of pure tubulin to high magnetic fields: a magnetic birefringence and X-ray fiber diffraction study Biophys. J . 74 1509-1521
  • [6] Garcia JB(1987)Effect of a static magnetic field on fracture healing in a rabbit radius: preliminary results Clin. Orthop. Relat. Res. 222 300-306
  • [7] Palmi M(2001)Cell proliferation/cell death balance in renal cell cultures after exposure to a static magnetic field Nephron 87 269-273
  • [8] Sgaragli G(2009)Cell shape and plasma membrane alterations after static magnetic fields exposure Eur. J. Histochem. 47 299-308
  • [9] Benocci A(2005)Time dependent modifications of Hep G2 cells during exposure to static magnetic fields Bioelectromagnetics 26 275-286
  • [10] Meini A(2007)Static magnetic fields enhance skeletal muscle differentiation in vitro by improving myoblast alignment Cytometry A 71 846-856