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Research Article

Stimulation of human bone marrow mesenchymal stem cells by electromagnetic transduction therapy - EMTT

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Pages 304-314 | Received 01 Feb 2022, Accepted 01 May 2022, Published online: 07 Jun 2022

References

  • Bassett, C. A., M. Schink-Ascani, and S. M. Lewis. 1989. Effects of pulsed electromagnetic fields on Steinberg ratings of femoral head osteonecrosis. Clin. Orthop. Relat. Res 246:172–85.
  • Bassett, C. A. 1989. Fundamental and practical aspects of therapeutic uses of pulsed electromagnetic fields (PEMFs). Crit. Rev. Biomed. Eng. 17:451–529.
  • Boomsma, R. A., and D. L. Geenen. 2012. Mesenchymal stem cells secrete multiple cytokines that promote angiogenesis and have contrasting effects on chemotaxis and apoptosis. PloS one 7:e35685. doi:10.1371/journal.pone.0035685.
  • Chang, K., and W. H. Chang. 2003. Pulsed electromagnetic fields prevent osteoporosis in an ovariectomized female rat model: A prostaglandin E2-associated process. Bioelectromagnetics 24:189–98. doi:10.1002/bem.10078.
  • Delle Monache, S., R. Alessandro, R. Iorio, G. Gualtieri, and R. Colonna. 2008. Extremely low frequency electromagnetic fields (ELF-EMFs) induce in vitro angiogenesis process in human endothelial cells. Bioelectromagnetics 29:640–48. doi:10.1002/bem.20430.
  • Dong, Y., L. Suryani, X. Zhou, P. Muthukumaran, M. Rakshit, F. Yang, F. Wen, A. M. Hassanbhai, K. Parida, D. T. Simon, et al. Synergistic effect of PVDF-coated PCL-TCP scaffolds and pulsed electromagnetic field on osteogenesis. Int J Mol Sci. 2021 June 16. 22:6438. 10.3390/ijms22126438
  • Ferrara, N., H. P. Gerber, and J. LeCouter. 2003. The biology of VEGF and its receptors. Nat. Med. 9:669–76. doi:10.1038/nm0603-669.
  • Fu, Y. C., C. C. Lin, J. K. Chang, C. H. Chen, I. C. Tai, G. J. Wang, and M. L. Ho. 2014. A novel single pulsed electromagnetic field stimulates osteogenesis of bone marrow mesenchymal stem cells and bone repair. PloS one 9:e91581. doi:10.1371/journal.pone.0091581.
  • Gerber, H. P., T. H. Vu, A. M. Ryan, J. Kowalski, Z. Werb, and N. Ferrara. 1999. VEGF couples hypertrophic cartilage remodeling, ossification and angiogenesis during endochondral bone formation. Nat. Med. 5:623–28. doi:10.1038/9467.
  • Goto, T., M. Fujioka, M. Ishida, M. Kuribayashi, K. Ueshima, and T. Kubo. 2010. Noninvasive up-regulation of angiopoietin-2 and fibroblast growth factor-2 in bone marrow by pulsed electromagnetic field therapy. J. Orthop. Sci. Off. J. Jpn. Orthop. Ass 15:661–65. doi:10.1007/s00776-010-1510-0.
  • Jaiswal, N., S. E. Haynesworth, A. I. Caplan, and S. P. Bruder. 1997. Osteogenic differentiation of purified, culture-expanded human mesenchymal stem cells in vitro. J. Cell. Biochem. 64:295–312. doi:10.1002/(SICI)1097-4644(199702)64:2<295::AID-JCB12>3.0.CO;2-I.
  • Kim, S. S., H. J. Shin, D. W. Eom, J. R. Huh, Y. Woo, H. Kim, S. H. Ryu, P. G. Suh, M. J. Kim, and J. Y. Kim, others. 2002. Enhanced expression of neuronal nitric oxide synthase and phospholipase C-gamma1 in regenerating murine neuronal cells by pulsed electromagnetic field Exp. Mol. Med. 34: 53–59. doi: 10.1038/emm.2002.8.
  • Knobloch, K. 2022. Bone stimulation 4.0-Combination of EMTT and ESWT in humeral nonunion: A case report. Der Unfallchirurg 125:323–26. Kolbe M, Xiang Z, Dohle E, Tonak M, Kirkpatrick CJ, Fuchs S. 2011. Paracrine effects influenced by cell culture medium and consequences on microvessel-like structures in cocultures of mesenchymal stem cells and outgrowth endothelial cells. Tissue engineering. Part A 17:2199-212. doi:10.1007/s00113-021-01025-3.
  • Kolbe, M., Z. Xiang, E. Dohle, M. Tonak, C.J. Kirkpatrick, and S. Fuchs. 2011. Paracrine effects influenced by cell culture medium and consequences on microvessel-like structures in cocultures of mesenchymal stem cells and outgrowth endothelial cells. Tissue Eng Part A 17:2199–212.
  • Krath, A., T. Kluter, M. Stukenberg, P. Zielhardt, H. Gollwitzer, N. Harrasser, J. Hausdorf, M. Ringeisen, and L. Gerdesmeyer. 2017. Electromagnetic transduction therapy in non-specific low back pain: A prospective randomised controlled trial. J. Orthop 14:410–15. doi:10.1016/j.jor.2017.06.016.
  • Kumar, P., A. Nagarajan, and P. D. Uchil. 2019 July 1. Electroporation. Cold Spring Harb Protoc 2019:153–65. Li JK, Lin JC, Liu HC, Chang WH. 2007. Cytokine release from osteoblasts in response to different intensities of pulsed electromagnetic field stimulation. 10.1101/pdb.top096271
  • Langenbach, F., and J. Handschel 2013. Effects of dexamethasone, ascorbic acid and β-glycerophosphate on the osteogenic differentiation of stem cells in vitro. Stem Cell Res Ther 4:117. PMID: 24073831; PMCID: PMC3854789. doi:10.1186/scrt328.
  • Li, J.K., J.C. Lin, H.C. Liu, and W.H. Chang 2007. Cytokine release from osteoblasts in response to different intensities of pulsed electromagnetic field stimulation. Electromagn Biol Med 26:153–65. PMID: 17886003. doi:10.1080/15368370701572837.
  • Marom, R., I. Shur, R. Solomon, and D. Benayahu. 2005. Characterization of adhesion and differentiation markers of osteogenic marrow stromal cells. J. Cell. Physiol. 202:41–48. doi:10.1002/jcp.20109.
  • Nakahara, T., H. Yaguchi, M. Yoshida, and J. Miyakoshi. 2002. Effects of exposure of CHO-K1 cells to a 10-T static magnetic field. Radiology 224:817–22. doi:10.1148/radiol.2243011300.
  • Ongaro, A., A. Pellati, L. Bagheri, C. Fortini, S. Setti, and M. De Mattei. 2014. Pulsed electromagnetic fields stimulate osteogenic differentiation in human bone marrow and adipose tissue derived mesenchymal stem cells. Bioelectromagnetics 35:426–36. doi:10.1002/bem.21862.
  • Owen, T. A., M. Aronow, V. Shalhoub, L. M. Barone, L. Wilming, M. S. Tassinari, M. B. Kennedy, S. Pockwinse, J. B. Lian, and G. S. Stein. 1990. Progressive development of the rat osteoblast phenotype in vitro: Reciprocal relationships in expression of genes associated with osteoblast proliferation and differentiation during formation of the bone extracellular matrix. J. Cell. Physiol. 143:420–30. doi:10.1002/jcp.1041430304.
  • Pan, Y., Y. Dong, W. Hou, Z. Ji, K. Zhi, Z. Yin, H. Wen, and Y. Chen. 2013. Effects of PEMF on microcirculation and angiogenesis in a model of acute hindlimb ischemia in diabetic rats. Bioelectromagnetics 34:180–88. doi:10.1002/bem.21755.
  • Patterson, T. E., Y. Sakai, M. D. Grabiner, M. Ibiwoye, R. J. Midura, M. Zborowski, and A. Wolfman. 2006. Exposure of murine cells to pulsed electromagnetic fields rapidly activates the mTOR signaling pathway. Bioelectromagnetics 27:535–44. doi:10.1002/bem.20244.
  • Rubik, B. 1997. Bioelectromagnetics & the future of medicine. Administrative. J. Radiol: AR 16:38–46.
  • Samee, M., S. Kasugai, H. Kondo, K. Ohya, H. Shimokawa, and S. Kuroda. 2008. Bone morphogenetic protein-2 (BMP-2) and vascular endothelial growth factor (VEGF) transfection to human periosteal cells enhances osteoblast differentiation and bone formation. J. Pharmacol. Sci. 108:18–31. doi:10.1254/jphs.08036FP.
  • Schenck, J. F. 2000. Safety of strong, static magnetic fields. J. Magn. Reson. Imaging: JMRI 12:2–19. doi:10.1002/1522-2586(200007)12:1<2::AID-JMRI2>3.0.CO;2-V.
  • Schiffer, I. B., W. G. Schreiber, R. Graf, E. M. Schreiber, D. Jung, D. M. Rose, M. Hehn, S. Gebhard, J. Sagemuller, and H. W. Spiess, others. 2003. No influence of magnetic fields on cell cycle progression using conditions relevant for patients during MRI Bioelectromagnetics 24: 241–50. doi: 10.1002/bem.10097.
  • Sun, W., A. Motta, Y. Shi, A. Seekamp, H. Schmidt, S. N. Gorb, C. Migliaresi, and S. Fuchs. 2016. Co-culture of outgrowth endothelial cells with human mesenchymal stem cells in silk fibroin hydrogels promotes angiogenesis. Biomed. Mater. 11:035009. doi:10.1088/1748-6041/11/3/035009.
  • Taylor, K. F., N. Inoue, B. Rafiee, J. E. Tis, K. A. McHale, and E. Y. Chao. 2006. Effect of pulsed electromagnetic fields on maturation of regenerate bone in a rabbit limb lengthening model. J. Orthop. Res. Offi. Publ. Orthop. Res. Soc 24:2–10. doi:10.1002/jor.20014.
  • Trock, D. H., A. J. Bollet, and R. Markoll. 1994. The effect of pulsed electromagnetic fields in the treatment of osteoarthritis of the knee and cervical spine. Report of randomized, double blind, placebo controlled trials. J. Rheumatol. 21:1903–11.
  • Urist, M. R., and B. S. Strates. 1971. Bone morphogenetic protein. J. Dent. Res. 50:1392–406. doi:10.1177/00220345710500060601.
  • Varani, K., S. Gessi, S. Merighi, V. Iannotta, E. Cattabriga, S. Spisani, R. Cadossi, and P. A. Borea. 2002. Effect of low frequency electromagnetic fields on A2A adenosine receptors in human neutrophils. Br. J. Pharm 136:57–66. doi:10.1038/sj.bjp.0704695.
  • Varani, K., F. Vincenzi, S. Pasquini, I. Blo, S. Salati, M. Cadossi, and M. De Mattei. 2021. Pulsed electromagnetic field stimulation in osteogenesis and chondrogenesis: Signaling pathways and therapeutic implications. Int J Mol Sci 22:809. doi:10.3390/ijms22020809.
  • Waldorff, E. I., N. Zhang, and J. T. Ryaby. 2017. Pulsed electromagnetic field applications: A corporate perspective. J. Orthop. Transl 9:60–68. doi:10.1016/j.jot.2017.02.006.
  • Wang, Z. L. 2021 September 7. From contact electrification to triboelectric nanogenerators. Rep. Prog. Phys. 84: 10.1088/1361-6633/ac0a50
  • Xiao, C., H. Zhou, G. Liu, P. Zhang, Y. Fu, P. Gu, H. Hou, T. Tang, and X. Fan. 2011. Bone marrow stromal cells with a combined expression of BMP-2 and VEGF-165 enhanced bone regeneration. Biomed. Mater. 6:015013. doi:10.1088/1748-6041/6/1/015013.
  • Zmyslon, M. 2006. Biophysical mechanisms of electromagnetic fields interaction and health effects. Med Pr 57:29–39.