Static magnetic field modulates olfactory ensheathing cell's morphology, division, and migration activities, a biophysical approach to regeneration

IF 3.1 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Zahra Elyasigorji, Hamid Mobasheri, Luciana Dini
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Abstract

The moderate static magnetic fields (SMFs) have been used here as a non-invasive tool to study their manipulative effects on the olfactory ensheathing cells (OECs) activity, growth, morphology, and migration in culture. The OECs are involved in the regeneration of primary olfactory sensory neurons and migration into the central nervous system to repair axons damaged by infection, injury, etc., that play a pivotal role in complementary regenerative medicine. Here, OECs were isolated from the olfactory bulb and cultured to confluence. An in vitro wound healing model was formed and exposed to either parallel (PaSMF) or perpendicular (PeSMF) SMF at intensities of 30, 50, and 70 mT, and cells' morphology, podia formation, proliferation, and migration were studied by time-lapse recording. The SMFs were not cytotoxic at the intensity and exposure time applied here. The exposure of cells to 70 mT PaSMF and PeSMF increased the formation of lamellipodia and filopodia, cell migration speed, and direction of the scratch forefront cells, significantly. Treatment of cells with 70 mT PaSMF and PeSMF increased cell divisions, while 30 mT PaSMF decreased it. SMF effects on OECs division, motility, migratory direction, and velocity indicate its effect on various aspects of cell physiology and signaling at atomic and molecular levels, and have a role in tissue regeneration that involves microtubules and actin filaments formation and rearrangements. Thus, the exposure of OECs with moderate SMF might be considered a promising noninvasive approach to remotely manipulate normal and stem cell activities for therapeutic regenerative purposes in various tissues including the central nervous system.

静磁场调节嗅鞘细胞的形态、分裂和迁移活动,是一种生物物理再生方法
本文以中等静态磁场(SMFs)为非侵入性工具,研究了其对嗅鞘细胞(OECs)活性、生长、形态和迁移的影响。oec参与初级嗅觉感觉神经元的再生和向中枢神经系统迁移,修复感染、损伤等损伤的轴突,在补充再生医学中起着关键作用。在这里,从嗅球中分离出oec并进行融合培养。建立体外创面愈合模型,分别暴露于30、50和70 mT的平行(PaSMF)或垂直(PeSMF) SMF下,通过延时记录研究细胞形态、足部形成、增殖和迁移。SMFs在这里施加的强度和暴露时间下没有细胞毒性。70 mT PaSMF和PeSMF处理显著增加了细胞板足和丝足的形成、细胞迁移速度和划痕前沿细胞的方向。70 mT PaSMF和30 mT PaSMF处理细胞增加细胞分裂,而30 mT PaSMF减少细胞分裂。SMF对oec分裂、运动、迁移方向和速度的影响表明其在原子和分子水平上对细胞生理和信号传导的各个方面产生影响,并在涉及微管和肌动蛋白丝形成和重排的组织再生中发挥作用。因此,暴露于中度SMF的oec可能被认为是一种有前途的无创方法,可以远程操纵包括中枢神经系统在内的各种组织的正常和干细胞活动,以达到治疗再生的目的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.50
自引率
3.00%
发文量
97
审稿时长
4-8 weeks
期刊介绍: Journal of Tissue Engineering and Regenerative Medicine publishes rapidly and rigorously peer-reviewed research papers, reviews, clinical case reports, perspectives, and short communications on topics relevant to the development of therapeutic approaches which combine stem or progenitor cells, biomaterials and scaffolds, growth factors and other bioactive agents, and their respective constructs. All papers should deal with research that has a direct or potential impact on the development of novel clinical approaches for the regeneration or repair of tissues and organs. The journal is multidisciplinary, covering the combination of the principles of life sciences and engineering in efforts to advance medicine and clinical strategies. The journal focuses on the use of cells, materials, and biochemical/mechanical factors in the development of biological functional substitutes that restore, maintain, or improve tissue or organ function. The journal publishes research on any tissue or organ and covers all key aspects of the field, including the development of new biomaterials and processing of scaffolds; the use of different types of cells (mainly stem and progenitor cells) and their culture in specific bioreactors; studies in relevant animal models; and clinical trials in human patients performed under strict regulatory and ethical frameworks. Manuscripts describing the use of advanced methods for the characterization of engineered tissues are also of special interest to the journal readership.
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