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Magnetic Field Dynamic Strategies for the Improved Control of the Angiogenic Effect of Mesenchymal Stromal Cells

机译:磁场动态策略用于改善间充质基质细胞血管生成效应的控制

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摘要

This work shows the ability to remotely control the paracrine performance of mesenchymal stromal cells (MSCs) in producing an angiogenesis key molecule, vascular endothelial growth factor (VEGF-A), by modulation of an external magnetic field. This work compares for the first time the application of static and dynamic magnetic fields in angiogenesis in vitro model, exploring the effect of magnetic field intensity and dynamic regimes on the VEGF-A secretion potential of MSCs. Tissue scaffolds of gelatin doped with iron oxide nanoparticles (MNPs) were used as a platform for MSC proliferation. Dynamic magnetic field regimes were imposed by cyclic variation of the magnetic field intensity in different frequencies. The effect of the magnetic field intensity on cell behavior showed that higher intensity of 0.45 T was associated with increased cell death and a poor angiogenic effect. It was observed that static and dynamic magnetic stimulation with higher frequencies led to improved angiogenic performance on endothelial cells in comparison with a lower frequency regime. This work showed the possibility to control VEGF-A secretion by MSCs through modulation of the magnetic field, offering attractive perspectives of a non-invasive therapeutic option for several diseases by revascularizing damaged tissues or inhibiting metastasis formation during cancer progression.
机译:这项工作表明,通过调制外部磁场,远程控制间充质基质细胞(MSCs)的斜静脉性能,在产生血管生成关键分子,血管内皮生长因子(VEGF-A)中的能力。这项工作首次比较了在体外模型中血管生成中静脉和动态磁场的应用,探索了磁场强度和动态制度对VEGF的影响MSCs的分泌电位。用氧化铁纳米颗粒(MNP)掺杂掺杂氧化铁纳米粒子(MNP)的组织支架作为MSC增殖的平台。通过不同频率中的磁场强度的循环变化施加动态磁场制度。磁场强度对细胞行为的影响表明,较高强度为0.45吨,与细胞死亡增加和血管生成效果不良有关。观察到,具有较高频率的静态和动态磁刺激导致了与较低频率制度相比的内皮细胞上的血管生成性能。这项工作表明,通过调制磁场​​来控制VEGF-A分泌,通过血运重建损伤组织或抑制癌症进展期间抑制转移形成,为几种疾病提供了有吸引力的视角。

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