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首页> 外文期刊>Stem cells translational medicine. >Externally Applied Static Magnetic Field Enhances Cardiac Retention and Functional Benefit of Magnetically Iron-Labeled Adipose-Derived Stem Cells in Infarcted Hearts
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Externally Applied Static Magnetic Field Enhances Cardiac Retention and Functional Benefit of Magnetically Iron-Labeled Adipose-Derived Stem Cells in Infarcted Hearts

机译:外部应用的静态磁场增强了令人心动的磁铁标记的脂肪衍生干细胞的心脏保留和功能益处

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摘要

Although adipose-derived stem cells (ASCs) hold the promise of effective therapy for myocardial infarction, low cardiac retention of implanted ASCs has hindered their therapeutic efficiency. We investigated whether an externally applied static magnetic field (SMF) enhances cardiac localization of "magnetic" cells and promotes heart function recovery when ASCs are preloaded with superparamagnetic iron oxide (SPIO) nanoparticles. The influence of SMF (0.1 Tesla) on the biological activities of SPIO-labeled ASCs (SPIOASCs) was investigated first. Fifty-six female rats with myocardial infarction underwent intramyocardial injection of cell culture medium (CCM) or male SPIOASCs with or without the subcutaneous implantable magnet (CCM-magnet or SPIOASC-magnet). Four weeks later, endothelial differentiation, angiogenic cytokine secretion, angiogenesis, cardiomyocyte apoptosis, cell retention, and cardiac performance were examined. The 0.1-Tsela SMF did not adversely affect the viability, proliferation, angiogenic cytokine secretion, and DNA integrity of SPIOASCs. The implanted SPIOASCs could differentiate into endothelial cell, incorporate into newly formed vessels, and secrete multiple angiogenic cytokines. Four weeks after cell transplantation, the number of cardiac SPIOASCs was significantly increased, vascular density was markedly enlarged, fewer apoptotic cardiomyocytes were present, and heart contractile function was substantially improved in the SPIOASC-magnet treated rats in comparison with the SPIOASC-treated rats. The SPIOASCs could differentiate into endothelial cells, incorporate into vessels, promote angiogenesis, and inhibit ischemic cardiomyocyte apoptosis. An externally applied SMF offered a secure environment for biological properties of SPIOASCs, increased the cardiac retention of implanted magnetic SPIOASCs, and further enhanced heart function recovery after myocardial infarction.This pilot proof-of-concept study suggests that a 0.1-Tesla static magnetic field does not adversely affect the viability, proliferation, angiogenic cytokine secretion, or DNA integrity of the superparamagnetic iron oxide-labeled adipose-derived stem cells (SPIOASCs). Implantation of adipose-derived stem cells promotes myocardial neovascularization and inhibits ischemic cardiomyocyte apoptosis through endothelial differentiation, incorporation into vessels, and paracrine factor secretion. An externally applied static magnetic field enhanced myocardial retention of intramyocardially injected "magnetic" SPIOASCs and promoted cardiac function recovery after myocardial infarction. With further preclinical optimization, this approach may improve the outcome of current stem cell therapy for ischemic myocardial infarction.
机译:虽然脂肪衍生的干细胞(ASCS)持有有效治疗对心肌梗死的有效治疗的承诺,但植入的ASCS的低心脏保留阻碍了它们的治疗效率。我们研究了外部应用的静磁场(SMF)是否增强了“磁性”细胞的心脏定位,并在用超顺磁性氧化铁(SPIO)纳米颗粒预加载ASC时促进心脏功能恢复。首先研究了SMF(0.1 Tesla)对Spio标记的ascs(Spioascs)生物活性的影响。五十六个雌性大鼠具有心肌梗死的肌动脉内注射细胞培养基(CCM)或具有或没有皮下可植入磁体(CCM-磁体或SpioSAC-MOLETY)的雄性孢子。检查了四周后,检查内皮分化,血管生成细胞因子分泌,血管生成,心肌细胞凋亡,细胞保留和心脏能。 0.1-TSELA SMF对SpioSACS的可行性,增殖,血管生成细胞因子分泌和DNA完整性产生不利影响。植入的锭剂可以分化为内皮细胞,掺入新形成的血管中,并分泌多个血管生成细胞因子。细胞移植四周后,心脏孢子的数量显着增加,血管密度明显增大,存在较少的凋亡心细胞,并且与SpioAc自处理的大鼠相比,心脏磁体处理大鼠基本上改善了心脏收缩功能。 Spiooascs可以分化为内皮细胞,掺入血管,促进血管生成,抑制缺血性心肌细胞凋亡。外部申请的SMF为SpioAcs的生物学性质提供了安全的环境,增加了植入磁性SpioSoS的心脏保留,并且在心肌梗死后进一步增强了心功能恢复。这项试点证明研究表明,0.1-Tesla静态磁场表明不会对超顺磁性氧化铁标记的脂肪衍生的干细胞(SpioSASCS)产生不利影响的可行性,增殖,血管生成细胞因子分泌物或DNA完整性。植入脂肪衍生的干细胞通过内皮分化,掺入血管和旁静脉因子分泌物来促进心肌新生血管形成并抑制缺血性心肌细胞凋亡。外部应用的静态磁场增强了心肌内注射的“磁性”孢子的心肌保留,并在心肌梗死后促进心功能恢复。采用进一步的临床前优化,这种方法可以改善当前干细胞治疗的缺血性心肌梗死的结果。

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