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首页> 外文期刊>Journal of Inorganic Biochemistry: An Interdisciplinary Journal >Europium-doped Gd2O3 nanotubes cause the necrosis of primary mouse bone marrow stromal cells through lysosome and mitochondrion damage
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Europium-doped Gd2O3 nanotubes cause the necrosis of primary mouse bone marrow stromal cells through lysosome and mitochondrion damage

机译:G掺杂的Gd2O3纳米管通过溶酶体和线粒体损伤导致小鼠原代骨髓基质细胞坏死

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摘要

With the wide applications of europium-doped Gd2O3 nanoparticles (Gd2O3:Eu3+ NPs) in biomedical fields, it will inevitably increase the chance of human exposure. It was reported that Gd2O3:Eu3+ NPs could accumulate in bone. However, there have been few reports about the potential effect of Gd2O3:Eu3+ NPs on bone marrow stromal cells (BMSCs). In this study, the Gd2O3:Eu3+ nanotubes were prepared and characterized by powder X-ray diffraction (XRD), photoluminescence (PL) excitation and emission spectra, scanning electron microscope (SEM), and transmission electron microscopy (TEM). The cytotoxicity of Gd2O3:Eu3+ nanotubes on BMSCs and the associated mechanisms were further studied. The results indicated that they could be uptaken into BMSCs by an energy-dependent and macropinocytosis-mediated endocytosis process, and primarily localized in lysosome. Gd2O3:Eu3+ nanotubes effectively inhibited the viability of BMSCs in concentration and time-dependent manners. A significant increase in the percentage of late apoptoticecrotic cells, lactate dehydrogenase (LDH) leakage and the number of PI-stained cells was found after BMSCs were treated by 10, 20, and 40 mu g/mL of Gd2O3:Eu3+ nanotubes for 12 h. No obvious DNA ladders were detected, but a dispersed band was observed. The above results revealed that Gd2O3:Eu3+ nanotubes could trigger cell death by necrosis instead of apoptosis. Two mechanisms were involved in Gd2O3:Eu3+ nanotube-induced BMSCs necrosis: lysosomal rupture and release of cathepsins B; and the overproduction of reactive oxygen species (ROS) injury to the mitochondria and DNA. The study provides novel evidence to elucidate the toxicity mechanisms and may be beneficial to more rational applications of these nanomaterials in the future. (C) 2015 Elsevier Inc. All rights reserved.
机译:随着bio掺杂的Gd2O3纳米颗粒(Gd2O3:Eu3 + NPs)在生物医学领域的广泛应用,将不可避免地增加人类暴露的机会。据报道,Gd2O3:Eu3 + NPs可能在骨骼中积累。但是,关于Gd2O3:Eu3 + NP对骨髓基质细胞(BMSC)的潜在影响的报道很少。在这项研究中,制备了Gd2O3:Eu3 +纳米管,并通过粉末X射线衍射(XRD),光致发光(PL)激发和发射光谱,扫描电子显微镜(SEM)和透射电子显微镜(TEM)对其进行了表征。进一步研究了Gd2O3:Eu3 +纳米管对骨髓间充质干细胞的细胞毒性作用及其相关机制。结果表明,它们可以通过能量依赖性和巨胞吞作用介导的内吞作用过程摄取到骨髓间充质干细胞中,并且主要位于溶酶体中。 Gd2O3:Eu3 +纳米管以浓度和时间依赖性方式有效抑制BMSCs的活力。用10、20和40μg/ mL的Gd2O3:Eu3 +纳米管处理BMSC后,发现晚期凋亡/坏死细胞百分比,乳酸脱氢酶(LDH)泄漏和PI染色的细胞数量显着增加。 12小时没有检测到明显的DNA阶梯,但是观察到分散的条带。上述结果表明,Gd2O3:Eu3 +纳米管可以通过坏死而不是凋亡来触发细胞死亡。 Gd2O3涉及两个机制:Eu3 +纳米管诱导的BMSCs坏死:溶酶体破裂和组织蛋白酶B的释放。以及活性氧(ROS)对线粒体和DNA的过度生产。这项研究提供了新的证据来阐明其毒性机理,并且可能对将来这些纳米材料的更合理应用有益。 (C)2015 Elsevier Inc.保留所有权利。

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