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首页> 外文期刊>Journal of Nanobiotechnology >Intrinsically superparamagnetic Fe-hydroxyapatite nanoparticles positively influence osteoblast-like cell behaviour
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Intrinsically superparamagnetic Fe-hydroxyapatite nanoparticles positively influence osteoblast-like cell behaviour

机译:本质上超顺磁性Fe-羟基磷灰石纳米颗粒对成骨细胞样细胞行为产生积极影响

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摘要

Superparamagnetic nanoparticles (MNPs) have been progressively explored for their potential in biomedical applications and in particular as a contrast agent for diagnostic imaging, for magnetic drug delivery and more recently for tissue engineering applications. Considering the importance of having safe MNPs for such applications, and the essential role of iron in bone remodelling, this study developed and analysed novel biocompatible and bioreabsorbable superparamagnetic nanoparticles, that avoid the use of poorly tolerated magnetite based nanoparticles, for bone tissue engineering applications. MNPs were obtained by doping hydroxyapatite (HA) with Fe ions, by directly substituting Fe2+ and Fe3+ into the HA structure yielding superparamagnetic bioactive phase. In the current study, we have investigated the effects of increasing concentrations (2000 μg/ml; 1000 μg/ml; 500 μg/ml; 200 μg/ml) of FeHA MNPs in vitro using Saos-2 human osteoblast-like cells cultured for 1, 3 and 7 days with and without the exposure to a static magnetic field of 320 mT. Results demonstrated not only a comparable osteoblast viability and morphology, but increased in cell proliferation, when compared to a commercially available Ha nanoparticles, even with the highest dose used. Furthermore, FeHA MNPs exposure to the static magnetic field resulted in a significant increase in cell proliferation throughout the experimental period, and higher osteoblast activity. In vivo preliminary results demonstrated good biocompatibility of FeHA superparamagnetic material four weeks after implantation into a critical size lesion of the rabbit condyle. The results of the current study suggest that these novel FeHA MNPs may be particularly relevant for strategies of bone tissue regeneration and open new perspectives for the application of a static magnetic field in a clinical setting of bone replacement, either for diagnostic imaging or magnetic drug delivery.
机译:超顺磁性纳米颗粒(MNPs)在生物医学应用中的潜力已得到逐步研究,特别是作为诊断成像,磁性药物递送的造影剂以及最近用于组织工程应用的造影剂。考虑到安全的MNP在此类应用中的重要性以及铁在骨骼重塑中的重要作用,本研究开发并分析了新型的生物相容性和生物可吸收性超顺磁性纳米粒子,避免了将耐受性差的磁铁矿基纳米粒子用于骨骼组织工程应用。通过用Fe离子掺杂羟基磷灰石(HA),通过将Fe2 +和Fe3 +直接取代到HA结构中产生超顺磁性生物活性相,可以得到MNP。在当前的研究中,我们研究了使用Saos-2人成骨细胞样细胞培养的浓度(2000μg/ ml;1000μg/ ml;500μg/ ml;200μg/ ml)体外增加FeHA MNP的作用。在有和没有暴露于320 mT的静磁场下的第1、3和7天。结果表明,与市售的Ha纳米粒子相比,即使使用了最高剂量,其不仅具有可比的成骨细胞活力和形态,而且细胞增殖也有所提高。此外,FeHA MNPs暴露于静磁场会导致整个实验期间细胞增殖显着增加,并具有更高的成骨细胞活性。体内初步结果表明,FeHA超顺磁性材料植入兔con的临界大小病变后四周具有良好的生物相容性。目前的研究结果表明,这些新颖的FeHA MNP可能与骨组织再生策略特别相关,并为在诊断成像或磁性药物输送的临床替代骨环境中应用静磁场开辟了新的前景。 。

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