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镓纳米铁氧体的结构和热磁性质及其对体外细胞的影响。

Structural and Thermomagnetic Properties of Gallium Nanoferrites and Their Influence on Cells In Vitro.

作者信息

Orzechowska Marta, Rećko Katarzyna, Klekotka Urszula, Czerniecka Magdalena, Tylicki Adam, Satuła Dariusz, Soloviov Dmytro V, Beskrovnyy Anatoly I, Miaskowski Arkadiusz, Kalska-Szostko Beata

机构信息

Doctoral School of Exact and Natural Sciences, University of Bialystok, K. Ciołkowskiego 1K, 15-245 Białystok, Poland.

Faculty of Physics, University of Bialystok, K. Ciołkowskiego 1L, 15-245 Bialystok, Poland.

出版信息

Int J Mol Sci. 2023 Sep 16;24(18):14184. doi: 10.3390/ijms241814184.

Abstract

Magnetite and gallium substituted cuboferrites with a composition of GaFeO (0 ≤ x ≤ 1.4) were fabricated by thermal decomposition from acetylacetonate salts. The effect of Ga cation substitution on the structural and thermomagnetic behavior of 4-12 nm sized core-shell particles was explored by X-ray and neutron diffraction, small angle neutron scattering, transmission electron microscopy, Mössbauer spectroscopy, and calorimetric measurements. Superparamagnetic (SPM) behavior and thermal capacity against increasing gallium concentration in nanoferrites were revealed. The highest heat capacity typical for FeO@GaFeO and GaFeO@FeO is accompanied by a slight stimulation of fibroblast culture growth and inhibition of HeLa cell growth. The observed effect is concentration dependent in the range of 0.01-0.1 mg/mL and particles of GaFeO@FeO design have a greater effect on cells. Observed magnetic heat properties, as well as interactions with tumor and healthy cells, provide a basis for further biomedical research to use the proposed nanoparticle systems in cancer thermotherapy (magnetic hyperthermia).

摘要

通过乙酰丙酮盐热分解制备了组成式为GaFeO(0≤x≤1.4)的磁铁矿和镓取代的立方铁氧体。通过X射线和中子衍射、小角中子散射、透射电子显微镜、穆斯堡尔光谱和量热测量,研究了Ga阳离子取代对4-12纳米尺寸的核壳颗粒的结构和热磁行为的影响。揭示了纳米铁氧体中超顺磁性(SPM)行为以及热容量随镓浓度增加的变化情况。FeO@GaFeO和GaFeO@FeO典型的最高热容量伴随着对成纤维细胞培养生长的轻微刺激和对HeLa细胞生长的抑制。观察到的效应在0.01-0.1mg/mL范围内与浓度相关,且GaFeO@FeO设计的颗粒对细胞的影响更大。观察到的磁热性质以及与肿瘤细胞和健康细胞的相互作用,为进一步开展生物医学研究以在癌症热疗(磁热疗)中使用所提出的纳米颗粒系统提供了依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e191/10532423/b7d5f67fa815/ijms-24-14184-g001.jpg

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