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用于磁热疗应用的氧化铁纳米颗粒的绿色溶胶-凝胶合成法。

Green Sol-Gel Synthesis of Iron Oxide Nanoparticles for Magnetic Hyperthermia Applications.

作者信息

Jesus Juliana, Regadas Joana, Costa Bárbara, Carvalho João, Pádua Ana, Henriques Célia, Soares Paula I P, Gavinho Sílvia, Valente Manuel A, Graça Manuel P F, Soreto Teixeira Sílvia

机构信息

i3N and Department of Physics, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal.

i3N/CENIMAT, Physics Department, NOVA School of Science and Technology, Campus de Caparica, NOVA University Lisbon, 2829-516 Caparica, Portugal.

出版信息

Pharmaceutics. 2024 Dec 11;16(12):1578. doi: 10.3390/pharmaceutics16121578.

Abstract

BACKGROUND/OBJECTIVES: The unique properties of iron oxide nanoparticles have attracted significant interest within the biomedical community, particularly for magnetic hyperthermia applications. Various synthesis methods have been developed to optimize these nanoparticles.

METHODS

In this study, we employed a powdered coconut water (PCW)-assisted sol-gel method to produce magnetite nanoparticles for the first time. A comprehensive analysis of the thermal (differential thermal analysis and thermogravimetry), structural (X-ray diffraction), morphological (scanning electron microscopy with energy dispersive spectroscopy), magnetic (vibrating sample magnetometer and hyperthermia), and biological (cytotoxicity essays) properties was conducted to assess their potential for magnetic hyperthermia.

RESULTS

Samples heat-treated at 700 °C and 400 °C (washed powder) for 4 h under argon presented only magnetite in their composition. The micrometer-sized particles exhibited ferrimagnetic behavior, with saturation magnetization values of 37, 76, and 10 emu/g and specific absorption rates (SAR) of 27.1, 19.9, and 14.1 W/g, respectively, for treatments at 350 °C (48 h), 700 °C (4 h), and 400 °C (washed powder, 4 h) under an argon atmosphere. Biological tests showed no cytotoxicity below 10 mg/mL.

CONCLUSIONS

The findings highlight the potential of PCW-assisted synthesis as a sustainable and efficient strategy for producing pure magnetite, with powder washing preceding the heat treatment enabling the attainment of this phase at lower temperatures. Nevertheless, the micrometer-scale dimensions is observed in the morphological analysis limit their suitability for biomedical applications.

摘要

背景/目的:氧化铁纳米颗粒的独特性质引起了生物医学界的极大兴趣,特别是在磁热疗应用方面。已经开发了各种合成方法来优化这些纳米颗粒。

方法

在本研究中,我们首次采用粉末状椰汁(PCW)辅助溶胶-凝胶法制备磁铁矿纳米颗粒。对其热学(差示热分析和热重分析)、结构(X射线衍射)、形态(带能谱的扫描电子显微镜)、磁性(振动样品磁强计和热疗)及生物学(细胞毒性试验)性质进行了全面分析,以评估它们在磁热疗方面的潜力。

结果

在氩气气氛下于700℃和400℃(洗涤后的粉末)热处理4小时的样品,其成分中仅含有磁铁矿。微米级颗粒表现出亚铁磁性行为,在氩气气氛下,分别在350℃(48小时)、700℃(4小时)和400℃(洗涤后的粉末,4小时)处理时,饱和磁化强度值分别为37、76和10 emu/g,比吸收率(SAR)分别为27.1、19.9和14.1 W/g。生物学测试表明,在浓度低于10 mg/mL时无细胞毒性。

结论

研究结果突出了PCW辅助合成作为一种可持续且高效的策略来生产纯磁铁矿的潜力,在热处理之前进行粉末洗涤能够在较低温度下获得该物相。然而,形态分析中观察到的微米级尺寸限制了它们在生物医学应用中的适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1180/11678217/775934d26830/pharmaceutics-16-01578-g001.jpg

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