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首页> 外文期刊>Carbohydrate Polymers: Scientific and Technological Aspects of Industrially Important Polysaccharides >One-pot preparation of hyaluronic acid-coated iron oxide nanoparticles for magnetic hyperthermia therapy and targeting CD44-overexpressing cancer cells
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One-pot preparation of hyaluronic acid-coated iron oxide nanoparticles for magnetic hyperthermia therapy and targeting CD44-overexpressing cancer cells

机译:透明质酸涂层氧化铁纳米粒子的单罐制剂用于磁体热疗治疗和靶向CD44-过度抑制癌细胞

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摘要

In the present study, a facile one-pot hydrothermal method is introduced for preparation of hyaluronic acidcoated Fe3O4 nanoparticles (Fe3O4@HA NPs) for theranostic applications. In the proposed method, hyaluronic acid acts simultaneously as a biocompatible coating layer and as a targeting ligand for CD44 receptor overexpressed on the surface of breast cancer cells. The obtained product with narrow hydrodynamic size distribution exhibited a high colloidal stability at physiological pH for more than three months. Cytotoxicity measurements indicated a negligible toxicity of the prepared sample against L929 normal cells. Preferential targeting of Fe3O4@HA NPs to CD44-overexpressing cancer cells was studied by comparing the uptake of the prepared nanoparticles by MDA-MB-231 cancer cells (positive CD44 expression) and L929 normal cells (negative CD44 expression). Uptake of the Fe3O4@HA NPs by MDA-MB-231 cells was found to be 4-fold higher than the normal cells. Also, the in vitro analysis showed that, the uptake of Fe3O4@HA NPs by MDA-MB-231 breast cancer cells is significantly enhanced as compared to non-targeted dextran-coated Fe(3)O(4)NPs. Moreover, the heat generation capability of the Fe3O4@HA NPs for magnetic hyperthermia application was studied by exposing the prepared nanoparticles to different safe alternating magnetic fields (f = 120 kHz, H = 8, 10, and 12 kA/m). The intrinsic loss power obtained for Fe3O4@HA NPs was about 3.5 nHm(2)/kg, which is about 25-fold larger than that of obtained for commercial available Fe3O4 nanoparticles for biomedical applications. Good colloidal stability, biocompatibility, high heating efficacy, and targeting specificity to CD44 receptor-overexpressing cancer cells could make the Fe3O4@HA NPs as a promising multifunctional platform for diagnosis and therapeutic applications.
机译:在本研究中,引入了透明质酸酸涂覆的Fe3O4纳米颗粒(Fe3O4 @ HA NPS)的容易单壶水热法用于治疗方法。在该方法中,透明质酸同时作用作为生物相容性涂层,作为在乳腺癌细胞表面上过表达的CD44受体的靶向配体。具有窄流体动力尺寸分布的所得产物在生理pH下表现出高度三个月的高胶体稳定性。细胞毒性测量表明,制备样品对L929正常细胞的毒性可忽略不计。通过比较MDA-MB-231癌细胞(阳性CD44表达)和L929正常细胞(阴性CD44表达)的制备的纳米颗粒的摄取来研究Fe3O4 @ HA NPS至CD44-过度抑制癌细胞的优先靶向。发现MDA-MB-231细胞的Fe3O4 @ HA NPS的摄取为4倍,比正常细胞高。此外,与非靶向葡聚糖涂覆的Fe(3)O(4)NPS相比,体外分析表明,MDA-MB-231乳腺癌细胞的Fe3O4 @ HA NP的摄取显着提高了显着提高。此外,通过将制备的纳米颗粒暴露于不同的安全交变磁场(F = 120kHz,H = 8,10和12k / m)来研究Fe3O4 @ HA NPS的发热能力。获得Fe3O4 @ HA NPS的内在损耗功率约为3.5nhm(2)/ kg,其比商业可用Fe3O4纳米颗粒用于生物医学应用的约25倍。良好的胶体稳定性,生物相容性,高加热功效以及对CD44受体过表达癌细胞的靶向特异性可以使FE3O4 @ HA NPS作为诊断和治疗应用的有希望的多功能平台。

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