活性HER-2靶向Fe3O4@Au纳米颗粒对乳腺癌分子放射增敏的合成和表征。

IF 2.2 4区 工程技术 Q3 PHARMACOLOGY & PHARMACY
Bioimpacts Pub Date : 2023-01-01 DOI:10.34172/bi.2022.23682
Behnaz Babaye Abdollahi, Marjan Ghorbani, Hamed Hamishehkar, Reza Malekzadeh, Alireza Farajollahi
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引用次数: 8

摘要

本研究旨在评估分子靶向氧化铁/金纳米颗粒核/壳(Fe3O4@AuNPs)对SKBr-3乳腺癌细胞肿瘤放射增敏的影响。方法:将曲妥珠单抗(TZ,赫赛汀)偶联聚乙二醇化(PEG)-Fe3O4@AuNPs (41.5 nm)合成人表皮生长因子受体-2 (HER-2)靶向Fe3O4@AuNPs。首先,用PEG-SH修饰Fe3O4@Au核壳NPs合成PEG-Fe3O4@AuNPs。然后,将TZ与OPSS-PEG-SVA反应,与PEG-Fe3O4@AuNPs偶联。利用傅里叶变换红外(FT-IR)光谱、动态光散射(DLS)和透射电子显微镜(TEM)以及紫外-可见光谱对NPs的结构、大小和形态进行了评价。用不同浓度的TZ、Fe3O4@Au和TZ-PEG-Fe3O4@AuNPs处理SKBr-3细胞,辐照剂量分别为2、4和8 Gy (x射线能量为6和18 MV)。采用MTT法、BrdU法和流式细胞术评估细胞毒性。结果:结果表明,靶向TZ-PEG-Fe3O4@AuNPs可显著改善细胞摄取。各实验组的细胞毒作用均以较高的浓度、辐射剂量和能量依赖方式增强。TZ、Fe3O4@Au和TZ-PEG-Fe3O4@AuNPs与单独18 MV 8 Gy剂量的辐射相比,分别使细胞活力降低1.35 (P=0.021)、1.95 (P=0.024)和1.15 (P=0.013)。在8 Gy剂量6 MV照射下,这三个数值分别为1.27、1.58和1.10。结论:通过分子靶向HER-2的优化治疗方法,成功获得了TZ-PEG-Fe3O4@AuNPs超高压放疗对乳腺癌的放射增敏效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Synthesis and characterization of actively HER-2 Targeted Fe<sub>3</sub>O<sub>4</sub>@Au nanoparticles for molecular radiosensitization of breast cancer.

Synthesis and characterization of actively HER-2 Targeted Fe<sub>3</sub>O<sub>4</sub>@Au nanoparticles for molecular radiosensitization of breast cancer.

Synthesis and characterization of actively HER-2 Targeted Fe<sub>3</sub>O<sub>4</sub>@Au nanoparticles for molecular radiosensitization of breast cancer.

Synthesis and characterization of actively HER-2 Targeted Fe3O4@Au nanoparticles for molecular radiosensitization of breast cancer.

Introduction: The present study was done to assess the effect of molecularly-targeted core/shell of iron oxide/gold nanoparticles (Fe3O4@AuNPs) on tumor radiosensitization of SKBr-3 breast cancer cells. Methods: Human epidermal growth factor receptor-2 (HER-2)-targeted Fe3O4@AuNPs were synthesized by conjugating trastuzumab (TZ, Herceptin) to PEGylated (PEG)-Fe3O4@AuNPs (41.5 nm). First, the Fe3O4@Au core-shell NPs were decorated with PEG-SH to synthesize PEG-Fe3O4@AuNPs. Then, the TZ was reacted to OPSS-PEG-SVA to conjugate with the PEG-Fe3O4@AuNPs. As a result, structure, size and morphology of the developed NPs were assessed using Fourier-transform infrared (FT-IR) spectroscopy, dynamic light scattering (DLS) and transmission electron microscopy (TEM), and ultraviolet-visible spectroscopy. The SKBr-3 cells were treated with different concentrations of TZ, Fe3O4@Au, and TZ-PEG-Fe3O4@AuNPs for irradiation at doses of 2, 4, and 8 Gy (from X-ray energy of 6 and 18 MV). Cytotoxicity was assessed by MTT assay, BrdU assay, and flow cytometry. Results: Results showed that the targeted TZ-PEG-Fe3O4@AuNPs significantly improved cell uptake. The cytotoxic effects of all the studied groups were increased in a higher concentration, radiation dose and energy-dependent manner. A combination of TZ, Fe3O4@Au, and TZ-PEG-Fe3O4@AuNPs with radiation reduced cell viability by 1.35 (P=0.021), 1.95 (P=0.024), and 1.15 (P=0.013) in comparison with 8 Gy dose of 18 MV radiation alone, respectively. These amounts were obtained as 1.27, 1.58, and 1.10 for 8 Gy dose of 6 MV irradiation, respectively. Conclusion: Radiosensitization of breast cancer to mega-voltage radiation therapy with TZ-PEG-Fe3O4@AuNPs was successfully obtained through an optimized therapeutic approach for molecular targeting of HER-2.

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来源期刊
Bioimpacts
Bioimpacts Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
4.80
自引率
7.70%
发文量
36
审稿时长
5 weeks
期刊介绍: BioImpacts (BI) is a peer-reviewed multidisciplinary international journal, covering original research articles, reviews, commentaries, hypotheses, methodologies, and visions/reflections dealing with all aspects of biological and biomedical researches at molecular, cellular, functional and translational dimensions.
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