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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >The physicochemical and biological characterization of a 24-month-stored nanocomplex based on gold nanoparticles conjugated with cetuximab demonstrated long-term stability, EGFR affinity and cancer cell death due to apoptosis
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The physicochemical and biological characterization of a 24-month-stored nanocomplex based on gold nanoparticles conjugated with cetuximab demonstrated long-term stability, EGFR affinity and cancer cell death due to apoptosis

机译:基于金纳米粒子的金纳米颗粒的24个月储存的纳米麦单晶的物理化学和生物学特征表明,由于细胞凋亡,长期稳定性,EGFR亲和力和癌细胞死亡

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摘要

Nanotechnology is one of the most promising tools for future diagnosis and therapy. Thus, we have produced gold nanoparticles coated with cetuximab at a dose-range from 5 mu g up to 200 mu g, and prolonged stable nanocomplexes were obtained. The nanocomplexes were characterized by UV-Vis, zeta potential, TEM, fluorometry, infrared regions, XPS and atomic absorption spectrometry. For biological characterization the A431 cell line was used. Cellular uptake, target affinity and cell death were assessed using ICP-OES, immunocytochemistry and flow cytometry, respectively. The immobilization of cetuximab on the AuNPs surfaces was confirmed. The nanocomplex with 24 months of manufacturing promoted efficient EGFR binding and induced tumour cell death due to apoptosis. Significant (p < 0.05) cell death was achieved using relatively low cetuximab concentration for AuNPs coating compared to the antibody alone. Therefore, our results provided robust physicochemical and biological characterization data corroborating the cetuximab-bioconjugate AuNPs as a feasible nanocomplex for biomedical applications.
机译:纳米技术是未来诊断和治疗最有希望的工具之一。因此,我们已经产生了涂有西列妥昔单抗的金纳米颗粒,其剂量范围为5μg至200μg,得到延长的稳定纳米复合物。通过UV-Vis,Zeta电位,TEM,荧光术,红外区域,XPS和原子吸收光谱法表征纳米键复合。对于生物学表征,使用A431细胞系。使用ICP-OES,免疫细胞化学和流式细胞术评估细胞吸收,靶亲和力和细胞死亡。确认了甲烷蛋白对肛周表面上的固定化。纳米键术,制造24个月,促进了凋亡的有效EGFR结合和诱导肿瘤细胞死亡。与单独的抗体相比,使用相对低的戊酮浓度来实现显着(P <0.05)细胞死亡。因此,我们的结果提供了稳健的物理化学和生物学特征数据,其将甲磺酰-bioconjugate AUNPS提供作为一种可行的纳米核糖体,用于生物医学应用。

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