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Anisotropic Gold Nanoparticle-Cell Interactions Mediated by Collagen

机译:胶原介导的各向异性金纳米颗粒与细胞的相互作用

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摘要

Gold nanoparticles (AuNPs) are the groundwork of a large variety of applications in the biomedical field. Further development and a better understanding of this versatile platform will lead to an expansion of potential applications. In this study, we propose a facile synthesis of AuNPs using hydrogen peroxide as a reducing agent and collagen as a stabilizing agent. Our synthetic approach results in “raspberry”-like AuNPs with a mean diameter of 60 nm, as revealed by electron microscopy. The optical properties of the AuNPs were assessed by UV-Vis and surface-enhanced Raman scattering (SERS), and their stability and in vitro cytotoxicity were evaluated as well. HeLa cell viability values were only modestly affected compared to control, with the highest concentration tested displaying a 20% decrease in cellular viability. The dose-dependent cellular internalization in the 20–60 nM range indicate the highest internalization rate at 60 nM and uptake values as high as 35%. This result correlated well with the viability results. These type of anisotropic AuNPs are proposed for biomedical applications such as hyperthermia, contrast agents or imaging. Therefore, our findings offer a platform for potential biological applications such as sensing and imaging, due to their unique physico-chemical features.
机译:金纳米颗粒(AuNPs)是生物医学领域各种应用的基础。对该多功能平台的进一步开发和更好的理解将导致潜在应用的扩展。在这项研究中,我们建议使用过氧化氢作为还原剂和胶原蛋白作为稳定剂的AuNPs的轻松合成。我们的合成方法可以得到“树莓”状的AuNP,平均直径为60 nm,如电子显微镜所揭示的那样。 AuNPs的光学性质通过紫外可见光谱和表面增强拉曼散射(SERS)进行了评估,并且还评估了它们的稳定性和体外细胞毒性。与对照组相比,HeLa细胞活力值仅受到了中等程度的影响,测试的最高浓度显示细胞活力降低了20%。在20–60 nM范围内,剂量依赖性细胞内化表明内化率最高,为60 nM,吸收值高达35%。该结果与生存力结果很好地相关。这些类型的各向异性AuNP被提议用于生物医学应用,例如热疗,造影剂或成像。因此,由于其独特的理化特性,我们的发现为潜在的生物学应用(如传感和成像)提供了平台。

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