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首页> 外文期刊>Frontiers in Chemistry >Application of Light Scattering Techniques to Nanoparticle Characterization and Development
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Application of Light Scattering Techniques to Nanoparticle Characterization and Development

机译:光散射技术在纳米颗粒表征和开发中的应用

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摘要

Over the years, the scientific importance of nanoparticles for biomedical applications has increased. The high stability and biocompatibility, together with the low toxicity of the nanoparticles developed lead to their use as targeted drug delivery systems, bioimaging systems and biosensors. The wide ranges of nanoparticles size, from 10 nm to 1 μm, as well as their optical properties, allow them to be studied using microscopy and spectroscopy techniques. In order to be effectively used, the physicochemical properties of nanoparticle formulations need to be taken into account, namely, particle size, surface charge distribution, surface derivatization and/or loading capacity and related interactions. These properties need to be optimized considering the final nanoparticle intended biodistribution and target. In this review, we cover light scattering based techniques, namely dynamic light scattering and zeta-potential, used for the physicochemical characterization of nanoparticles. Dynamic light scattering is used to measure nanoparticles size, but also, to evaluate their stability over time in suspension at different pH and temperature conditions. Zeta-potential is used to characterize nanoparticles surface charge, obtaining information about their stability and surface interaction with other molecules. In this review, we focus nanoparticle characterization and application in infection, cancer and cardiovascular diseases.
机译:多年来,纳米颗粒在生物医学应用中的科学重要性日益提高。所开发的纳米颗粒的高稳定性和生物相容性以及低毒性使得它们可以用作靶向药物递送系统,生物成像系统和生物传感器。纳米粒子的大小范围很广,从10 nm到1μm,以及它们的光学特性,使它们可以使用显微镜和光谱技术进行研究。为了有效地使用,需要考虑纳米颗粒制剂的理化性质,即粒径,表面电荷分布,表面衍生化和/或负载能力以及相关的相互作用。这些特性需要考虑最终的纳米粒子预期的生物分布和目标进行优化。在这篇综述中,我们涵盖了基于光散射的技术,即动态光散射和ζ电位,用于纳米粒子的物理化学表征。动态光散射用于测量纳米粒子的大小,还可以评估其在不同pH和温度条件下在悬浮液中随时间的稳定性。 Zeta电位用于表征纳米粒子的表面电荷,获得有关其稳定性以及与其他分子的表面相互作用的信息。在这篇综述中,我们关注纳米颗粒的表征及其在感染,癌症和心血管疾病中的应用。

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