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Multiscale Analysis of Metal Oxide Nanoparticles in Tissue: Insights into Biodistribution and Biotransformation

机译:组织中金属氧化物纳米颗粒的多尺度分析:生物分布和生物分布的见解

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摘要

Metal oxide nanoparticles have emerged as exceptionally potent biomedical sensors and actuators due to their unique physicochemical features. Despite fascinating achievements, the current limited understanding of the molecular interplay between nanoparticles and the surrounding tissue remains a major obstacle in the rationalized development of nanomedicines, which is reflected in their poor clinical approval rate. This work reports on the nanoscopic characterization of inorganic nanoparticles in tissue by the example of complex metal oxide nanoparticle hybrids consisting of crystalline cerium oxide and the biodegradable ceramic bioglass. A validated analytical method based on semiquantitative X‐ray fluorescence and inductively coupled plasma spectrometry is used to assess nanoparticle biodistribution following intravenous and topical application. Then, a correlative multiscale analytical cascade based on a combination of microscopy and spectroscopy techniques shows that the topically applied hybrid nanoparticles remain at the initial site and are preferentially taken up into macrophages, form apatite on their surface, and lead to increased accumulation of lipids in their surroundings. Taken together, this work displays how modern analytical techniques can be harnessed to gain unprecedented insights into the biodistribution and biotransformation of complex inorganic nanoparticles. Such nanoscopic characterization is imperative for the rationalized engineering of safe and efficacious nanoparticle‐based systems.
机译:由于其独特的物理化学特征,金属氧化物纳米粒子被出现为具有异常有效的生物医学传感器和致动器。尽管取得了迷人的成就,但目前对纳米颗粒和周围组织之间的分子相互作用的有限理解仍然是纳米胺的合理发展中的主要障碍,这反映了它们临床批准率差。该工作报告了由氧化铈氧化铈和可生物降解的陶瓷生物制备组成的复合金属氧化物纳米粒子杂交体的组织中无机纳米粒子的纳米镜表征。一种基于半定位X射线荧光和电感耦合等离子体光谱法的验证的分析方法用于评估静脉内和局部施用后的纳米粒子生物分布。然后,基于显微镜和光谱技术组合的相关多尺度分析级联表明,局部施加的杂化纳米颗粒保留在初始位点,优先溶于巨噬细胞,在其表面上形成磷灰石,并导致脂质的积累增加他们的周围环境。在一起,这项工作显示了如何利用现代分析技术如何利用前所未有的洞察复杂无机纳米颗粒的生物分布和生物转化。这种纳米镜表征对于基于安全和有效的纳米粒子系统的合理化工程是必不可少的。

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