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调控工程纳米材料与器官屏障的相互作用以增强药物传输。

Modulation of engineered nanomaterial interactions with organ barriers for enhanced drug transport.

机构信息

Translational Cell and Tissue Research Unit, Department of Imaging and Pathology, KU Leuven, Herestraat 49, B3000 Leuven, Belgium.

Department of Pharmaceutical Sciences, College of Pharmacy, University of Illinois at Chicago, Chicago, IL 60612, USA.

出版信息

Chem Soc Rev. 2023 Jul 17;52(14):4672-4724. doi: 10.1039/d1cs00574j.

Abstract

The biomedical use of nanoparticles (NPs) has been the focus of intense research for over a decade. As most NPs are explored as carriers to alter the biodistribution, pharmacokinetics and bioavailability of associated drugs, the delivery of these NPs to the tissues of interest remains an important topic. To date, the majority of NP delivery studies have used tumor models as their tool of interest, and the limitations concerning tumor targeting of systemically administered NPs have been well studied. In recent years, the focus has also shifted to other organs, each presenting their own unique delivery challenges to overcome. In this review, we discuss the recent advances in leveraging NPs to overcome four major biological barriers including the lung mucus, the gastrointestinal mucus, the placental barrier, and the blood-brain barrier. We define the specific properties of these biological barriers, discuss the challenges related to NP transport across them, and provide an overview of recent advances in the field. We discuss the strengths and shortcomings of different strategies to facilitate NP transport across the barriers and highlight some key findings that can stimulate further advances in this field.

摘要

纳米颗粒(NPs)在生物医学中的应用已经成为十年来研究的焦点。由于大多数 NPs 被探索作为载体来改变相关药物的生物分布、药代动力学和生物利用度,因此将这些 NPs 递送到感兴趣的组织仍然是一个重要的课题。迄今为止,大多数 NP 递送研究都使用肿瘤模型作为其关注的工具,并且系统给予的 NPs 对肿瘤靶向的局限性已经得到了很好的研究。近年来,研究重点也转移到了其他器官,每个器官都提出了自己独特的输送挑战需要克服。在这篇综述中,我们讨论了利用 NPs 克服四大生物屏障的最新进展,包括肺黏液、胃肠道黏液、胎盘屏障和血脑屏障。我们定义了这些生物屏障的特定特性,讨论了与 NP 跨屏障运输相关的挑战,并概述了该领域的最新进展。我们讨论了促进 NP 跨屏障运输的不同策略的优缺点,并强调了一些关键发现,这些发现可以刺激该领域的进一步发展。

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