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具有可转化物理化学性质的纳米粒子,用于克服生物屏障。

Nanoparticles with transformable physicochemical properties for overcoming biological barriers.

机构信息

Department of Chemistry, Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, State Key Laboratory of Molecular Engineering of Polymers, Collaborative Innovation Center of Chemistry for Energy Materials (2011-iChEM), Fudan University, Shanghai 200433, P. R. China.

Institute of Nanochemistry and Nanobiology, Shanghai University, Shanghai 200444, P. R. China.

出版信息

Nanoscale. 2023 Aug 17;15(32):13202-13223. doi: 10.1039/d3nr01332d.

Abstract

In recent years, tremendous progress has been made in the development of nanomedicines for advanced therapeutics, yet their unsatisfactory targeting ability hinders the further application of nanomedicines. Nanomaterials undergo a series of processes, from intravenous injection to precise delivery at target sites. Each process faces different or even contradictory requirements for nanoparticles to pass through biological barriers. To overcome biological barriers, researchers have been developing nanomedicines with transformable physicochemical properties in recent years. Physicochemical transformability enables nanomedicines to responsively switch their physicochemical properties, including size, shape, surface charge, , thus enabling them to cross a series of biological barriers and achieve maximum delivery efficiency. In this review, we summarize recent developments in nanomedicines with transformable physicochemical properties. First, the biological dilemmas faced by nanomedicines are analyzed. Furthermore, the design and synthesis of nanomaterials with transformable physicochemical properties in terms of size, charge, and shape are summarized. Other switchable physicochemical parameters such as mobility, roughness and mechanical properties, which have been sought after most recently, are also discussed. Finally, the prospects and challenges for nanomedicines with transformable physicochemical properties are highlighted.

摘要

近年来,先进治疗学的纳米医学发展取得了巨大进展,但它们不尽人意的靶向能力阻碍了纳米医学的进一步应用。纳米材料经历了一系列的过程,从静脉注射到在靶部位的精确传递。每个过程都对纳米颗粒通过生物屏障提出了不同的甚至相互矛盾的要求。为了克服生物屏障,研究人员近年来一直在开发具有可转换物理化学性质的纳米医学。物理化学可转换性使纳米医学能够响应地切换其物理化学性质,包括大小、形状、表面电荷等,从而使它们能够穿过一系列生物屏障并实现最大的递送效率。在这篇综述中,我们总结了具有可转换物理化学性质的纳米医学的最新进展。首先,分析了纳米医学面临的生物学难题。此外,还总结了在尺寸、电荷和形状方面具有可转换物理化学性质的纳米材料的设计和合成。还讨论了最近最受关注的其他可切换物理化学参数,如迁移率、粗糙度和机械性能。最后,强调了具有可转换物理化学性质的纳米医学的前景和挑战。

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