设计抗癌药物输送纳米粒子的 "阴阳哲学"。

Biomaterials Translational Pub Date : 2024-06-28 eCollection Date: 2024-01-01 DOI:10.12336/biomatertransl.2024.02.005
Yanwen Ai, Yuan Tian, Jiaming Qiao, Changnan Wang, Huafei Li
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引用次数: 0

摘要

了解体内传输过程可为设计具有更高药效和更少脱靶效应的理想纳米粒子(NPs)提供指导。由于体内存在各种生理屏障,粒度、形态、表面电位、结构稳定性等许多因素都可能影响 NPs 的输送过程。在此,我们总结了 NP 理化特性对四个连续体内传输步骤的不同影响:(1)随血液在血管内流动,(2)穿过血管壁进入肿瘤组织,(3)通过间质进行瘤内运输,以及(4)癌细胞的细胞摄取和细胞内输送。我们发现,目前NP设计共识背后的理念与中国传统文化中的 "阴阳 "理论有某些相似之处。几乎所有的理化特性,无论大小、长短、Zeta 电位正负,都是一把双刃剑。在优化颗粒设计时,应充分考虑潜在益处与副作用、药物选择性与可及性之间的平衡,这与 "阴阳和谐 "有异曲同工之妙。本文全面回顾了纳米粒子的研究进展,重点介绍了纳米粒子在肿瘤靶向、药物输送和细胞吸收方面的独特功能。此外,本文还探讨了未来的发展趋势和潜在障碍,旨在揭示这些特性如何影响 NPs 的生物活性,并为 NPs 的靶向递送提供理论指导。
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"Yin-Yang philosophy" for the design of anticancer drug delivery nanoparticles.

Understanding the in vivo transport process provides guidelines for designing ideal nanoparticles (NPs) with higher efficacy and fewer off-target effects. Many factors, such as particle size, morphology, surface potential, structural stability, and etc., may influence the delivering process of NPs due to the existence of various physiological barriers within the body. Herein, we summarise the distinct influences of NP physicochemical properties on the four consecutive in vivo transport steps: (1) navigating with bloodstream within blood vessels, (2) transport across vasculature walls into tumour tissues, (3) intratumoural transport through the interstitial space, and (4) cellular uptake & intracellular delivery by cancerous cells. We found that the philosophy behind the current consensus for NP design has certain similarities to the "Yin-Yang" theory in traditional Chinese culture. Almost all physicochemical properties, regardless of big or small sizes, long or short length, positive or negative zeta potentials, are double-edged swords. The balance of potential benefits and side effects, drug selectivity and accessibility should be fully considered when optimising particle design, similar to the "Yin-Yang harmony". This paper presents a comprehensive review of the advancements in NPs research, focusing on their distinct features in tumour targeting, drug delivery, and cell uptake. Additionally, it deliberates on future developmental trends and potential obstacles, thereby aiming to uncover the ways these characteristics influence the NPs' biological activity and provide theoretical guidance for the targeted delivery of NPs.

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