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评估基于脂质的纳米颗粒在细胞周期和自噬相关的细胞内积累情况。

Evaluating cell cycle- and autophagy-associated cellular accumulation of lipid-based nanoparticles.

作者信息

Wang Yisha, Luo Gan, Wang Haiyang, Zheng Yue, Xu Xiao, Zhou Wenbin, Lin Junrong, Chen Baocheng, Guo Yangfu, Jin Yifeng, Sui Meihua

机构信息

School of Basic Medical Sciences and Sir Run Run Shaw Hospital, Zhejiang University School of Medicine, Hangzhou, China.

School of Clinical Medicine, Hangzhou Medical College, Hangzhou, China.

出版信息

Nat Commun. 2025 Jul 1;16(1):5964. doi: 10.1038/s41467-025-60962-4.

Abstract

Little is known about how cell cycle and autophagy, two fundamental life processes, affect cellular accumulation of nanoparticles. What's even more tough is that several long-lasting methodological barriers have hindered the progress of related research. Here we firstly show the construction of a multi-functional platform for overcoming existing methodological obstacles through integrating multiple technical approaches including autophagy-related gene 7 knockout to specifically block autophagy, PIP-FUCCI transfection and mitotic shake-off to thoroughly separate cell cycle phases, and 3D reconstruction to stereoscopically evaluate cellular accumulation of nanoparticles. Further application of this platform reveals that after a 2-hour incubation of lipid-based nanoparticles, G2-phase and M-phase cells, two populations previously muddled up together as G2/M-phase cells, respectively exhibited the maximum and minimum nanoparticle accumulation. Meanwhile, our data preliminarily suggest enhanced nanoparticle accumulation by autophagy blockade. Besides cell cycle and autophagy, comprehensive statistical analyses reveal a close association between cellular accumulation of nanoparticles and nanoparticle type. This study not only provides a valuable technical strategy, but uncovers important characteristics of cellular accumulation of nanoparticles, offering new insights for optimization and application of nanomedicines.

摘要

关于细胞周期和自噬这两个基本生命过程如何影响纳米颗粒在细胞内的积累,我们了解得很少。更棘手的是,几个长期存在的方法学障碍阻碍了相关研究的进展。在此,我们首次展示了一个多功能平台的构建,该平台通过整合多种技术方法克服现有方法学障碍,这些方法包括特异性阻断自噬的自噬相关基因7敲除、PIP-FUCCI转染和有丝分裂摇落以彻底分离细胞周期阶段,以及3D重建以立体评估纳米颗粒在细胞内的积累。该平台的进一步应用表明,在基于脂质的纳米颗粒孵育2小时后,之前作为G2/M期细胞混在一起的G2期和M期细胞,分别表现出最大和最小的纳米颗粒积累。同时,我们的数据初步表明自噬阻断可增强纳米颗粒的积累。除了细胞周期和自噬,综合统计分析揭示了纳米颗粒在细胞内的积累与纳米颗粒类型之间存在密切关联。本研究不仅提供了一种有价值的技术策略,还揭示了纳米颗粒在细胞内积累的重要特征,为纳米药物的优化和应用提供了新的见解。

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