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磷脂启发的烷氧基化诱导发光 COF 纳米载体的结晶和细胞摄取。

Phospholipid-inspired alkoxylation induces crystallization and cellular uptake of luminescent COF nanocarriers.

机构信息

College of Materials Science and Engineering, Hunan University, 2 Lushan S Rd, Changsha, 410082, PR China.

Lanzhou University Second Hospital, No. 82 Cuiyingmen, Lanzhou, 730030, PR China.

出版信息

Biomaterials. 2024 Apr;306:122503. doi: 10.1016/j.biomaterials.2024.122503. Epub 2024 Feb 7.

DOI:10.1016/j.biomaterials.2024.122503
PMID:38359508
Abstract

The porous nature and structural variability of covalent organic frameworks (COFs) make them preferred for drug loading and delivery applications. However, most COF materials suffer from poor luminescent properties and inefficiency for cell uptake. Herein, we experimentally demonstrate the crucial role of long alkoxy chains in the synthesis of crystalline COF nanostructures with high cellular uptake efficiency. After luminescence integration through band engineering, the semiconducting COF exhibits an optical bandgap of 2.05 eV, an emission wavelength of 632 nm, a high quantum yield of 37 %, and excellent fluorescence stability (100 % at 3 h). Such excellent optical properties of the designed COF nanocarriers enable quantitative evaluations of cellular uptake and visual tracking of drug delivery. It was demonstrated that the cellular uptake efficiency was enhanced by orders of magnitude for the COF after the introduction of long n-octyloxy chains, which firstly delivered the anticancer camptothecin (CPT) to cell lysosomes, and then underwent "endo/lysosomal escape" to induce cell apoptosis. In vivo assay evidenced a significant enhancement in the therapeutic effect with a 96 % inhibition of tumor growth after 14 days of treatment. This progress sheds light on designing cutting-edge drug delivery nanosystems based on COF materials with integrated diagnostic and therapeutic functions.

摘要

共价有机框架(COFs)的多孔性质和结构可变性使其成为药物负载和输送应用的首选。然而,大多数 COF 材料的发光性能较差,细胞摄取效率也不高。在此,我们通过实验证明了在合成具有高细胞摄取效率的结晶 COF 纳米结构中长烷氧基链的重要作用。通过能带工程进行发光集成后,半导体 COF 的光学带隙为 2.05 eV,发射波长为 632 nm,量子产率为 37%,荧光稳定性极好(3 h 时为 100%)。设计的 COF 纳米载体具有如此优异的光学性能,可实现对细胞摄取的定量评估和药物输送的可视化跟踪。研究表明,在引入长正辛氧基链后,COF 的细胞摄取效率提高了几个数量级,首先将抗癌药物喜树碱(CPT)递送到细胞溶酶体中,然后经历“内体/溶酶体逃逸”诱导细胞凋亡。体内实验证明,在治疗 14 天后,肿瘤生长抑制率达到 96%,治疗效果显著增强。这一进展为设计具有诊断和治疗功能的 COF 基新型药物输送纳米系统提供了思路。

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