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四面体 DNA 折纸在肿瘤中的肝和肾细胞摄取和转运的可视化。

Visualization of the hepatic and renal cell uptake and trafficking of tetrahedral DNA origami in tumour.

机构信息

Division of Physical Biology, CAS Key Laboratory of Interfacial Physics and Technology, Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai, China.

University of Chinese Academy of Sciences, Beijing, China.

出版信息

Cell Prolif. 2024 Aug;57(8):e13643. doi: 10.1111/cpr.13643. Epub 2024 Apr 4.

Abstract

DNA nanostructures, known for their programmability, ease of modification, and favourable biocompatibility, have gained widespread application in the biomedical field. Among them, Tetrahedral DNA Origami (TDOs), as a novel DNA nanostructure, possesses well-defined structures, multiple modification sites, and large cavities, making it a promising drug carrier. However, current understanding of TDOs' interactions with biological systems, particularly with target cells and organs, remains unexplored, limiting its further applications in biomedicine. In this work, we prepared TDOs with an average particle size of 40 nm and labelled them with Cy5 fluorescent molecules. Following intravenous injection in mice, the uptake of TDOs by different types of liver and kidney cells was observed. Results indicated that TDOs accumulate in renal tubules and are metabolized by Kupffer cells, epithelial cells, and hepatocytes in the liver. Additionally, in a tumour-bearing mouse model, TDOs passively targeted tumour tissues and exhibited excellent tumour penetration and retention after rapid metabolism in hepatocytes. Our findings provide crucial insights for the development of TDO-based drug delivery systems.

摘要

DNA 纳米结构以其可编程性、易于修饰和良好的生物相容性而备受关注,已广泛应用于生物医学领域。其中,四面体 DNA 折纸(Tetrahedral DNA Origami,TDO)作为一种新型的 DNA 纳米结构,具有明确的结构、多个修饰位点和较大的空腔,使其成为一种很有前途的药物载体。然而,目前对于 TDO 与生物系统的相互作用,特别是与靶细胞和器官的相互作用,知之甚少,限制了其在生物医学中的进一步应用。在这项工作中,我们制备了平均粒径为 40nm 的 TDO,并将其标记上 Cy5 荧光分子。在小鼠体内静脉注射后,观察到 TDO 被不同类型的肝和肾细胞摄取。结果表明,TDO 在肾小管中积累,并被肝脏中的库普弗细胞、上皮细胞和肝细胞代谢。此外,在荷瘤小鼠模型中,TDO 被动靶向肿瘤组织,并在迅速代谢为肝细胞后表现出优异的肿瘤穿透和滞留能力。我们的研究结果为基于 TDO 的药物传递系统的开发提供了重要的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5d1/11294413/20bcf8495d76/CPR-57-e13643-g003.jpg

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