College of Engineering and Applied Sciences, State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Chemistry and Biomedicine Innovation Center, Nanjing University, Nanjing 210023, China.
Zhejiang Cancer Hospital, The Key Laboratory of Zhejiang Province for Aptamers and Theranostics, Hangzhou Institute of Medicine (HIM), Chinese Academy of Sciences, Hangzhou 310022, China.
J Am Chem Soc. 2024 Jan 31;146(4):2514-2523. doi: 10.1021/jacs.3c10704. Epub 2024 Jan 21.
Precise mapping and regulation of cell surface receptors hold immense significance in disease treatment, such as cancer, infection, and neurodisorders, but also face enormous challenges. In this study, we designed a series of adjustable multivalent aptamer-based DNA nanostructures to precisely control their interaction with receptors in tumor cells. By profiling surface receptors on 12 cell lines using 10 different aptamers, we generated a heatmap that accurately distinguished between various tumor types based on multiple markers. We then incorporated these aptamers onto DNA origami structures to regulate receptor recognition, with patch-like structures demonstrating a tendency to be trapped on the cell surface and with tube-like structures showing a preference for internalization. Through precise control of aptamer species, valence, and geometric patterns, we found that multiheteroreceptor-mediated recognition not only favored the specific binding of nanostructures to tumor cells but also greatly enhanced intracellular uptake by promoting clathrin-dependent endocytosis. Specifically, we achieved over 5-fold uptake in different tumor cells versus normal cells using tube-like structures modified with different diheteroaptamer pairs, facilitating targeted drug delivery. Moreover, patch-like structures with triheteroaptamers guided specific interactions between macrophages and tumor cells, leading to effective immune clearance. This programmable multivalent system allows for the precise regulation of cell recognition using multiple parameters, demonstrating great potential for personalized tumor treatment.
精确绘制和调控细胞表面受体在疾病治疗中具有重要意义,如癌症、感染和神经紊乱等,但也面临巨大的挑战。在这项研究中,我们设计了一系列可调节的基于多价适体的 DNA 纳米结构,以精确控制它们与肿瘤细胞表面受体的相互作用。通过使用 10 种不同的适体对 12 种细胞系的表面受体进行分析,我们生成了一张热图,该热图可以根据多种标记物准确地区分不同的肿瘤类型。然后,我们将这些适体整合到 DNA 折纸结构中,以调节受体识别,具有片状结构的纳米结构倾向于被困在细胞表面,而管状结构则更倾向于内化。通过精确控制适体种类、价态和几何图案,我们发现多异源受体介导的识别不仅有利于纳米结构与肿瘤细胞的特异性结合,还通过促进网格蛋白依赖性内吞作用极大地增强了细胞内摄取。具体来说,我们使用带有不同二异源适体对的管状结构在不同的肿瘤细胞中实现了超过 5 倍的摄取,相对于正常细胞而言,这有助于靶向药物递送。此外,带有三异源适体的片状结构引导巨噬细胞和肿瘤细胞之间的特异性相互作用,从而实现有效的免疫清除。这种可编程的多价系统允许使用多个参数精确调控细胞识别,为个性化肿瘤治疗提供了巨大的潜力。