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一种受茅膏菜启发的用于捕获和杀死癌细胞的水凝胶。

A Drosera-bioinspired hydrogel for catching and killing cancer cells.

作者信息

Li Shihui, Chen Niancao, Gaddes Erin R, Zhang Xiaolong, Dong Cheng, Wang Yong

机构信息

Department of Biomedical Engineering, College of Engineering, Pennsylvania State University, University Park, Pennsylvania 16802-6804.

出版信息

Sci Rep. 2015 Sep 23;5:14297. doi: 10.1038/srep14297.

Abstract

A variety of bioinspired materials have been successfully synthesized to mimic the sophisticated structures or functions of biological systems. However, it is still challenging to develop materials with multiple functions that can be performed synergistically or sequentially. The purpose of this work was to demonstrate a novel bioinspired hydrogel that can interact with cancer cells, functionally similar to Drosera in catching and killing prey. This hydrogel had two layers with the top one functionalized with oligonucleotide aptamers and the bottom one functionalized with double-stranded DNA. The results show that the top hydrogel layer was able to catch target cells with high efficiency and specificity, and that the bottom hydrogel layer could sequester doxorubicin (Dox) for sustained drug release. Importantly, the released Dox could kill 90% of the cells after 1-h residence of the cells on the hydrogel. After the cell release, this bifunctional hydrogel could be regenerated for continuous cell catching and killing. Therefore, the data presented in this study has successfully demonstrated the potential of developing a material system with the functions of attracting, catching and killing diseased cells (e.g., circulating tumor cells) or even invading microorganisms (e.g., bacteria).

摘要

人们已经成功合成了多种仿生材料,以模仿生物系统的复杂结构或功能。然而,开发具有多种功能且能协同或依次发挥作用的材料仍然具有挑战性。这项工作的目的是展示一种新型仿生水凝胶,它可以与癌细胞相互作用,在捕获和杀死猎物方面其功能类似于捕蝇草。这种水凝胶有两层,上层用寡核苷酸适配体功能化,下层用双链DNA功能化。结果表明,上层水凝胶层能够高效且特异性地捕获靶细胞,而下层水凝胶层可以螯合阿霉素(Dox)以实现药物的持续释放。重要的是,细胞在水凝胶上停留1小时后,释放出的Dox可以杀死90%的细胞。细胞释放后,这种双功能水凝胶可以再生,以持续捕获和杀死细胞。因此,本研究中展示的数据成功证明了开发一种具有吸引、捕获和杀死患病细胞(例如循环肿瘤细胞)甚至入侵微生物(例如细菌)功能的材料系统的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d3f5/4585793/6c91f212e675/srep14297-f3.jpg

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