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DNA分子的自组装:迈向用于生物医学应用的DNA纳米机器人

Self-Assembly of DNA Molecules: Towards DNA Nanorobots for Biomedical Applications.

作者信息

Hu Yong

机构信息

Department of Polymeric Materials, School of Materials Science and Engineering, Tongji University, Shanghai 201804, China.

Institute for Advanced Study, Tongji University, Shanghai 200092, China.

出版信息

Cyborg Bionic Syst. 2021 Oct 19;2021:9807520. doi: 10.34133/2021/9807520. eCollection 2021.

DOI:10.34133/2021/9807520
PMID:36285141
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9494698/
Abstract

DNA nanotechnology takes DNA molecule out of its biological context to build nanostructures that have entered the realm of robots and thus added a dimension to cyborg and bionic systems. Spurred by spring-like properties of DNA molecule, the assembled nanorobots can be tuned to enable restricted, mechanical motion by deliberate design. DNA nanorobots can be programmed with a combination of several unique features, such as tissue penetration, site-targeting, stimuli responsiveness, and cargo-loading, which makes them ideal candidates as biomedical robots for precision medicine. Even though DNA nanorobots are capable of detecting target molecule and determining cell fate via a variety of DNA-based interactions both in vitro and in vivo, major obstacles remain on the path to real-world applications of DNA nanorobots. Control over nanorobot's stability, cargo loading and release, analyte binding, and dynamic switching both independently and simultaneously represents the most eminent challenge that biomedical DNA nanorobots currently face. Meanwhile, scaling up DNA nanorobots with low-cost under CMC and GMP standards represents other pertinent challenges regarding the clinical translation. Nevertheless, DNA nanorobots will undoubtedly be a powerful toolbox to improve human health once those remained challenges are addressed by using a scalable and cost-efficient method.

摘要

DNA纳米技术将DNA分子从其生物环境中提取出来,构建出已进入机器人领域的纳米结构,从而为半机械人和仿生系统增添了一个维度。受DNA分子类似弹簧特性的启发,通过精心设计,可以对组装好的纳米机器人进行调整,使其能够进行受限的机械运动。DNA纳米机器人可以通过多种独特功能进行编程,如组织穿透、位点靶向、刺激响应和货物装载,这使其成为精准医学中生物医学机器人的理想候选者。尽管DNA纳米机器人能够通过多种基于DNA的相互作用在体外和体内检测目标分子并决定细胞命运,但在DNA纳米机器人的实际应用道路上仍存在主要障碍。对纳米机器人的稳定性、货物装载和释放、分析物结合以及独立和同时的动态切换进行控制,是生物医学DNA纳米机器人目前面临的最突出挑战。与此同时,按照CMC和GMP标准以低成本扩大DNA纳米机器人的规模,是临床转化方面的其他相关挑战。然而,一旦通过可扩展且经济高效的方法解决了这些遗留挑战,DNA纳米机器人无疑将成为改善人类健康的强大工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8734/9494698/fc701cfd6629/CBSYSTEMS2021-9807520.001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8734/9494698/fc701cfd6629/CBSYSTEMS2021-9807520.001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8734/9494698/fc701cfd6629/CBSYSTEMS2021-9807520.001.jpg

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