Fudan University Shanghai Cancer Center and Institutes of Biomedical Sciences, Fudan University , Shanghai 200032 , China.
Department of Systems Biology for Medicine , School of Basic Medical Sciences, Fudan University , Shanghai 200032 , China.
Chem Rev. 2019 May 22;119(10):6459-6506. doi: 10.1021/acs.chemrev.7b00663. Epub 2018 Feb 21.
Over the past decade, we have seen rapid advances in applying nanotechnology in biomedical areas including bioimaging, biodetection, and drug delivery. As an emerging field, DNA nanotechnology offers simple yet powerful design techniques for self-assembly of nanostructures with unique advantages and high potential in enhancing drug targeting and reducing drug toxicity. Various sequence programming and optimization approaches have been developed to design DNA nanostructures with precisely engineered, controllable size, shape, surface chemistry, and function. Potent anticancer drug molecules, including Doxorubicin and CpG oligonucleotides, have been successfully loaded on DNA nanostructures to increase their cell uptake efficiency. These advances have implicated the bright future of DNA nanotechnology-enabled nanomedicine. In this review, we begin with the origin of DNA nanotechnology, followed by summarizing state-of-the-art strategies for the construction of DNA nanostructures and drug payloads delivered by DNA nanovehicles. Further, we discuss the cellular fates of DNA nanostructures as well as challenges and opportunities for DNA nanostructure-based drug delivery.
在过去的十年中,我们看到纳米技术在生物医学领域的应用取得了快速进展,包括生物成像、生物检测和药物输送。作为一个新兴领域,DNA 纳米技术为纳米结构的自组装提供了简单而强大的设计技术,具有独特的优势和提高药物靶向和降低药物毒性的巨大潜力。已经开发出各种序列编程和优化方法来设计具有精确工程、可控尺寸、形状、表面化学和功能的 DNA 纳米结构。包括多柔比星和 CpG 寡核苷酸在内的强效抗癌药物分子已成功加载到 DNA 纳米结构上,以提高其细胞摄取效率。这些进展预示着 DNA 纳米技术介导的纳米医学的光明未来。在这篇综述中,我们首先介绍 DNA 纳米技术的起源,然后总结 DNA 纳米结构的构建和 DNA 纳米载体传递的药物有效载荷的最新策略。此外,我们还讨论了 DNA 纳米结构的细胞命运以及基于 DNA 纳米结构的药物输送所面临的挑战和机遇。