DNA origami technology for biomedical applications: Challenges and opportunities

Ling Li, Shihong Nie, Ting Du, Jiaxuan Zhao, Xiaoyuan Chen
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Abstract

DNA origami, a promising branch of structural DNA technology, refers to the technique of folding a single-stranded DNA scaffold into well-defined nanostructures. In recent years, DNA origami nanostructures have shown considerable promise in a variety of biomedical applications, owing to their biodegradability, unique programmability, and addressability. Despite their popularity, the biomedical application of DNA origami techniques, which exploits their unique programmability and addressability, is rare in previous studies. Most recently, mounting evidence has demonstrated the robustness of DNA origami nanostructures in the spatial organization of functional components at the nanoscale in the biomedical field. These examples provide typical paradigms to fully realize the potential of DNA origami techniques by taking advantage of their unique programmability and addressability. This minireview summarizes the recent advancements of DNA origami techniques in biosensing, biocatalysis, and drug delivery, and the representative examples using DNA origami nanostructures for the spatial organization of functional molecules with nanometric precision are highlighted. We further discuss the possible limitations and challenges for in vivo applications, including stability issues and potential immunogenicity, and finally, propose some strategies to overcome these obstacles to fully realize the potential of DNA origami techniques in biomedical applications.

Abstract Image

用于生物医学应用的DNA折纸技术:挑战与机遇
DNA折纸是结构DNA技术的一个很有前途的分支,指的是将单链DNA支架折叠成明确的纳米结构的技术。近年来,DNA折纸纳米结构由于其生物降解性、独特的可编程性和可寻址性,在各种生物医学应用中显示出相当大的前景。尽管DNA折纸技术很受欢迎,但其独特的可编程性和可寻址性在生物医学上的应用在以前的研究中是罕见的。最近,越来越多的证据证明了DNA折纸纳米结构在生物医学领域纳米级功能组分的空间组织中的稳健性。这些例子通过利用DNA折纸技术独特的可编程性和可寻址性,提供了充分实现其潜力的典型范例。这篇小型综述总结了DNA折纸技术在生物传感、生物催化和药物递送方面的最新进展,并重点介绍了使用DNA折纸纳米结构以纳米精度空间组织功能分子的代表性例子。我们进一步讨论了体内应用可能存在的局限性和挑战,包括稳定性问题和潜在的免疫原性,最后提出了一些克服这些障碍的策略,以充分发挥DNA折纸技术在生物医学应用中的潜力。
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