Dai Lizhi, Liu Peng, Hu Xiaoxue, Zhao Xiaozhi, Shao Guoqiang, Tian Ye
College of Engineering and Applied Sciences, State Key Laboratory of Analytical Chemistry for Life Science, Chemistry and Biomedicine Innovation Center, Nanjing University, Nanjing, 210093, China.
Analyst. 2021 Mar 21;146(6):1807-1819. doi: 10.1039/d0an02160a. Epub 2021 Feb 17.
Due to the proposal and evolution of the DNA origami technique over the past decade, DNA molecules have been utilized as building blocks for the precise construction of nanoscale architectures. Benefiting from the superior programmability of DNA molecules, the sequence-dependent recognition mechanism and robust complementation among DNA strands make it possible to customize almost arbitrary structures. Such an assembly strategy bypasses some of the limits of conventional fabrication methods; the fabrication accuracy and complexity of the target product are unprecedentedly promoted as well. Furthermore, due to the spatial addressability of the final products, nanostructures assembled through the DNA origami technique can also serve as a versatile platform for the spatial positioning of functional elements, represented by colloidal nanoparticles (NPs). The subsequent fabrication of heterogeneous functional nanoarchitectures is realized via modifying colloidal NPs with DNA strands and manipulating them to anchor into DNA origami templates. This has given rise to investigations of their novel properties in nanophotonics and therapeutic effects towards some diseases. In this review, we survey the crucial progress in the development of DNA origami design, assembly and structural analysis and summarize available applications in nanophotonics and cancer therapy based on the object-dressed DNA origami complex. Moreover, we elucidate the development of this field and discuss the potential directions of this kind of application-oriented nanomanufacturing.
在过去十年中,由于DNA折纸技术的提出和发展,DNA分子已被用作构建纳米级结构的精确构建模块。得益于DNA分子卓越的可编程性,DNA链之间依赖序列的识别机制和强大的互补性使得定制几乎任意结构成为可能。这种组装策略绕过了传统制造方法的一些限制;目标产品的制造精度和复杂性也得到了前所未有的提升。此外,由于最终产品的空间可寻址性,通过DNA折纸技术组装的纳米结构还可以作为功能元件(以胶体纳米颗粒(NPs)为代表)空间定位的通用平台。通过用DNA链修饰胶体纳米颗粒并将其操纵以锚定到DNA折纸模板中,实现了异质功能纳米结构的后续制造。这引发了对它们在纳米光子学中的新特性以及对某些疾病的治疗效果的研究。在这篇综述中,我们概述了DNA折纸设计、组装和结构分析发展中的关键进展,并总结了基于客体修饰的DNA折纸复合物在纳米光子学和癌症治疗中的现有应用。此外,我们阐明了该领域的发展,并讨论了这种面向应用的纳米制造的潜在方向。