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自折叠 RCA 产物形成平行单层 DNA 纳米带,并通过短桥链编织成纳米围栏结构。

Self-folding RCA product into a parallel monolayer DNA nanoribbon and woven into a nano-fence structure by a short bridge strand.

机构信息

Cancer Metastasis Alert and Prevention Center, Fujian Provincial Key Laboratory of Cancer Metastasis Chemoprevention and Chemotherapy, National & Local Joint Biomedical Engineering Research Center on Photodynamic Technologies, Pharmaceutical Photocatalysis of State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry, Fuzhou University, Fuzhou 350002, PR China.

Cancer Metastasis Alert and Prevention Center, Fujian Provincial Key Laboratory of Cancer Metastasis Chemoprevention and Chemotherapy, National & Local Joint Biomedical Engineering Research Center on Photodynamic Technologies, Pharmaceutical Photocatalysis of State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry, Fuzhou University, Fuzhou 350002, PR China; Key Laboratory of Laboratory Medicine, Ministry of Education of China, and Zhejiang Provincial Key Laboratory of Medical Genetics, School of Laboratory Medicine and Life Sciences, Wenzhou Medical University, Wenzhou 325035, PR China.

出版信息

J Colloid Interface Sci. 2025 Jan;677(Pt B):30-39. doi: 10.1016/j.jcis.2024.08.013. Epub 2024 Aug 4.

Abstract

The universal programmed construction of patterned periodic self-assembled nanostructures is a technical challenge in DNA origami nanotechnology but has numerous potential applications in biotechnology and biomedicine. In order to circumvent the dilemma that traditional DNA origami requires a long unusual single-stranded virus DNA as the scaffold and hundreds or even thousands of short strands as staples, we report a method for constructing periodically-self-folded rolling circle amplification products (RPs). The repeating unit is designed to have 3 intra-unit duplexes (inDP1,2,3) and 2 between-unit duplexes (buDP1,2). Based on the complementary pairing of bases, RPs each can self-fold into a periodic grid-patterned ribbon (GR) without the help of any auxiliary oligonucleotide staple. Moreover, by using only an oligonucleotide bridge strand, the GRs are connected together into the larger and denser planar nano-fence-shaped product (FP), which substantially reduces the number of DNA components compared with DNA origami and eliminates the obstacles in the practical application of DNA nanostructures. More interestingly, the FP-based DNA framework can be easily functionalized to offer spatial addressability for the precise positioning of nanoparticles and guest proteins with high spatial resolution, providing a new avenue for the future application of DNA assembled framework nanostructures in biology, material science, nanomedicine and computer science that often requires the ordered organization of functional moieties with nanometer-level and even molecular-level precision.

摘要

通用程序化构建图案化周期自组装纳米结构是 DNA 折纸纳米技术中的一个技术难题,但在生物技术和生物医学中有许多潜在的应用。为了规避传统 DNA 折纸需要长的非常规单链病毒 DNA 作为支架和数百甚至数千个短链作为订书钉的困境,我们报告了一种构建周期性自折叠滚环扩增产物 (RP) 的方法。重复单元被设计为具有 3 个单元内双链体 (inDP1,2,3) 和 2 个单元间双链体 (buDP1,2)。基于碱基互补配对,RP 可以自行折叠成周期性网格图案的带状物 (GR),而无需任何辅助寡核苷酸订书钉的帮助。此外,通过仅使用一个寡核苷酸桥链,GR 连接在一起形成更大和更密集的平面纳米围栏状产物 (FP),与 DNA 折纸相比,这大大减少了 DNA 组件的数量,并消除了 DNA 纳米结构实际应用中的障碍。更有趣的是,基于 FP 的 DNA 框架可以很容易地进行功能化,为纳米粒子和客体蛋白的精确定位提供空间可寻址性,具有高空间分辨率,为 DNA 组装框架纳米结构在生物学、材料科学、纳米医学和计算机科学中的未来应用提供了新途径,这些领域通常需要具有纳米级甚至分子级精度的功能部分的有序组织。

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