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订书钉年龄对 DNA 折纸纳米结构组装和稳定性的影响。

Effect of Staple Age on DNA Origami Nanostructure Assembly and Stability.

机构信息

Technical and Macromolecular Chemistry, Paderborn University, Warburger Str. 100, 33098 Paderborn, Germany.

DNA Nanodevices Unit, Department Diagnostics, Fraunhofer Institute for Cell Therapy and Immunology IZI, 04103 Leipzig, Germany.

出版信息

Molecules. 2019 Jul 16;24(14):2577. doi: 10.3390/molecules24142577.

Abstract

DNA origami nanostructures are widely employed in various areas of fundamental and applied research. Due to the tremendous success of the DNA origami technique in the academic field, considerable efforts currently aim at the translation of this technology from a laboratory setting to real-world applications, such as nanoelectronics, drug delivery, and biosensing. While many of these real-world applications rely on an intact DNA origami shape, they often also subject the DNA origami nanostructures to rather harsh and potentially damaging environmental and processing conditions. Furthermore, in the context of DNA origami mass production, the long-term storage of DNA origami nanostructures or their pre-assembled components also becomes an issue of high relevance, especially regarding the possible negative effects on DNA origami structural integrity. Thus, we investigated the effect of staple age on the self-assembly and stability of DNA origami nanostructures using atomic force microscopy. Different harsh processing conditions were simulated by applying different sample preparation protocols. Our results show that staple solutions may be stored at -20 °C for several years without impeding DNA origami self-assembly. Depending on DNA origami shape and superstructure, however, staple age may have negative effects on DNA origami stability under harsh treatment conditions. Mass spectrometry analysis of the aged staple mixtures revealed no signs of staple fragmentation. We, therefore, attribute the increased DNA origami sensitivity toward environmental conditions to an accumulation of damaged nucleobases, which undergo weaker base-pairing interactions and thus lead to reduced duplex stability.

摘要

DNA 折纸纳米结构被广泛应用于基础研究和应用研究的各个领域。由于 DNA 折纸技术在学术领域取得了巨大的成功,目前人们正在努力将这项技术从实验室环境转化为实际应用,如纳米电子学、药物输送和生物传感。虽然这些实际应用中的许多都依赖于完整的 DNA 折纸形状,但它们通常也会使 DNA 折纸纳米结构受到相当苛刻和潜在破坏性的环境和处理条件的影响。此外,在 DNA 折纸大规模生产的背景下,DNA 折纸纳米结构或其预组装组件的长期储存也成为一个非常重要的问题,特别是考虑到这可能对 DNA 折纸结构完整性产生负面影响。因此,我们使用原子力显微镜研究了订书钉年龄对 DNA 折纸纳米结构自组装和稳定性的影响。通过应用不同的样品制备方案模拟了不同的苛刻处理条件。我们的结果表明,订书钉溶液可以在-20°C 下储存数年而不会阻碍 DNA 折纸的自组装。然而,根据 DNA 折纸的形状和超结构,订书钉年龄可能会对苛刻处理条件下的 DNA 折纸稳定性产生负面影响。对老化订书钉混合物的质谱分析没有发现订书钉断裂的迹象。因此,我们将 DNA 折纸对环境条件的敏感性增加归因于受损碱基的积累,这些碱基经历较弱的碱基配对相互作用,从而导致双链体稳定性降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b381/6680526/1d1cead58c27/molecules-24-02577-g001.jpg

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