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通过碱基错配和单链缺口增强 DNA 纳米结构中 RecA 介导的自组装。

Enhancement of RecA-mediated self-assembly in DNA nanostructures through basepair mismatches and single-strand nicks.

机构信息

School of Electronic and Electrical Engineering, University of Leeds, Leeds, LS2 9JT, U.K.

出版信息

Sci Rep. 2017 Jan 23;7:41081. doi: 10.1038/srep41081.

Abstract

The use of DNA as a structural material for nanometre-scale construction has grown extensively over the last decades. The development of more advanced DNA-based materials would benefit from a modular approach enabling the direct assembly of additional elements onto nanostructures after fabrication. RecA-based nucleoprotein filaments encapsulating short ssDNA have been demonstrated as a tool for highly efficient and fully programmable post-hoc patterning of duplex DNA scaffold. However, the underlying assembly process is not fully understood, in particular when patterning complex DNA topologies. Here, we report the effect of basepair-mismatched regions and single-strand nicks in the double-stranded DNA scaffold on the yield of RecA-based assembly. Significant increases in assembly yield are observed upon the introduction of unpaired basepairs directly adjacent to the assembly region. However, when the unpaired regions were introduced further from the assembly site the assembly yield initially decreased as the length of the unpaired region was increased. These results suggest that an unpaired region acts as a kinetic trap for RecA-based nucleoprotein filaments, impeding the assembly mechanism. Conversely, when the unpaired region is located directly adjacent to the assembly site, it leads to an increase in efficiency of RecA patterning owing to increased breathing of the assembly site.

摘要

在过去的几十年中,DNA 作为纳米级结构的构建材料得到了广泛的应用。如果能够采用模块化方法,在制造后将其他元件直接组装到纳米结构上,那么开发更先进的基于 DNA 的材料将从中受益。基于 RecA 的核蛋白丝将短 ssDNA 包裹在内,已被证明是一种非常高效且完全可编程的后处理方法,可对双链 DNA 支架进行图案化。然而,其潜在的组装过程尚不完全清楚,特别是在对复杂 DNA 拓扑结构进行图案化时。在这里,我们报告了在双链 DNA 支架中碱基错配区域和单链缺口对基于 RecA 的组装的影响。在组装区域直接相邻处引入未配对碱基对时,组装产率会显著增加。然而,当未配对区域从组装位点进一步引入时,随着未配对区域长度的增加,组装产率最初会下降。这些结果表明,未配对区域作为 RecA 核蛋白丝的动力学陷阱,阻碍了组装机制。相反,当未配对区域直接位于组装位点附近时,由于组装位点的呼吸作用增加,导致 RecA 图案化的效率提高。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99cf/5253629/d6a419d25139/srep41081-f1.jpg

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