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Molecular Precision at Micrometer Length Scales: Hierarchical Assembly of DNA-Protein Nanostructures

机译:千分尺长度的分子精度:DNA蛋白纳米结构的分层组装

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摘要

Robust self-assembly across length scales is a ubiquitous feature of biological systems but remains challenging for synthetic structures. Taking a cue from biology-where disparate molecules work together to produce large, functional assemblies we demonstrate how to engineer microscale structures with nanoscale features: Our self-assembly approach begins by using DNA polymerase to controllably create double-stranded DNA (dsDNA) sections on a single-stranded template. The single-stranded DNA (ssDNA) sections are then folded into a mechanically flexible skeleton by the origami method. This process simultaneously shapes the structure at the nanoscale and directs the large-scale geometry. The DNA skeleton guides the assembly of RecA protein filaments, which provides rigidity at the micrometer scale. We use our modular design strategy to assemble tetrahedral, rectangular, and linear shapes of defined dimensions. This method enables the robust construction of complex assemblies, greatly extending the range of DNA-based self-assembly methods.
机译:跨长度尺度的鲁棒自组装是生物系统的无处不在的特征,但仍然对合成结构持挑战性。从生物学中取出一个提示 - 其中不同分子一起生产大型功能组件,我们展示了如何用纳米级特征工程微观结构:我们的自组装方法开始通过使用DNA聚合酶来控制,可控制地产生双链DNA(DSDNA)部分单链模板。然后通过折纸法将单链DNA(SSDNA)部分折叠成机械柔性骨架。该过程同时在纳米级上塑造结构并引导大规模的几何形状。 DNA骨架引导重组蛋白质长丝的组装,其在微米级提供刚性。我们使用模块化设计策略来组装定义尺寸的四面体,矩形和线性形状。该方法实现了复杂组件的鲁棒结构,大大延长了基于DNA的自组装方法的范围。

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