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Enhancing the stability of DNA origami nanostructures: staple strand redesign versus enzymatic ligation

  1. Author:
    Ramakrishnan,Saminathan
    Schaerfen, Leonard
    Hunold, Kristin
    Fricke, Sebastian
    Grundmeier, Guido
    Schlierf, Michael
    Keller, Adrian
    Krainer, Georg
  2. Author Address

    Paderborn Univ, Tech & Macromol Chem, Warburger Str 100, D-33098 Paderborn, Germany.Tech Univ Dresden, CUBE Ctr Mol Bioengn B, Tatzberg 41, D-01307 Dresden, Germany.NCI, Ctr Canc Res, Frederick, MD 21702 USA.Univ Cambridge, Dept Chem, Lensfield Rd, Cambridge CB2 1EW, England.
    1. Year: 2019
    2. Date: SEP 21
  1. Journal: NANOSCALE
  2. ROYAL SOC CHEMISTRY,
    1. 11
    2. 35
    3. Pages: 16270-16276
  3. Type of Article: Article
  4. ISSN: 2040-3364
  1. Abstract:

    DNA origami structures have developed into versatile tools in molecular sciences and nanotechnology. Currently, however, many potential applications are hindered by their poor stability, especially under denaturing conditions. Here we present and evaluate two simple approaches to enhance DNA origami stability. In the first approach, we elevated the melting temperature of nine critical staple strands by merging the oligonucleotides with adjacent sequences. In the second approach, we increased the global stability by enzymatically ligating all accessible staple strand ends directly. By monitoring the gradual urea-induced denaturation of a prototype triangular DNA origami modified by these approaches using atomic force microscopy, we show that rational redesign of a few, critical staple strands leads to a considerable increase in overall stability at high denaturant concentration and elevated temperatures. In addition, enzymatic ligation yields DNA nanostructures with superior stability at up to 37 degrees C and in the presence of 6 M urea without impairing their shape. This bio-orthogonal approach is readily adaptable to other DNA origami structures without the need for synthetic nucleotide modifications when structural integrity under harsh conditions is required.

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External Sources

  1. DOI: 10.1039/c9nr04460d
  2. WOS: 000485971900012

Library Notes

  1. Fiscal Year: FY2019-2020
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