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Home » Folding and functionalizing DNA origami: A versatile approach using a reactive polyamine

Folding and functionalizing DNA origami: A versatile approach using a reactive polyamine

by INMAweb
29/01/2025
in Highlight
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Folding and functionalizing DNA origami: A versatile approach using a reactive polyamine
Folding and functionalizing DNA origami: A versatile approach using a reactive polyamine

 

DOI: 10.1021/jacs.4c12637

 

J. Am. Chem. Soc., 27th Jan. 2025

 

Alejandro Postigo, Carlos Marcuello, William Verstraeten, Santiago Sarasa, Tobias Walther, Anabel Lostao, Kerstin Göpfrich, Jesús del Barrio, Silvia Hernández-Ainsa

 

Abstract: DNA nanotechnology is a powerful synthetic approach to crafting diverse nanostructures through self-assembly. Chemical decoration of such nanostructures is often required to tailor their properties for specific applications. In this Letter, we introduce a pioneering method to direct the assembly and enable the functionalization of DNA nanostructures using an azide-bearing functional polyamine. We first demonstrate the successful polyamine-assisted folding of a scaffolded DNA origami nanostructure equipped with reactive azide groups. Leveraging this reactivity, we next showcase the decoration of the DNA origami via strain-promoted azide–alkyne cycloaddition with dibenzocyclooctyne-containing functional molecules. Specifically, we incorporate a fluorophore (Cy5), polyethylene glycol (PEG), and a hydrophobic phosphatidylethanolamine (PE) tag to tailor the properties of our DNA origami nanostructures. Our approach is expected to streamline and reduce the cost of chemical customization of intricate DNA nanostructures, paving the way for enhanced versatility and applicability.
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  • Dr Cristina Momblona
  • Dr. Thomas S. van Zanten
  • Dr Cristina Bran

    Campus San Francisco, Facultad de Ciencias
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    • THE INSTITUTE
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    • RESEARCH
      • Research Areas
        • Area 1: Materials for energy
          and environment (MEM)
        • Area 2: Materials for biomedicine (BIO)
        • Area 3: Materials for information
          technology (MTI)
        • Area 4: New phenomena at the
          nanoscale (NFN)
        • Area 5: Synthesis, processing and scaling
          of advanced functional materials (SPE)
        • Area 6: Singular experimental
          technologies (TES)
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      • Microdevices Engineering Technical Unit (UTIM)
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