Literature DB >> 34302317

Programmable Site-Specific Functionalization of DNA Origami with Polynucleotide Brushes.

Yunqi Yang1, Qinyi Lu2, Chao-Min Huang1, Hongji Qian3, Yunlong Zhang2, Sonal Deshpande3, Gaurav Arya1, Yonggang Ke4, Stefan Zauscher1.   

Abstract

Combining surface-initiated, TdT (terminal deoxynucleotidyl transferase) catalyzed enzymatic polymerization (SI-TcEP) with precisely engineered DNA origami nanostructures (DONs) presents an innovative pathway for the generation of stable, polynucleotide brush-functionalized DNA nanostructures. We demonstrate that SI-TcEP can site-specifically pattern DONs with brushes containing both natural and non-natural nucleotides. The brush functionalization can be precisely controlled in terms of the location of initiation sites on the origami core and the brush height and composition. Coarse-grained simulations predict the conformation of the brush-functionalized DONs that agree well with the experimentally observed morphologies. We find that polynucleotide brush-functionalization increases the nuclease resistance of DONs significantly, and that this stability can be spatially programmed through the site-specific growth of polynucleotide brushes. The ability to site-specifically decorate DONs with brushes of natural and non-natural nucleotides provides access to a large range of functionalized DON architectures that would allow for further supramolecular assembly, and for potential applications in smart nanoscale delivery systems.
© 2021 Wiley-VCH GmbH.

Entities:  

Keywords:  DNA nanotechnology; drug delivery; molecular dynamics simulations; nuclease resistance; surface-initiated polymerization

Mesh:

Substances:

Year:  2021        PMID: 34302317      PMCID: PMC8511278          DOI: 10.1002/anie.202107829

Source DB:  PubMed          Journal:  Angew Chem Int Ed Engl        ISSN: 1433-7851            Impact factor:   16.823


  34 in total

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Review 6.  Nanomedicine in cancer therapy: challenges, opportunities, and clinical applications.

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9.  Virus-inspired membrane encapsulation of DNA nanostructures to achieve in vivo stability.

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10.  Oligolysine-based coating protects DNA nanostructures from low-salt denaturation and nuclease degradation.

Authors:  Nandhini Ponnuswamy; Maartje M C Bastings; Bhavik Nathwani; Ju Hee Ryu; Leo Y T Chou; Mathias Vinther; Weiwei Aileen Li; Frances M Anastassacos; David J Mooney; William M Shih
Journal:  Nat Commun       Date:  2017-05-31       Impact factor: 14.919

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  1 in total

1.  Multiple Wavelength Photopolymerization of Stable Poly(Catecholamines)-DNA Origami Nanostructures.

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  1 in total

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