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  3. Complex DNA Architectonics─Self-Assembly of Amphiphilic Oligonucleotides into Ribbons, Vesicles, and Asterosomes.
 

Complex DNA Architectonics─Self-Assembly of Amphiphilic Oligonucleotides into Ribbons, Vesicles, and Asterosomes.

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BORIS DOI
10.48350/168853
Date of Publication
January 18, 2023
Publication Type
Article
Division/Institute

Departement für Chemi...

Institut für Anatomie...

Author
Rothenbühler, Simonorcid-logo
Departement für Chemie, Biochemie und Pharmazie (DCBP)
Iacovache, Mircea Ioan
Institut für Anatomie
Langenegger, Simon Matthias
Departement für Chemie, Biochemie und Pharmazie (DCBP)
Zuber, Benoîtorcid-logo
Institut für Anatomie
Häner, Robertorcid-logo
Departement für Chemie, Biochemie und Pharmazie (DCBP)
Subject(s)

500 - Science::570 - ...

500 - Science::540 - ...

600 - Technology::610...

Series
Bioconjugate chemistry
ISSN or ISBN (if monograph)
1043-1802
Publisher
American Chemical Society
Language
English
Publisher DOI
10.1021/acs.bioconjchem.2c00077
PubMed ID
35357155
Description
The precise arrangement of structural subunits is a key factor for the proper shape and function of natural and artificial supramolecular assemblies. In DNA nanotechnology, the geometrically well-defined double-stranded DNA scaffold serves as an element of spatial control for the precise arrangement of functional groups. Here, we describe the supramolecular assembly of chemically modified DNA hybrids into diverse types of architectures. An amphiphilic DNA duplex serves as the sole structural building element of the nanosized supramolecular structures. The morphology of the assemblies is governed by a single subunit of the building block. The chemical nature of this subunit, i.e., polyethylene glycols of different chain length or a carbohydrate moiety, exerts a dramatic influence on the architecture of the assemblies. Cryo-electron microscopy revealed the arrangement of the individual DNA duplexes within the different constructs. Thus, the morphology changes from vesicles to ribbons with increasing length of a linear polyethylene glycol. Astoundingly, attachment of a N-acetylgalactosamine carbohydrate to the DNA duplex moiety produces an unprecedented type of star-shaped architecture. The novel DNA architectures presented herein imply an extension of the current concept of DNA materials and shed new light on the fast-growing field of DNA nanotechnology.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/69836
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File(s)
FileFile TypeFormatSizeLicensePublisher/Copright statementContent
acs.bioconjchem.2c00077.pdftextAdobe PDF7.13 MBpublisherpublished restricted
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