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Force-induced unravelling of DNA origami

Abstract:
The mechanical properties of DNA nanostructures are of widespread interest as applications that exploit their stability under constant or intermittent external forces become increasingly common. We explore the force response of DNA origami in comprehensive detail by combining AFM single molecule force spectroscopy experiments with simulations using oxDNA, a coarse-grained model of DNA at the nucleotide level, to study the unravelling of an iconic origami system: the Rothemund tile. We contrast the force-induced melting of the tile with simulations of an origami 10-helix bundle. Finally, we simulate a recently proposed origami biosensor, whose function takes advantage of origami behavior under tension. We observe characteristic stick–slip unfolding dynamics in our force–extension curves for both the Rothemund tile and the helix bundle and reasonable agreement with experimentally observed rupture forces for these systems. Our results highlight the effect of design on force response: we observe regular, modular unfolding for the Rothemund tile that contrasts with strain-softening of the 10-helix bundle which leads to catastropic failure under monotonically increasing force. Further, unravelling occurs straightforwardly from the scaffold ends inward for the Rothemund tile, while the helix bundle unfolds more nonlinearly. The detailed visualization of the yielding events provided by simulation allows preferred pathways through the complex unfolding free-energy landscape to be mapped, as a key factor in determining relative barrier heights is the extensional release per base pair broken. We shed light on two important questions: how stable DNA nanostructures are under external forces and what design principles can be applied to enhance stability.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1021/acsnano.8b01844

Authors


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Role:
Author
ORCID:
0000-0002-2598-9711
More by this author
Role:
Author
ORCID:
0000-0002-0040-0173


More from this funder
Funding agency for:
Rovigatti, L
Grant:
Marie Skłodowska-Curie Fellowship No. 702298-DELTAS


Publisher:
American Chemical Society
Journal:
ACS Nano More from this journal
Volume:
12
Issue:
7
Pages:
6734-6747
Publication date:
2018-05-31
Acceptance date:
2018-05-31
DOI:
EISSN:
1936-086X
ISSN:
1936-0851
Pmid:
29851456


Language:
English
Keywords:
Pubs id:
pubs:854873
UUID:
uuid:4f7af895-25c9-4fb3-82a9-36d9eecbf23b
Local pid:
pubs:854873
Source identifiers:
854873
Deposit date:
2018-08-15

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