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Investigating the sequence-dependent mechanical properties of DNA nick for applications in twisted DNA nanostructure designopen access

Authors
Lee, Jae YoungKim, Young-JooLee, ChanseokLee, Jae GyungYagyu, HiromasaTabata, OsamuKim, Do-Nyun
Issue Date
Jan-2019
Publisher
Oxford University Press
Citation
Nucleic Acids Research, v.47, no.1, pp 93 - 102
Pages
10
Indexed
SCI
SCIE
SCOPUS
Journal Title
Nucleic Acids Research
Volume
47
Number
1
Start Page
93
End Page
102
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/118185
DOI
10.1093/nar/gky1189
ISSN
0305-1048
1362-4962
Abstract
DNA nick can be used as a design motif in programming the shape and reconfigurable deformation of synthetic DNA nanostructures, but its mechanical properties have rarely been systematically characterized at the level of base sequences. Here, we investigated sequence-dependent mechanical properties of DNA nicks through molecular dynamics simulation for a comprehensive set of distinct DNA oligomers constructed using all possible base-pair steps with and without a nick. We found that torsional rigidity was reduced by 28-82% at the nick depending on its sequence and location although bending and stretching rigidities remained similar to those of regular base-pair steps. No significant effect of a nick on mechanically coupled deformation such as the twist-stretch coupling was observed. These results suggest that the primary structural role of nick is the relaxation of torsional constraint by backbones known to be responsible for relatively high torsional rigidity of DNA. Moreover, we experimentally demonstrated the usefulness of quantified nick properties in self-assembling DNA nanostructure design by constructing twisted DNA origami structures to show that sequence design of nicks successfully controls the twist angle of structures. Our study illustrates the importance as well as the opportunities of considering sequence-dependent properties in structural DNA nanotechnology. © The Author(s) 2018.
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Chanseok, Lee
ERICA 공학대학 (DEPARTMENT OF BIONANO ENGINEERING)
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