DNA Origami with Double-Stranded DNA As a Unified Scaffold

被引:60
作者
Yang, Yang
Han, Dongran
Nangreave, Jeanette
Liu, Yan [1 ]
Yan, Hao
机构
[1] Arizona State Univ, Dept Chem & Biochem, Tempe, AZ 85287 USA
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
DNA origami; double-stranded DNA scaffold; self-assembly; DNA nanotechnology; scaleup; FOLDING DNA; NANOSCALE SHAPES; NANOSTRUCTURES;
D O I
10.1021/nn302896c
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Scaffolded DNA origami is a widely used technology for self-assembling precisely structured nanoscale objects that contain a large number of addressable features. Typical scaffolds are long, single strands of DNA (ssDNA) that are folded into distinct shapes through the action of many, short ssDNA staples that are complementary to several different domains of the scaffold. However, sources of long single-stranded DNA are scarce, limiting the size and complexity of structures that can be assembled. Here we demonstrated that dsDNA (double-stranded DNA) scaffolds can be directly used to fabricate integrated DNA origami structures that incorporate both of the constituent ssDNA molecules. Two basic principles were employed in the design of scaffold folding paths: folding path asymmetry and periodic convergence of the two ssDNA scaffold strands. Asymmetry in the folding path minimizes unwanted complementarity between staples, and incorporating an offset between the folding paths of each ssDNA scaffold strand reduces the number of times that complementary portions of the strands are brought into close proximity with one another, both of which decrease the likelihood of dsDNA scaffold recovery. Meanwhile, the folding paths of the two ssDNA scaffold strands were designed to periodically converge to promote the assembly of a single, unified structure rather than two individual ones. Our results reveal that this basic strategy can be used to reliably assemble integrated DNA nanostructures from dsDNA scaffolds.
引用
收藏
页码:8209 / 8215
页数:7
相关论文
共 19 条
[1]   DNA origami design of dolphin-shaped structures with flexible tails [J].
Andersen, Ebbe S. ;
Dong, Mingdong ;
Nielsen, Morten M. ;
Jahn, Kasper ;
Lind-Thomsen, Allan ;
Mamdouh, Wael ;
Gothelf, Kurt V. ;
Besenbacher, Flemming ;
Kjems, Jorgen .
ACS NANO, 2008, 2 (06) :1213-1218
[2]   Self-assembly of a nanoscale DNA box with a controllable lid [J].
Andersen, Ebbe S. ;
Dong, Mingdong ;
Nielsen, Morten M. ;
Jahn, Kasper ;
Subramani, Ramesh ;
Mamdouh, Wael ;
Golas, Monika M. ;
Sander, Bjoern ;
Stark, Holger ;
Oliveira, Cristiano L. P. ;
Pedersen, Jan Skov ;
Birkedal, Victoria ;
Besenbacher, Flemming ;
Gothelf, Kurt V. ;
Kjems, Jorgen .
NATURE, 2009, 459 (7243) :73-U75
[3]  
Castro CE, 2011, NAT METHODS, V8, P221, DOI [10.1038/nmeth.1570, 10.1038/NMETH.1570]
[4]   Folding DNA into Twisted and Curved Nanoscale Shapes [J].
Dietz, Hendrik ;
Douglas, Shawn M. ;
Shih, William M. .
SCIENCE, 2009, 325 (5941) :725-730
[5]   Self-assembly of DNA into nanoscale three-dimensional shapes [J].
Douglas, Shawn M. ;
Dietz, Hendrik ;
Liedl, Tim ;
Hoegberg, Bjoern ;
Graf, Franziska ;
Shih, William M. .
NATURE, 2009, 459 (7245) :414-418
[6]   DNA Origami with Complex Curvatures in Three-Dimensional Space [J].
Han, Dongran ;
Pal, Suchetan ;
Nangreave, Jeanette ;
Deng, Zhengtao ;
Liu, Yan ;
Yan, Hao .
SCIENCE, 2011, 332 (6027) :342-346
[7]   Folding and cutting DNA into reconfigurable topological nanostructures [J].
Han, Dongran ;
Pal, Suchetan ;
Liu, Yan ;
Yan, Hao .
NATURE NANOTECHNOLOGY, 2010, 5 (10) :712-717
[8]   Folding DNA Origami from a Double-Stranded Source of Scaffold [J].
Hogberg, Bjorn ;
Liedl, Tim ;
Shih, William M. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (26) :9154-+
[9]  
HOWLEY PM, 1979, J BIOL CHEM, V254, P4876
[10]   Multilayer DNA Origami Packed on a Square Lattice [J].
Ke, Yonggang ;
Douglas, Shawn M. ;
Liu, Minghui ;
Sharma, Jaswinder ;
Cheng, Anchi ;
Leung, Albert ;
Liu, Yan ;
Shih, William M. ;
Yan, Hao .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (43) :15903-15908