The programmability of DNA enables constructing nanostructures with almost any arbitrary shape, which can be decorated with many functional materials. Moreover, dynamic structures can be realized such as molecular motors and walkers. In this work, we have explored the possibility to synthesize the complementary sequences to single-stranded gap regions in the DNA origami scaffold cost effectively by a DNA polymerase rather than by a DNA synthesizer. For this purpose, four different wireframe DNA origami structures were designed to have single-stranded gap regions. This reduced the number of staple strands needed to determine the shape and size of the final structure after gap filling. For this, several DNA polymerases and single-stranded bin...
Structural DNA nanotechnology has recently gained significant momentum, as diverse design tools for ...
DNA origami nano-objects are usually designed around generic single-stranded “scaffolds”. Many prope...
DNA origami is a robust assembly technique that folds a single-stranded DNA template into a target s...
The programmability of DNA enables constructing nanostructures with almost any arbitrary shape, whic...
The field of DNA nanotechnology offers a wide range of design strategies with which nanometer-sized ...
3D polyhedral wireframe DNA nanoparticles (DNA-NPs) fabricated using scaffolded DNA origami offer co...
DNA origami nanotechnology allows us to rationally design molecular devices with arbitrary shapes an...
DNA self‐assembly allows the construction of nanometre‐scale structures and devices. Structures with...
DNA origami enables fabrication of precise nanostructures by programming the self-assembly of DNA. W...
Despite the recent development in the design of DNA origami, its folding yet relies on thermal or ch...
Wireframe DNA origami has emerged as a powerful approach to fabricating nearly arbitrary 2D and 3D g...
DNA origami represents a class of highly programmable macromolecules that can go through conformatio...
DNA origami represents a class of highly programmable macromolecules that can go through conformatio...
DNA origami is a robust assembly technique that folds a single-stranded DNA template into a target s...
DNA molecules have been used as the building block for the self-assembly of artificial nanostructure...
Structural DNA nanotechnology has recently gained significant momentum, as diverse design tools for ...
DNA origami nano-objects are usually designed around generic single-stranded “scaffolds”. Many prope...
DNA origami is a robust assembly technique that folds a single-stranded DNA template into a target s...
The programmability of DNA enables constructing nanostructures with almost any arbitrary shape, whic...
The field of DNA nanotechnology offers a wide range of design strategies with which nanometer-sized ...
3D polyhedral wireframe DNA nanoparticles (DNA-NPs) fabricated using scaffolded DNA origami offer co...
DNA origami nanotechnology allows us to rationally design molecular devices with arbitrary shapes an...
DNA self‐assembly allows the construction of nanometre‐scale structures and devices. Structures with...
DNA origami enables fabrication of precise nanostructures by programming the self-assembly of DNA. W...
Despite the recent development in the design of DNA origami, its folding yet relies on thermal or ch...
Wireframe DNA origami has emerged as a powerful approach to fabricating nearly arbitrary 2D and 3D g...
DNA origami represents a class of highly programmable macromolecules that can go through conformatio...
DNA origami represents a class of highly programmable macromolecules that can go through conformatio...
DNA origami is a robust assembly technique that folds a single-stranded DNA template into a target s...
DNA molecules have been used as the building block for the self-assembly of artificial nanostructure...
Structural DNA nanotechnology has recently gained significant momentum, as diverse design tools for ...
DNA origami nano-objects are usually designed around generic single-stranded “scaffolds”. Many prope...
DNA origami is a robust assembly technique that folds a single-stranded DNA template into a target s...