DNA nanotechnology makes use of the exquisite self-recognition of DNA in order to build on a molecular scale. Although static structures may find applications in structural biology and computer science, many applications in nanomedicine and nanorobotics require the additional capacity for controlled three-dimensional movement. DNA architectures can span three dimensions and DNA devices are capable of movement, but active control of well-defined three-dimensional structures has not been achieved. We demonstrate the operation of reconfigurable DNA tetrahedra whose shapes change precisely and reversibly in response to specific molecular signals. Shape changes are confirmed by gel electrophoresis and by bulk and single-molecule Förster resonanc...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
AbstractStructural DNA nanotechnology consists of combining unusual DNA motifs by specific structura...
DNA nanotechnology is a rapidly evolving research area that utilizes DNA as unique construction mate...
DNA nanotechnology makes use of the exquisite self-recognition of DNA in order to build on a molecul...
Practical components for three-dimensional molecular nanofabrication must be simple to produce, ster...
Practical components for three-dimensional molecular nanofabrication must be simple to produce, ster...
Since the first introduction by Seeman in the early 1980s, structural DNA nanotechnology has been ra...
Molecular recognition between complementary strands of DNA allows construction on a nanometre length...
Molecular recognition between complementary strands of DNA allows construction on a nanometre length...
DNA nanotechnology can construct various nanostructures with diverse functionalities. However, confo...
Molecular self-assembly offers a 'bottom-up' route to fabrication with subnanometre precision of com...
Molecular self-assembly offers a 'bottom-up' route to fabrication with subnanometre precision of com...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
This Communication reports complementary strategies to control the face geometry during the self-ass...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
AbstractStructural DNA nanotechnology consists of combining unusual DNA motifs by specific structura...
DNA nanotechnology is a rapidly evolving research area that utilizes DNA as unique construction mate...
DNA nanotechnology makes use of the exquisite self-recognition of DNA in order to build on a molecul...
Practical components for three-dimensional molecular nanofabrication must be simple to produce, ster...
Practical components for three-dimensional molecular nanofabrication must be simple to produce, ster...
Since the first introduction by Seeman in the early 1980s, structural DNA nanotechnology has been ra...
Molecular recognition between complementary strands of DNA allows construction on a nanometre length...
Molecular recognition between complementary strands of DNA allows construction on a nanometre length...
DNA nanotechnology can construct various nanostructures with diverse functionalities. However, confo...
Molecular self-assembly offers a 'bottom-up' route to fabrication with subnanometre precision of com...
Molecular self-assembly offers a 'bottom-up' route to fabrication with subnanometre precision of com...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
This Communication reports complementary strategies to control the face geometry during the self-ass...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
AbstractStructural DNA nanotechnology consists of combining unusual DNA motifs by specific structura...
DNA nanotechnology is a rapidly evolving research area that utilizes DNA as unique construction mate...