DNA nanotubes have great potential as nanoscale scaffolds for the organization of materials and the templation of nanowires and as drug delivery vehicles. Current methods for making DNA nanotubes either rely on a tile-based step-growth polymerization mechanism or use a large number of component strands and long annealing times. Step-growth polymerization gives little control over length, is sensitive to stoichiometry, and is slow to generate long products. Here, we present a design strategy for DNA nanotubes that uses an alternative, more controlled growth mechanism, while using just five unmodified component strands and a long enzymatically produced backbone. These tubes form rapidly at room temperature and have numerous, orthogonal sites ...
Programmable, synthetic cells have applications in sensing and drug-delivery. Currently, development...
DNA is the molecule that encodes our genetic information. DNA nanotechnology is the field that uses ...
Molecular wire construction using DNA-directed selfassembly of multi-walled carbon nanotubes (MWNTs)...
DNA nanotubes (NTs) have attracted extensive interest as artificial cytoskeletons for biomedical, sy...
DNA nanotubes (NTs) have attracted extensive interest as artificial cytoskeletons for biomedical, sy...
DNA self-assembly provides a programmable bottom-up approach for the synthesis of complex structures...
DNA nanotubes hold great potential as drug delivery vehicles and as programmable templates for the o...
Deoxyribonucleic acid (DNA) and Ribonucleic acid (RNA) are molecules that store and transmit genetic...
Deoxyribonucleic acid (DNA) and Ribonucleic acid (RNA) are molecules that store and transmit genetic...
Nanotubes with different sizes can be readily assembled from simple DNA nanomotifs, which consist of...
DNA nanotubes provide a programmable architecture for molecular self-assembly and can serve as model...
DNA nanotubes provide a programmable architecture for molecular self-assembly and can serve as model...
Programmable, synthetic cells have applications in sensing and drug-delivery. Currently, development...
The polymerization and depolymerization of cytoskeleton can transduce chemical energy into mechanica...
Multihelical DNA bundles could enhance the functionality of nanomaterials and serve as model archite...
Programmable, synthetic cells have applications in sensing and drug-delivery. Currently, development...
DNA is the molecule that encodes our genetic information. DNA nanotechnology is the field that uses ...
Molecular wire construction using DNA-directed selfassembly of multi-walled carbon nanotubes (MWNTs)...
DNA nanotubes (NTs) have attracted extensive interest as artificial cytoskeletons for biomedical, sy...
DNA nanotubes (NTs) have attracted extensive interest as artificial cytoskeletons for biomedical, sy...
DNA self-assembly provides a programmable bottom-up approach for the synthesis of complex structures...
DNA nanotubes hold great potential as drug delivery vehicles and as programmable templates for the o...
Deoxyribonucleic acid (DNA) and Ribonucleic acid (RNA) are molecules that store and transmit genetic...
Deoxyribonucleic acid (DNA) and Ribonucleic acid (RNA) are molecules that store and transmit genetic...
Nanotubes with different sizes can be readily assembled from simple DNA nanomotifs, which consist of...
DNA nanotubes provide a programmable architecture for molecular self-assembly and can serve as model...
DNA nanotubes provide a programmable architecture for molecular self-assembly and can serve as model...
Programmable, synthetic cells have applications in sensing and drug-delivery. Currently, development...
The polymerization and depolymerization of cytoskeleton can transduce chemical energy into mechanica...
Multihelical DNA bundles could enhance the functionality of nanomaterials and serve as model archite...
Programmable, synthetic cells have applications in sensing and drug-delivery. Currently, development...
DNA is the molecule that encodes our genetic information. DNA nanotechnology is the field that uses ...
Molecular wire construction using DNA-directed selfassembly of multi-walled carbon nanotubes (MWNTs)...