DNA’s molecular recognition properties have made it one of the most widely used biomacromolecular construction materials. The programmed assembly of DNA oligonucleotides has been used to create complex 2D and 3D self-assembled architectures and to guide the assembly of other molecules. The origins of DNA nanotechnology are rooted in the goal of assembling DNA molecules into designed periodic arrays, i.e., crystals. Here, we highlight several DNA crystal structures, the progress made in designing DNA crystals, and look at the current prospects and future directions of DNA crystals in nanotechnology.https://doi.org/10.3390/cryst608009
Molecular self-assembly presents a `bottom-up' approach to the fabrication of objects specified wi...
Structural DNA Nanotechnology uses unusual DNA motifs to build target shapes and arrangements. These...
The field of DNA nanotechnology, which utilizes synthetic DNA strands as build-blocks for nanostruct...
DNA’s molecular recognition properties have made it one of the most widely used biomacromolecular co...
DNA’s molecular recognition properties have made it one of the most widely used biomacromolecular co...
The ability to self-assemble into pre-programmed architectures has made DNA become a useful molecule...
DNA nanotechnology is a rapidly evolving research area that utilizes DNA as unique construction mate...
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 ...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
DNA nanotechnology is a rapidly developing researching area. Various stationary structures and nanom...
Sequence-selective recognition of DNA duplexes is important for a wide range of applications includi...
DNA nanotechnology represents a powerful medium for manipulating the nanoscale arrangement of functi...
The field of structural DNA nanotechnology has evolved remarkably—from the creation of artificial im...
The field of structural DNA nanotechnology has evolved remarkably—from the creation of artificial im...
Molecular self-assembly presents a `bottom-up' approach to the fabrication of objects specified wi...
Structural DNA Nanotechnology uses unusual DNA motifs to build target shapes and arrangements. These...
The field of DNA nanotechnology, which utilizes synthetic DNA strands as build-blocks for nanostruct...
DNA’s molecular recognition properties have made it one of the most widely used biomacromolecular co...
DNA’s molecular recognition properties have made it one of the most widely used biomacromolecular co...
The ability to self-assemble into pre-programmed architectures has made DNA become a useful molecule...
DNA nanotechnology is a rapidly evolving research area that utilizes DNA as unique construction mate...
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 ...
DNA is a very useful molecule for the programmed self-assembly of 2D and 3D nanoscale objects.1 The ...
DNA nanotechnology is a rapidly developing researching area. Various stationary structures and nanom...
Sequence-selective recognition of DNA duplexes is important for a wide range of applications includi...
DNA nanotechnology represents a powerful medium for manipulating the nanoscale arrangement of functi...
The field of structural DNA nanotechnology has evolved remarkably—from the creation of artificial im...
The field of structural DNA nanotechnology has evolved remarkably—from the creation of artificial im...
Molecular self-assembly presents a `bottom-up' approach to the fabrication of objects specified wi...
Structural DNA Nanotechnology uses unusual DNA motifs to build target shapes and arrangements. These...
The field of DNA nanotechnology, which utilizes synthetic DNA strands as build-blocks for nanostruct...