The DNA origami technique is a widely used method to create customized, complex, spatially well-defined two-dimensional (2D) and three-dimensional (3D) DNA nanostructures. These structures have huge potential to serve as smart drug-delivery vehicles and molecular devices in various nanomedical and biotechnological applications. However, so far only little is known about the behavior of these novel structures in living organisms or in cell culture/tissue models. Moreover, enhancing pharmacokinetic bioavailability and transfection properties of such structures still remains a challenge. One intriguing approach to overcome these issues is to coat DNA origami nanostructures with proteins or lipid membranes. Here, we show how cowpea chlorotic mo...
Eukaryotic cells employ cytoskeletal motor proteins to efficiently organize and distribute intracell...
We report a synthetic biology-inspired approach for the engineering of amphipathic DNA origami struc...
DNA origamis are fully tailored, programmable, biocompatible and readily functionalizable nanostruct...
The DNA origami technique is a widely used method to create customized, complex, spatially well-defi...
Viral capsids can adopt various geometries, most iconically characterized by icosahedral or helical ...
Various protein-based organelles exist in nature that are involved in a wide variety of different me...
DNA origami is an attractive building block in biomedical applications. Due to the versatile structu...
DNA nanostructures, owing to their controllable and adaptable nature, have been considered as highly...
The DNA origami technique allows the precise synthesis of complex, biocompatible nanomaterials conta...
DNA nanotechnology has established approaches for designing programmable and precisely controlled na...
Engineering hybrid protein–DNA assemblies in a controlled manner has attracted particular attention,...
DNA origami is a DNA-based nanotechnology that utilizes programmed combinations of short complementa...
1700692Fully addressable DNA nanostructures, especially DNA origami, possess huge potential to serve...
In recent years, DNA nanotechnology has emerged into a fast-growing field that offers many applicati...
DNA nanostructures are powerful tools for synthetic biology with great promise as drug delivery devi...
Eukaryotic cells employ cytoskeletal motor proteins to efficiently organize and distribute intracell...
We report a synthetic biology-inspired approach for the engineering of amphipathic DNA origami struc...
DNA origamis are fully tailored, programmable, biocompatible and readily functionalizable nanostruct...
The DNA origami technique is a widely used method to create customized, complex, spatially well-defi...
Viral capsids can adopt various geometries, most iconically characterized by icosahedral or helical ...
Various protein-based organelles exist in nature that are involved in a wide variety of different me...
DNA origami is an attractive building block in biomedical applications. Due to the versatile structu...
DNA nanostructures, owing to their controllable and adaptable nature, have been considered as highly...
The DNA origami technique allows the precise synthesis of complex, biocompatible nanomaterials conta...
DNA nanotechnology has established approaches for designing programmable and precisely controlled na...
Engineering hybrid protein–DNA assemblies in a controlled manner has attracted particular attention,...
DNA origami is a DNA-based nanotechnology that utilizes programmed combinations of short complementa...
1700692Fully addressable DNA nanostructures, especially DNA origami, possess huge potential to serve...
In recent years, DNA nanotechnology has emerged into a fast-growing field that offers many applicati...
DNA nanostructures are powerful tools for synthetic biology with great promise as drug delivery devi...
Eukaryotic cells employ cytoskeletal motor proteins to efficiently organize and distribute intracell...
We report a synthetic biology-inspired approach for the engineering of amphipathic DNA origami struc...
DNA origamis are fully tailored, programmable, biocompatible and readily functionalizable nanostruct...