We present a detailed coarse-grained computer simulation and singlemolecule fluorescence study of the walking dynamics and mechanism of a DNA bipedal motor striding on a DNA origami. In particular, we study the dependency of the walking efficiency and stepping kinetics on step size. The simulations accurately capture and explain three different experimental observations. These include a description of the maximum possible step size, a decrease in the walking efficiency over short distances and a dependency of the efficiency on the walking direction with respect to the origami track. The former two observations were not expected and are non-trivial. Based on this study, we suggest three design modifications to improve future DNA walkers. Our...
© 2013, Springer Science+Business Media Dordrecht.We apply a recently-developed coarse-grained model...
Imagine a host of nanoscale DNA robots move,autonomously over a microscale DNA nanostructure, each f...
Unlike their traditional, silicon counterparts, DNA computers have natural interfaces with both chem...
We present a detailed coarse-grained computer simulation and singlemolecule fluorescence study of th...
DNA origami is a method for constructing 2-dimensional nanostructures with arbitrary shapes, by fold...
Artificial molecular walkers beyond burn-bridge designs are important for nanotechnology, but their ...
DNA provides an ideal substrate for nanoscale construction and programmable dynamic mechanisms. DNA ...
DNA nanotechnology uses the Watson-Crick base-pairing of DNA to self-assemble structures at the nano...
A strategy to speed up DNA walking devices through the use of DNA catalysts has been developed. The ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
DNA nanotechnology uses the Watson-Crick base-pairing of DNA to self-assemble structures at the nano...
© 2013, Springer Science+Business Media Dordrecht.We apply a recently-developed coarse-grained model...
Imagine a host of nanoscale DNA robots move,autonomously over a microscale DNA nanostructure, each f...
Unlike their traditional, silicon counterparts, DNA computers have natural interfaces with both chem...
We present a detailed coarse-grained computer simulation and singlemolecule fluorescence study of th...
DNA origami is a method for constructing 2-dimensional nanostructures with arbitrary shapes, by fold...
Artificial molecular walkers beyond burn-bridge designs are important for nanotechnology, but their ...
DNA provides an ideal substrate for nanoscale construction and programmable dynamic mechanisms. DNA ...
DNA nanotechnology uses the Watson-Crick base-pairing of DNA to self-assemble structures at the nano...
A strategy to speed up DNA walking devices through the use of DNA catalysts has been developed. The ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
We apply a recently-developed coarse-grained model of DNA, designed to capture the basic physics of ...
DNA nanotechnology uses the Watson-Crick base-pairing of DNA to self-assemble structures at the nano...
© 2013, Springer Science+Business Media Dordrecht.We apply a recently-developed coarse-grained model...
Imagine a host of nanoscale DNA robots move,autonomously over a microscale DNA nanostructure, each f...
Unlike their traditional, silicon counterparts, DNA computers have natural interfaces with both chem...