We present an atomistic model of pillared DNA nanotubes (DNTs) and their elastic properties which will facilitate further studies of these nanotubes in several important nanotechnological and biological applications. In particular, we introduce a computational design to create an atomistic model of a 6-helix DNT (6HB) along with its two variants, 6HB flanked symmetrically with two double helical DNA pillars (6HB+2) and 6HB flanked symmetrically by three double helical DNA pillars (6HB+3). Analysis of 200 ns all-atom simulation trajectories in the presence of explicit water and ions shows that these structures are stable and well behaved in all three geometries. Hydrogen bonding is well maintained for all variants of 6HB DNTs. From the equil...
DNA origami offers the possibility of developing novel membrane-spanning pores with potential applic...
AbstractCrossover motifs are integral components for designing DNA-based nanostructures and nanomech...
Crossover motifs are integral components for designing DNA-based nanostructures and nanomechanical d...
We present an atomistic model of pillared DNA nanotubes (DNTs) and their elastic properties which wi...
We present an atomistic model of pillared DNA nanotubes (DNTs) and their elastic properties which wi...
We present an atomistic model of pillared DNA nanotubes (DNTs) and their elastic properties which wi...
DNA nanotubes are tubular structures composed of DNA crossover molecules. We present a bottom up app...
Deoxyribonucleic acid (DNA) is arguably the most studied and most important biological molecule. Rec...
We measure the stiffness of tiled DNA nanotubes (HX-tubes) as a function of their (defined) circumfe...
To study the elastic properties of rodlike DNA nanostructures, we perform long simulations of these ...
Among the key goals of structural DNA nanotechnology are to build highly ordered structures self-ass...
AbstractWe studied the structure and mechanical properties of DNA i-motif nanowires by means of mole...
DNA has been demonstrated as a powerful platform for the construction of inorganic nanoparticles (NP...
Structural DNA nanotechnology, the assembly of rigid 3D structures of complex yet precise geometries...
Crossover motifs are integral components for designing DNA-based nanostructures and nanomechanical d...
DNA origami offers the possibility of developing novel membrane-spanning pores with potential applic...
AbstractCrossover motifs are integral components for designing DNA-based nanostructures and nanomech...
Crossover motifs are integral components for designing DNA-based nanostructures and nanomechanical d...
We present an atomistic model of pillared DNA nanotubes (DNTs) and their elastic properties which wi...
We present an atomistic model of pillared DNA nanotubes (DNTs) and their elastic properties which wi...
We present an atomistic model of pillared DNA nanotubes (DNTs) and their elastic properties which wi...
DNA nanotubes are tubular structures composed of DNA crossover molecules. We present a bottom up app...
Deoxyribonucleic acid (DNA) is arguably the most studied and most important biological molecule. Rec...
We measure the stiffness of tiled DNA nanotubes (HX-tubes) as a function of their (defined) circumfe...
To study the elastic properties of rodlike DNA nanostructures, we perform long simulations of these ...
Among the key goals of structural DNA nanotechnology are to build highly ordered structures self-ass...
AbstractWe studied the structure and mechanical properties of DNA i-motif nanowires by means of mole...
DNA has been demonstrated as a powerful platform for the construction of inorganic nanoparticles (NP...
Structural DNA nanotechnology, the assembly of rigid 3D structures of complex yet precise geometries...
Crossover motifs are integral components for designing DNA-based nanostructures and nanomechanical d...
DNA origami offers the possibility of developing novel membrane-spanning pores with potential applic...
AbstractCrossover motifs are integral components for designing DNA-based nanostructures and nanomech...
Crossover motifs are integral components for designing DNA-based nanostructures and nanomechanical d...