AbstractCrossover motifs are integral components for designing DNA-based nanostructures and nanomechanical devices due to their enhanced rigidity compared to the normal B-DNA. Although the structural rigidity of the double helix B-DNA has been investigated extensively using both experimental and theoretical tools, to date there is no quantitative information about structural rigidity and the mechanical strength of parallel crossover DNA motifs. We have used fully atomistic molecular dynamics simulations in explicit solvent to get the force-extension curve of parallel DNA nanostructures to characterize their mechanical rigidity. In the presence of monovalent Na+ ions, we find that the stretch modulus (γ1) of the paranemic crossover and its t...
The molecular structure of the DNA double helix has been known for 60 years, but we remain surprisin...
AbstractThis work probes the mystery of what balance of forces creates the extraordinary mechanical ...
DNA nanotubes are tubular structures composed of DNA crossover molecules. We present a bottom up app...
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...
Crossover motifs are integral components for designing DNA-based nanostructures and nanomechanical d...
AbstractWe use molecular dynamics (MD) simulations to understand the structure and stability of vari...
We use molecular dynamics (MD) simulations to understand the structure, and stability of various Par...
AbstractDouble crossover molecules are DNA structures containing two Holliday junctions connected by...
We use molecular dynamics (MD) simulations to understand the structure and stability of various para...
AbstractBranched DNA motifs can be designed to assume a variety of shapes and structures. These stru...
We use molecular dynamics simulations in explicit water and salt (Na+) to determine the effect of va...
AbstractWe studied the structure and mechanical properties of DNA i-motif nanowires by means of mole...
Biological processes manipulating DNA test its physical properties. Atomistic molecular dynamics sim...
Structural DNA nanotechnology, the assembly of rigid 3D structures of complex yet precise geometries...
The molecular structure of the DNA double helix has been known for 60 years, but we remain surprisin...
AbstractThis work probes the mystery of what balance of forces creates the extraordinary mechanical ...
DNA nanotubes are tubular structures composed of DNA crossover molecules. We present a bottom up app...
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...
Crossover motifs are integral components for designing DNA-based nanostructures and nanomechanical d...
AbstractWe use molecular dynamics (MD) simulations to understand the structure and stability of vari...
We use molecular dynamics (MD) simulations to understand the structure, and stability of various Par...
AbstractDouble crossover molecules are DNA structures containing two Holliday junctions connected by...
We use molecular dynamics (MD) simulations to understand the structure and stability of various para...
AbstractBranched DNA motifs can be designed to assume a variety of shapes and structures. These stru...
We use molecular dynamics simulations in explicit water and salt (Na+) to determine the effect of va...
AbstractWe studied the structure and mechanical properties of DNA i-motif nanowires by means of mole...
Biological processes manipulating DNA test its physical properties. Atomistic molecular dynamics sim...
Structural DNA nanotechnology, the assembly of rigid 3D structures of complex yet precise geometries...
The molecular structure of the DNA double helix has been known for 60 years, but we remain surprisin...
AbstractThis work probes the mystery of what balance of forces creates the extraordinary mechanical ...
DNA nanotubes are tubular structures composed of DNA crossover molecules. We present a bottom up app...