AbstractWe use molecular dynamics (MD) simulations to understand the structure and stability of various paranemic crossover (PX) DNA molecules, synthesized recently by Seeman and co-workers at New York University. These studies include all atoms of the PX structures with an explicit description of solvent and ions. The average dynamics structures over the last 1ns of the 3-ns simulation preserve the Watson-Crick hydrogen bonding as well as the helical structure. The root mean-square deviation in coordinates with respect to the MD averaged structure converges to 2–3Å for PX55, PX65, and PX85, but for PX75 and PX95 the root mean-square deviation in coordinates exhibits large fluctuations, indicating an intrinsic instability. The PX structures...
AbstractThe twist flexibility of DNA is central to its many biological functions. Explicit solvent m...
AbstractDouble crossover molecules are DNA structures containing two Holliday junctions connected by...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Biological Engineering, 2016.Th...
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 para...
We use molecular dynamics (MD) simulations to understand the structure, and stability of various Par...
We use molecular dynamics simulations in explicit water and salt (Na+) to determine the effect of va...
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...
Deoxyribonucleic acid (DNA) is arguably the most studied and most important biological molecule. Rec...
Structural DNA nanotechnology, the assembly of rigid 3D structures of complex yet precise geometries...
Biological processes manipulating DNA test its physical properties. Atomistic molecular dynamics sim...
Synthetic DNA is a highly programmable nanoscale material that can be designed to self-assemble into...
The Watson-Crick base-pairing of DNA has been exploited through sticky-end cohesion and branched jun...
AbstractThe twist flexibility of DNA is central to its many biological functions. Explicit solvent m...
AbstractDouble crossover molecules are DNA structures containing two Holliday junctions connected by...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Biological Engineering, 2016.Th...
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 para...
We use molecular dynamics (MD) simulations to understand the structure, and stability of various Par...
We use molecular dynamics simulations in explicit water and salt (Na+) to determine the effect of va...
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...
Deoxyribonucleic acid (DNA) is arguably the most studied and most important biological molecule. Rec...
Structural DNA nanotechnology, the assembly of rigid 3D structures of complex yet precise geometries...
Biological processes manipulating DNA test its physical properties. Atomistic molecular dynamics sim...
Synthetic DNA is a highly programmable nanoscale material that can be designed to self-assemble into...
The Watson-Crick base-pairing of DNA has been exploited through sticky-end cohesion and branched jun...
AbstractThe twist flexibility of DNA is central to its many biological functions. Explicit solvent m...
AbstractDouble crossover molecules are DNA structures containing two Holliday junctions connected by...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Biological Engineering, 2016.Th...