The flexible and precise immobilization of self-organizing DNA nanostructures represents a key step in the integration of DNA-based material for potential electronic or sensor applications. However, the involved processes have still not been well studied and are not yet fully understood. Thus, we investigated the potential for the mechanical manipulation of DNA origami by atomic force microscopy (AFM) in order to study the interaction between intramolecular flexibility and surface-attachment forces. AFM is particularly suitable for nanoscale manipulation. Previous studies showed the potential for pushing, bending, and cutting double-stranded DNA (dsDNA) with an AFM tip. Understanding the involved parameters may enable control over different...
Single-stranded SO-mer, 100-mer, and 150-mer DNAs were immobilized on a surface, and force-based ato...
Despite the recent development in the design of DNA origami, its folding yet relies on thermal or ch...
DNA origami nanostructures (DONs) are promising substrates for the single-molecule investigation of ...
Deoxyribonucleic acid (DNA) origami [1] is expected to be a nanoscale functional block for Nano El...
The nanoscale manipulation of 1D soft and flexible 'DNA origami nanotubes' (DONs) that are 6...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...
DNA origami nanostructures allow for the arrangement of different functionalities such as proteins, ...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...
DNA electronics circuits require an efficient way to accurately position and individually manipulate...
We have simulated large-scale DNA nanostructures using the oxDNA software which uses coarse-graining...
DNA origami enables fabrication of precise nanostructures by programming the self-assembly of DNA. W...
Deoxyribonucleic acid (DNA), the structural basis of genetics, plays a crucial role in the life of c...
Despite the recent development in the design of DNA origami, its folding yet relies on thermal or ch...
The DNA origami technology holds great promise for the assembly of nanoscopic technological devices ...
Single-stranded SO-mer, 100-mer, and 150-mer DNAs were immobilized on a surface, and force-based ato...
Despite the recent development in the design of DNA origami, its folding yet relies on thermal or ch...
DNA origami nanostructures (DONs) are promising substrates for the single-molecule investigation of ...
Deoxyribonucleic acid (DNA) origami [1] is expected to be a nanoscale functional block for Nano El...
The nanoscale manipulation of 1D soft and flexible 'DNA origami nanotubes' (DONs) that are 6...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...
DNA origami nanostructures allow for the arrangement of different functionalities such as proteins, ...
The mechanical properties of DNA nanostructures are of widespread interest as applications that expl...
DNA electronics circuits require an efficient way to accurately position and individually manipulate...
We have simulated large-scale DNA nanostructures using the oxDNA software which uses coarse-graining...
DNA origami enables fabrication of precise nanostructures by programming the self-assembly of DNA. W...
Deoxyribonucleic acid (DNA), the structural basis of genetics, plays a crucial role in the life of c...
Despite the recent development in the design of DNA origami, its folding yet relies on thermal or ch...
The DNA origami technology holds great promise for the assembly of nanoscopic technological devices ...
Single-stranded SO-mer, 100-mer, and 150-mer DNAs were immobilized on a surface, and force-based ato...
Despite the recent development in the design of DNA origami, its folding yet relies on thermal or ch...
DNA origami nanostructures (DONs) are promising substrates for the single-molecule investigation of ...