Nanotechnology often exploits DNA origami nanostructures assembled into even larger superstructures up to micrometer sizes with nanometer shape precision. However, large-scale assembly of such structures is very time-consuming. Here, we investigated the efficiency of superstructure assembly on surfaces using indirect cross-linking through low-complexity connector strands binding staple strand extensions, instead of connector strands binding to scaffold loops. Using single-molecule imaging techniques, including fluorescence microscopy and atomic force microscopy, we show that low sequence complexity connector strands allow formation of DNA origami superstructures on lipid membranes, with an order-of-magnitude enhancement in the assembly spee...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
Self-assembled DNA origami nanostructures have shown great promise for bottom-up construction of com...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
An orthogonal, noncovalent approach to direct the assembly of higher-order DNA origami nanostructure...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
The generation of arbitrary patterns and shapes at very small scales is at the heart of our effort t...
Structural DNA nanotechnology, and specifically scaffolded DNA origami, is rapidly developing as a v...
Structural DNA nanotechnology, and specifically scaffolded DNA origami, is rapidly developing as a v...
Nucleic acid nanotechnology exploits the programmable molecular recognition properties of natural an...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
DNA origami is a robust method for the creation of nanostructures with arbitrary shapes, whereby a l...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
Self-assembled DNA origami nanostructures have shown great promise for bottom-up construction of com...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
An orthogonal, noncovalent approach to direct the assembly of higher-order DNA origami nanostructure...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...
The generation of arbitrary patterns and shapes at very small scales is at the heart of our effort t...
Structural DNA nanotechnology, and specifically scaffolded DNA origami, is rapidly developing as a v...
Structural DNA nanotechnology, and specifically scaffolded DNA origami, is rapidly developing as a v...
Nucleic acid nanotechnology exploits the programmable molecular recognition properties of natural an...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
DNA origami is a robust method for the creation of nanostructures with arbitrary shapes, whereby a l...
Artificial DNA nanostructures show promise for the organization of functional materials to create na...
Self-assembled DNA origami nanostructures have shown great promise for bottom-up construction of com...
Self-assembled DNA nanostructures feature an unprecedented addressability with sub-nanometer precisi...