DNA origami is a state-of-the-art technology that enables the fabrication of nano-objects with defined shapes, to which functional moieties, such as lipophilic anchors, can be attached with a nanometre scale precision. Although binding of DNA origami to lipid membranes has been extensively demonstrated, the specific requirements necessary for membrane attachment are greatly overlooked. Here, we designed a set of amphipathic rectangular-shaped DNA origami structures with varying placement and number of chol-TEG anchors used for membrane attachment. Single- and multiple-cholesteryl-modified origami nanostructures were produced and studied in terms of their membrane localization, density and dynamics. We show that the positioning of at least t...
DNA nanostructures offer the possibility to mimic functional biological membrane components due to t...
Much of our knowledge of cellular biology arises from direct observation of active cellular function...
Nanotechnology often exploits DNA origami nanostructures assembled into even larger superstructures ...
DNA origami nanotechnology is being increasingly used to mimic membrane-associated biophysical pheno...
DNA origami nanotechnology is being increasingly used to mimic membrane-associated biophysical pheno...
Biological membranes fulfill many important tasks within living organisms. In addition to separating...
We report a synthetic biology-inspired approach for the engineering of amphipathic DNA origami struc...
DNA nanotechnology allows for the programmable self-assembly of nanostructures of arbitrary shapes a...
Recently, DNA origami became a powerful tool for custom-shaped functional biomolecules. In this pape...
DNA nanotechnology provides methods for building custom membrane-interacting nanostructures with div...
Over the last decade, functionally designed DNA nanostructures applied to lipid membranes prompted i...
AbstractOver the last decade, functionally designed DNA nanostructures applied to lipid membranes pr...
DNA nanostructures offer the possibility to mimic functional biological membrane components due to t...
We describe the triggered assembly of a bio-inspired DNA origami meshwork on a lipid membrane. DNA t...
DNA nanotechnology enables the precise construction of nanoscale devices that mimic aspects of natur...
DNA nanostructures offer the possibility to mimic functional biological membrane components due to t...
Much of our knowledge of cellular biology arises from direct observation of active cellular function...
Nanotechnology often exploits DNA origami nanostructures assembled into even larger superstructures ...
DNA origami nanotechnology is being increasingly used to mimic membrane-associated biophysical pheno...
DNA origami nanotechnology is being increasingly used to mimic membrane-associated biophysical pheno...
Biological membranes fulfill many important tasks within living organisms. In addition to separating...
We report a synthetic biology-inspired approach for the engineering of amphipathic DNA origami struc...
DNA nanotechnology allows for the programmable self-assembly of nanostructures of arbitrary shapes a...
Recently, DNA origami became a powerful tool for custom-shaped functional biomolecules. In this pape...
DNA nanotechnology provides methods for building custom membrane-interacting nanostructures with div...
Over the last decade, functionally designed DNA nanostructures applied to lipid membranes prompted i...
AbstractOver the last decade, functionally designed DNA nanostructures applied to lipid membranes pr...
DNA nanostructures offer the possibility to mimic functional biological membrane components due to t...
We describe the triggered assembly of a bio-inspired DNA origami meshwork on a lipid membrane. DNA t...
DNA nanotechnology enables the precise construction of nanoscale devices that mimic aspects of natur...
DNA nanostructures offer the possibility to mimic functional biological membrane components due to t...
Much of our knowledge of cellular biology arises from direct observation of active cellular function...
Nanotechnology often exploits DNA origami nanostructures assembled into even larger superstructures ...