Synthetic motors that consume chemical energy to produce mechanical work offer potential applications in many fields that span from computing to drug delivery and diagnostics. Among the various synthetic motors studied thus far, DNA-based machines offer the greatest programmability and have shown the ability to translocate micrometer-distances in an autonomous manner. DNA motors move by employing a burnt-bridge Brownian ratchet mechanism, where the DNA "legs"hybridize and then destroy complementary nucleic acids immobilized on a surface. We have previously shown that highly multivalent DNA motors that roll offer improved performance compared to bipedal walkers. Here, we use DNA-gold nanoparticle conjugates to investigate and enhance DNA nan...
Opportunely designed synthetic DNA molecules can spontaneously self-assemble into stable nanosized s...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
none5Opportunely designed synthetic DNA molecules can spontaneously self-assemble into stable nanosi...
DNA-based machines that walk by converting chemical energy into controlled motion could be of use in...
A dynamic DNA nanosystem exploits the programmable structure and energy landscape of DNA self-assemb...
Small devices capable of self-propulsion have potential application in areas of nanoscience where au...
DNA nanomotors are synthetic biochemical devices whose motion can be controlled at the molecular sca...
DNA provides an ideal substrate for nanoscale construction and programmable dynamic mechanisms. DNA ...
Small devices capable of self-propulsion have potential application in areas of nanoscience where au...
Intracellular protein motors have evolved to perform specific tasks critical to the function of cell...
Motor proteins such as kinesin move along microtubules in order to transport cellular cargos through...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
Keywords: DNA, Nanostructures, Nano-robotics, Self-assembly, Autonomous molecular devices A major ch...
Replicating efficient chemical energy utilization of biological nanomotors is one ultimate goal of n...
Opportunely designed synthetic DNA molecules can spontaneously self-assemble into stable nanosized s...
Opportunely designed synthetic DNA molecules can spontaneously self-assemble into stable nanosized s...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
none5Opportunely designed synthetic DNA molecules can spontaneously self-assemble into stable nanosi...
DNA-based machines that walk by converting chemical energy into controlled motion could be of use in...
A dynamic DNA nanosystem exploits the programmable structure and energy landscape of DNA self-assemb...
Small devices capable of self-propulsion have potential application in areas of nanoscience where au...
DNA nanomotors are synthetic biochemical devices whose motion can be controlled at the molecular sca...
DNA provides an ideal substrate for nanoscale construction and programmable dynamic mechanisms. DNA ...
Small devices capable of self-propulsion have potential application in areas of nanoscience where au...
Intracellular protein motors have evolved to perform specific tasks critical to the function of cell...
Motor proteins such as kinesin move along microtubules in order to transport cellular cargos through...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
Keywords: DNA, Nanostructures, Nano-robotics, Self-assembly, Autonomous molecular devices A major ch...
Replicating efficient chemical energy utilization of biological nanomotors is one ultimate goal of n...
Opportunely designed synthetic DNA molecules can spontaneously self-assemble into stable nanosized s...
Opportunely designed synthetic DNA molecules can spontaneously self-assemble into stable nanosized s...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
none5Opportunely designed synthetic DNA molecules can spontaneously self-assemble into stable nanosi...