DNA has been used to construct a wide variety of nanoscale molecular devices. Inspiration for such synthetic molecular machines is frequently drawn from protein motors, which are naturally occurring and ubiquitous. However, despite the fact that rotary motors such as ATP synthase and the bacterial flagellar motor play extremely important roles in nature, very few rotary devices have been constructed using DNA. This paper describes an experimental study of the putative mechanism of a rotary DNA nanomotor, which is based on strand displacement, the phenomenon that powers many synthetic linear DNA motors. Unlike other examples of rotary DNA machines, the device described here is designed to be capable of autonomous operation after it is trigge...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
Analogous to the biologically abundant protein-based linear molecular machines that translocate alon...
DNA has been used to construct a wide variety of nanoscale molecular devices. Inspiration for such s...
DNA has been used to construct a wide variety of nanoscale molecular devices. Inspiration for such s...
Biological motors are highly complex protein assemblies that generate linear or rotary motion, power...
DNA provides an ideal substrate for nanoscale construction and programmable dynamic mechanisms. DNA ...
Biological functions such as cell mitosis, bacterial binary fission, DNA replication or repair, homo...
Biological functions such as cell mitosis, bacterial binary fission, DNA replication or repair, homo...
Biological functions such as cell mitosis, bacterial binary fission, DNA replication or repair, homo...
Surface-immobilization of molecules can have a profound influence on their structure, function and d...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
DNA nanomotors are synthetic biochemical devices whose motion can be controlled at the molecular sca...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
Analogous to the biologically abundant protein-based linear molecular machines that translocate alon...
DNA has been used to construct a wide variety of nanoscale molecular devices. Inspiration for such s...
DNA has been used to construct a wide variety of nanoscale molecular devices. Inspiration for such s...
Biological motors are highly complex protein assemblies that generate linear or rotary motion, power...
DNA provides an ideal substrate for nanoscale construction and programmable dynamic mechanisms. DNA ...
Biological functions such as cell mitosis, bacterial binary fission, DNA replication or repair, homo...
Biological functions such as cell mitosis, bacterial binary fission, DNA replication or repair, homo...
Biological functions such as cell mitosis, bacterial binary fission, DNA replication or repair, homo...
Surface-immobilization of molecules can have a profound influence on their structure, function and d...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
DNA nanomotors are synthetic biochemical devices whose motion can be controlled at the molecular sca...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
We present a synthetic nanoscale piston that uses chemical energy to perform molecular transport aga...
Analogous to the biologically abundant protein-based linear molecular machines that translocate alon...