Biological molecular machines perform the work of supporting life at the smallest of scales, including the work of shuttling ions across cell boundaries and against chemical gradients. Systems of artificial channels at the nanoscale can likewise control ionic concentration by way of ionic current rectification, species selectivity, and voltage gating mechanisms. Here, we theoretically show that a voltage-gated, ion species-selective, and rectifying ion channel can be built using the components of a biological water channel aquaporin. Through all-atom molecular dynamics simulations, we show that the ionic conductance of a truncated aquaporin channel nonlinearly increases with the bias magnitude, depends on the channel’s orientation, and is h...
A detailed characterization of the physics of novel nanopore systems has the potential to revolution...
Biological ion channels are essential to life in all its forms. The key properties underlying their ...
<div id="articleAbsctract"><p>Active control of ion transport in nanoscale channels is attracting in...
Biological molecular machines perform the work of supporting life at the smallest of scales, includi...
Bioinspired artificial functional nanochannels for intelligent molecular and ionic transport control...
Ion channels form the basis of information processing in living cells by facilitating the exchange o...
Ion channels form the basis of information processing in living cells by facilitating the exchange o...
Ion channels are part of nature???s solution for regulating biological environments. Every ion chann...
Aquaporins (AQPs) are biological water channels known for fast water transport (∼10<sup>8</sup>–10<s...
AbstractBiological ion channels are nanoscale transmembrane pores. When water and ions are enclosed ...
We show experimentally and theoretically that significant currents can be obtained with a biological...
Biological ion channels have been an inspirational source in the development of new devices in a var...
A detailed characterization of the physics of novel nanopore systems has the potential to revolution...
Biological ion channels are essential to life in all its forms. The key properties underlying their ...
<div id="articleAbsctract"><p>Active control of ion transport in nanoscale channels is attracting in...
Biological molecular machines perform the work of supporting life at the smallest of scales, includi...
Bioinspired artificial functional nanochannels for intelligent molecular and ionic transport control...
Ion channels form the basis of information processing in living cells by facilitating the exchange o...
Ion channels form the basis of information processing in living cells by facilitating the exchange o...
Ion channels are part of nature???s solution for regulating biological environments. Every ion chann...
Aquaporins (AQPs) are biological water channels known for fast water transport (∼10<sup>8</sup>–10<s...
AbstractBiological ion channels are nanoscale transmembrane pores. When water and ions are enclosed ...
We show experimentally and theoretically that significant currents can be obtained with a biological...
Biological ion channels have been an inspirational source in the development of new devices in a var...
A detailed characterization of the physics of novel nanopore systems has the potential to revolution...
Biological ion channels are essential to life in all its forms. The key properties underlying their ...
<div id="articleAbsctract"><p>Active control of ion transport in nanoscale channels is attracting in...