Biological ion channels and synthetic nanopores are responsible for passive transport of ions through a membrane between two compartments. Modeling these ionic currents is especially amenable to reduced models because the device functions of these pores, the relation of input parameters (e.g., applied voltage, bath concentrations) and output parameters (e.g., current, rectification, selectivity), are well defined. Reduced models focus on the physics that produces the device functions (i.e., the physics of how inputs become outputs) rather than the atomic/molecular-scale physics inside the pore. Here, we propose four rules of thumb for constructing good reduced models of ion channels and nanopores. They are about (1) the importance of the ax...
In a multiscale modeling approach, we present computer simulation results for a rectifying bipolar ...
The problem of predicting selective transport of ions through nano-pores from their structure in the...
Presently, most simulations of ion channel function rely upon nonatomistic Brownian dynamics calcula...
We report a multiscale modeling study for charged cylindrical nanopores using three modeling levels ...
We study a model nanopore sensor with which a very low concentration of analyte molecules can be det...
We present a modeling study of a nanopore-based transistor computed by a mean-field continuum theory...
Biological ion channels are essential to life in all its forms. The key properties underlying their ...
Ion channels are part of nature???s solution for regulating biological environments. Every ion chann...
AbstractIon conduction through microscopic channels is of central importance in both biology and nan...
AbstractDuring release of vesicular content the resistance of the fusion pore sometimes changes rapi...
We study a rectifying mutant of the OmpF porin ion channel using both all-atom and reduced models. T...
Ion channels are pore-forming proteins that regulate the flow of ions across biological cell membran...
A detailed characterization of the physics of novel nanopore systems has the potential to revolution...
Nanopores attracted a great deal of scientific interest as templates for biological sensors as well ...
Nanopores attracted a great deal of scientific interest as templates for biological sensors as well ...
In a multiscale modeling approach, we present computer simulation results for a rectifying bipolar ...
The problem of predicting selective transport of ions through nano-pores from their structure in the...
Presently, most simulations of ion channel function rely upon nonatomistic Brownian dynamics calcula...
We report a multiscale modeling study for charged cylindrical nanopores using three modeling levels ...
We study a model nanopore sensor with which a very low concentration of analyte molecules can be det...
We present a modeling study of a nanopore-based transistor computed by a mean-field continuum theory...
Biological ion channels are essential to life in all its forms. The key properties underlying their ...
Ion channels are part of nature???s solution for regulating biological environments. Every ion chann...
AbstractIon conduction through microscopic channels is of central importance in both biology and nan...
AbstractDuring release of vesicular content the resistance of the fusion pore sometimes changes rapi...
We study a rectifying mutant of the OmpF porin ion channel using both all-atom and reduced models. T...
Ion channels are pore-forming proteins that regulate the flow of ions across biological cell membran...
A detailed characterization of the physics of novel nanopore systems has the potential to revolution...
Nanopores attracted a great deal of scientific interest as templates for biological sensors as well ...
Nanopores attracted a great deal of scientific interest as templates for biological sensors as well ...
In a multiscale modeling approach, we present computer simulation results for a rectifying bipolar ...
The problem of predicting selective transport of ions through nano-pores from their structure in the...
Presently, most simulations of ion channel function rely upon nonatomistic Brownian dynamics calcula...