AbstractThe position and extent of movement of a charged peptide within a membrane bilayer provides much controversy. In our study, we have examined the nature of the highly charged helix-turn-helix motif (S3b and S4) to address how a highly charged peptide is stabilized within a bilayer in the presence of various transmembrane electrical potentials. Our double-bilayer simulation results show how the variation of the salt concentrations between the inner and outer bath establishes a transmembrane potential. Our results also show that important features of the peptide affected by changes in electrical potential are the center of mass depth, the swivel/kink degrees of conformation, and the hydrogen-bonding patterns. As the voltage gradient ac...
To probe the fundamentals of membrane/protein interactions, all-atom multi-nanosecond molecular dyna...
Transmembrane proteins are crucial in cellular traffic, signal transduction, and energy storage in a...
The voltage sensor (VS) domain of voltage-gated ion channels underlies the electrical excitability o...
AbstractThe position and extent of movement of a charged peptide within a membrane bilayer provides ...
Most membrane proteins contain a transmembrane (TM) domain made up of a bundle of lipid-bilayer-span...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
Coarse-grained molecular dynamics simulations are used to explore the interaction with a phospholipi...
Coarse-grained molecular dynamics simulations are used to explore the interaction with a phospholipi...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
SummaryThe nature of voltage sensing by voltage-activated ion channels is a key problem in membrane ...
The cell membrane largely prevents the passive diffusion of charged molecules due to the large free ...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
A molecular dynamics simulation of a simple model membrane system composed of a single amphiphilic h...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
Ion channel-forming peptides enable us to study the conformational dynamics of a transmembrane helix...
To probe the fundamentals of membrane/protein interactions, all-atom multi-nanosecond molecular dyna...
Transmembrane proteins are crucial in cellular traffic, signal transduction, and energy storage in a...
The voltage sensor (VS) domain of voltage-gated ion channels underlies the electrical excitability o...
AbstractThe position and extent of movement of a charged peptide within a membrane bilayer provides ...
Most membrane proteins contain a transmembrane (TM) domain made up of a bundle of lipid-bilayer-span...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
Coarse-grained molecular dynamics simulations are used to explore the interaction with a phospholipi...
Coarse-grained molecular dynamics simulations are used to explore the interaction with a phospholipi...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
SummaryThe nature of voltage sensing by voltage-activated ion channels is a key problem in membrane ...
The cell membrane largely prevents the passive diffusion of charged molecules due to the large free ...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
A molecular dynamics simulation of a simple model membrane system composed of a single amphiphilic h...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
Ion channel-forming peptides enable us to study the conformational dynamics of a transmembrane helix...
To probe the fundamentals of membrane/protein interactions, all-atom multi-nanosecond molecular dyna...
Transmembrane proteins are crucial in cellular traffic, signal transduction, and energy storage in a...
The voltage sensor (VS) domain of voltage-gated ion channels underlies the electrical excitability o...