A conserved lysine residue in the "P loop" of domain III renders sodium channels highly selective. Conversion of this residue to glutamate, to mimic the homologous position in calcium channels, enables Ca2+ to permeate sodium channels. Because the lysine-to-glutamate mutation converts a positively charged side chain to a negative one, it has been proposed that a positive charge at this position suffices for Na+ selectivity. We tested this idea by converting the critical lysine to cysteine (K1237C) in mu 1 rat skeletal sodium channels expressed in Xenopus oocytes. Selectivity of the mutant channels was then characterized before and after chemical modification to alter side-chain charge. Wild-type channels are highly selective for Na+ over Ca...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
We use Brownian dynamics (BD) simulations to study the ionic conduction and valence selectivity of a...
A conserved lysine residue in the "P loop" of domain III renders sodium channels highly selective. C...
To explore the role of pore-lining amino acids in Na+ channel ion- selectivity, pore residues were r...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
AbstractWe used serial cysteine mutagenesis to study the structure of the outer vestibule and select...
Ion channel selectivity is essential for their function, yet the molecular basis of a channel's abil...
The P segments of the voltage-dependent Na+ channel line the outer mouth and selectivity filter of t...
AbstractA reduced model of a sodium channel is analyzed using Dynamic Monte Carlo simulations. These...
A key driving force for ion channel selectivity is represented by the negative charge of the Selecti...
Asparagine is conserved in the S6 transmembrane segments of all voltage-gated sodium, calcium, and T...
grantor: University of TorontoThe structure and functions of Na+ channel were studied usin...
grantor: University of TorontoThe structure and functions of Na+ channel were studied usin...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
We use Brownian dynamics (BD) simulations to study the ionic conduction and valence selectivity of a...
A conserved lysine residue in the "P loop" of domain III renders sodium channels highly selective. C...
To explore the role of pore-lining amino acids in Na+ channel ion- selectivity, pore residues were r...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
AbstractWe used serial cysteine mutagenesis to study the structure of the outer vestibule and select...
Ion channel selectivity is essential for their function, yet the molecular basis of a channel's abil...
The P segments of the voltage-dependent Na+ channel line the outer mouth and selectivity filter of t...
AbstractA reduced model of a sodium channel is analyzed using Dynamic Monte Carlo simulations. These...
A key driving force for ion channel selectivity is represented by the negative charge of the Selecti...
Asparagine is conserved in the S6 transmembrane segments of all voltage-gated sodium, calcium, and T...
grantor: University of TorontoThe structure and functions of Na+ channel were studied usin...
grantor: University of TorontoThe structure and functions of Na+ channel were studied usin...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly diffe...
We use Brownian dynamics (BD) simulations to study the ionic conduction and valence selectivity of a...