Voltage-sensitive sodium channels and calcium channels are homologous proteins with distinctly different selectivity for permeation of inorganic cations. This difference in function is specified by amino acid residues located within P-region segments that link presumed transmembrane elements S5 and S6 in each of four repetitive Domains I, II, III, and IV. By analyzing the selective permeability of Na+, K+, and Ca2+ in various mutants of the mu 1 rat muscle sodium channel, the results in this paper support the concept that a conserved motif of four residues contributed by each of the Domains I-IV, termed the DEKA locus in sodium channels and the EEEE locus in calcium channels, determines the ionic selectivity of these channels. Furthermore, ...
Voltage-gated Na⁺-channels are transmembrane proteins that are responsible for the fast depolarizing...
Voltage-gated Na⁺-channels are transmembrane proteins that are responsible for the fast depolarizing...
Bacterial and human voltage-gated sodium channels (Navs) exhibit similar cation selectivity, despite...
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...
Recent evidence indicates that ionic selectivity in voltage-gated Na+ channels is mediated by a smal...
To explore the role of pore-lining amino acids in Na+ channel ion- selectivity, pore residues were r...
SummaryElectrical signaling in animal nerves and muscles is largely carried out by proteins in the s...
A conserved lysine residue in the "P loop" of domain III renders sodium channels highly selective. C...
Voltage-gated sodium (Nav) channels are critical in the generation and transmission of neuronal sign...
Voltage-gated sodium channels are the molecular components of electrical signaling in the body, yet ...
Voltage-gated sodium channels are essential for electrical signalling across cell membranes. They ex...
The permeation pathway of the Na channel is formed by asymmetric loops (P segments) contributed by e...
ConspectusSodium ion channels selectively transport Na<sup>+</sup> cations across the cell membrane....
Voltage-gated Na⁺-channels are transmembrane proteins that are responsible for the fast depolarizing...
Voltage-gated Na⁺-channels are transmembrane proteins that are responsible for the fast depolarizing...
Bacterial and human voltage-gated sodium channels (Navs) exhibit similar cation selectivity, despite...
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...
Recent evidence indicates that ionic selectivity in voltage-gated Na+ channels is mediated by a smal...
To explore the role of pore-lining amino acids in Na+ channel ion- selectivity, pore residues were r...
SummaryElectrical signaling in animal nerves and muscles is largely carried out by proteins in the s...
A conserved lysine residue in the "P loop" of domain III renders sodium channels highly selective. C...
Voltage-gated sodium (Nav) channels are critical in the generation and transmission of neuronal sign...
Voltage-gated sodium channels are the molecular components of electrical signaling in the body, yet ...
Voltage-gated sodium channels are essential for electrical signalling across cell membranes. They ex...
The permeation pathway of the Na channel is formed by asymmetric loops (P segments) contributed by e...
ConspectusSodium ion channels selectively transport Na<sup>+</sup> cations across the cell membrane....
Voltage-gated Na⁺-channels are transmembrane proteins that are responsible for the fast depolarizing...
Voltage-gated Na⁺-channels are transmembrane proteins that are responsible for the fast depolarizing...
Bacterial and human voltage-gated sodium channels (Navs) exhibit similar cation selectivity, despite...