To gain insight into the secondary structure of the ion conduction pathway of a voltage-gated K+ channel, we used sulfhydryl-specific reagents of different diameters to probe amino acid side-chain accessibilities in the pore of the channel after cysteine-substitution mutagenesis. We identified five positions at which modified amino acid side chains are accessible from the aqueous lumen of the external channel vestibule. Covalent coupling of the 2-trimethylammonium-thioethyl group to cysteine thiols leads to position-dependent current reduction, suggesting a gradual narrowing of the pore. The fact that the modified side chains of two adjacent amino acids are reactive is not compatible with the ion conduction pathway forming a regular beta-pl...
Abstract Substituted cysteine accessibility mutagenesis (SCAM) has been used widely to identify pore...
AbstractWe used cysteine-modifying reagents to localize the pH-sensitive gate in the renal inward-re...
The amino acid located at position 369 is a key determinant of the ion conduction pathway or pore of...
To gain insight into the secondary structure of the ion conduction pathway of a voltage-gated K+ cha...
AbstractWe used serial cysteine mutagenesis to study the structure of the outer vestibule and select...
AbstractVoltage-activated K+ channels are integral membrane proteins that open or close a K+-selecti...
AbstractUsing cysteine (Cys) scanning mutagenesis of the inward rectifier K+ channel Kir2.1, we inve...
AbstractVoltage-activated K+ channels are integral membrane proteins that open or close a K+-selecti...
We report the use of cysteine-substituted mutants in conjunction with in situ oxidation to determine...
We report the use of cysteine-substituted mutants in conjunction with in situ oxidation to determine...
Voltage-gated potassium channels are potassium selective ion pores that open in response to changes ...
Voltage-gated potassium channels are potassium selective ion pores that open in response to changes ...
Voltage-gated potassium channels are potassium selective ion pores that open in response to changes ...
The amino acid located at position 369 is a key determinant of the ion conduction pathway or pore of...
AbstractWe used serial cysteine mutagenesis to study the structure of the outer vestibule and select...
Abstract Substituted cysteine accessibility mutagenesis (SCAM) has been used widely to identify pore...
AbstractWe used cysteine-modifying reagents to localize the pH-sensitive gate in the renal inward-re...
The amino acid located at position 369 is a key determinant of the ion conduction pathway or pore of...
To gain insight into the secondary structure of the ion conduction pathway of a voltage-gated K+ cha...
AbstractWe used serial cysteine mutagenesis to study the structure of the outer vestibule and select...
AbstractVoltage-activated K+ channels are integral membrane proteins that open or close a K+-selecti...
AbstractUsing cysteine (Cys) scanning mutagenesis of the inward rectifier K+ channel Kir2.1, we inve...
AbstractVoltage-activated K+ channels are integral membrane proteins that open or close a K+-selecti...
We report the use of cysteine-substituted mutants in conjunction with in situ oxidation to determine...
We report the use of cysteine-substituted mutants in conjunction with in situ oxidation to determine...
Voltage-gated potassium channels are potassium selective ion pores that open in response to changes ...
Voltage-gated potassium channels are potassium selective ion pores that open in response to changes ...
Voltage-gated potassium channels are potassium selective ion pores that open in response to changes ...
The amino acid located at position 369 is a key determinant of the ion conduction pathway or pore of...
AbstractWe used serial cysteine mutagenesis to study the structure of the outer vestibule and select...
Abstract Substituted cysteine accessibility mutagenesis (SCAM) has been used widely to identify pore...
AbstractWe used cysteine-modifying reagents to localize the pH-sensitive gate in the renal inward-re...
The amino acid located at position 369 is a key determinant of the ion conduction pathway or pore of...