α-Helical Structural Elements within the Voltage-Sensing Domains of a K+ Channel
Open Access
- 28 December 1999
- journal article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 115 (1) , 33-50
- https://doi.org/10.1085/jgp.115.1.33
Abstract
Voltage-gated K+ channels are tetramers with each subunit containing six (S1–S6) putative membrane spanning segments. The fifth through sixth transmembrane segments (S5–S6) from each of four subunits assemble to form a central pore domain. A growing body of evidence suggests that the first four segments (S1–S4) comprise a domain-like voltage-sensing structure. While the topology of this region is reasonably well defined, the secondary and tertiary structures of these transmembrane segments are not. To explore the secondary structure of the voltage-sensing domains, we used alanine-scanning mutagenesis through the region encompassing the first four transmembrane segments in the drk1 voltage-gated K+ channel. We examined the mutation-induced perturbation in gating free energy for periodicity characteristic of α-helices. Our results are consistent with at least portions of S1, S2, S3, and S4 adopting α-helical secondary structure. In addition, both the S1–S2 and S3–S4 linkers exhibited substantial helical character. The distribution of gating perturbations for S1 and S2 suggest that these two helices interact primarily with two environments. In contrast, the distribution of perturbations for S3 and S4 were more complex, suggesting that the latter two helices make more extensive protein contacts, possibly interfacing directly with the shell of the pore domain.Keywords
This publication has 59 references indexed in Scilit:
- Hydrophobicity scales and computational techniques for detecting amphipathic structures in proteinsPublished by Elsevier ,2005
- The Structure of the Potassium Channel: Molecular Basis of K + Conduction and SelectivityScience, 1998
- Structural Conservation in Prokaryotic and Eukaryotic Potassium ChannelsScience, 1998
- Spatial Localization of the K+ Channel Selectivity Filter by Mutant Cycle–Based Structure AnalysisNeuron, 1996
- Voltage-sensing residues in the S4 region of a mammalian K+ channelNature, 1991
- Determination of the subunit stoichiometry of a voltage-activated potassium channelNature, 1991
- High resolution 1 H NMR study of the solution structure of the S4 segment of the sodium channel proteinFEBS Letters, 1989
- Mutant Potassium Channels with Altered Binding of Charybdotoxin, a Pore-Blocking Peptide InhibitorScience, 1989
- Hydrophobic Organization of Membrane ProteinsScience, 1989
- A simple method for displaying the hydropathic character of a proteinJournal of Molecular Biology, 1982