KCNE1 and KCNE3 Stabilize and/or Slow Voltage Sensing S4 Segment of KCNQ1 Channel
Open Access
- 13 August 2007
- journal article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 130 (3) , 269-281
- https://doi.org/10.1085/jgp.200709805
Abstract
KCNQ1 is a voltage-dependent K(+) channel whose gating properties are dramatically altered by association with auxiliary KCNE proteins. For example, KCNE1, which is mainly expressed in heart and inner ear, markedly slows the activation kinetics of KCNQ1. Whether the voltage-sensing S4 segment moves differently in the presence of KCNE1 is not yet known, however. To address that question, we systematically introduced cysteine mutations, one at a time, into the first half of the S4 segment of human KCNQ1. A226C was found out as the most suited mutant for a methanethiosulfonate (MTS) accessibility analysis because it is located at the N-terminal end of S4 segment and its current was stable with repetitive stimuli in the absence of MTS reagent. MTS accessibility analysis revealed that the apparent second order rate constant for modification of the A226C mutant was state dependent, with faster modification during depolarization, and was 13 times slower in the presence of KCNE1 than in its absence. In the presence of KCNE3, on the other hand, the second order rate constant for modification was not state dependent, indicating that the C226 residue was always exposed to the extracellular milieu, even at the resting membrane potential. Taken together, these results suggest that KCNE1 stabilizes the S4 segment in the resting state and slows the rate of transition to the active state, while KCNE3 stabilizes the S4 segment in the active state. These results offer new insight into the mechanism of KCNQ1 channel modulation by KCNE1 and KCNE3.Keywords
This publication has 45 references indexed in Scilit:
- The Role of S4 Charges in Voltage-dependent and Voltage-independent KCNQ1 Potassium Channel ComplexesThe Journal of general physiology, 2007
- Secondary Structure of a KCNE Cytoplasmic DomainThe Journal of general physiology, 2006
- International Union of Pharmacology. LIII. Nomenclature and Molecular Relationships of Voltage-Gated Potassium ChannelsPharmacological Reviews, 2005
- Crystal Structure of a Mammalian Voltage-Dependent Shaker Family K + ChannelScience, 2005
- KCNE3 Truncation Mutants Reveal a Bipartite Modulation of KCNQ1 K+ ChannelsThe Journal of general physiology, 2004
- Tea+-Sensitive Kcnq1 Constructs Reveal Pore-Independent Access to Kcne1 in Assembled IKs ChannelsThe Journal of general physiology, 2001
- Mink Subdomains That Mediate Modulation of and Association with Kvlqt1The Journal of general physiology, 2000
- Mutations in the hminK gene cause long QT syndrome and suppress lKs functionNature Genetics, 1997
- Expression of functional potassium channels from Shaker cDNA in Xenopus oocytesNature, 1988
- Cloning of Genomic and Complementary DNA from Shaker , a Putative Potassium Channel Gene from DrosophilaScience, 1987