Obligatory heterotetramerization of three previously uncharacterized Kv channel α-subunits identified in the human genome
Open Access
- 11 June 2002
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 99 (12), 7986-7991
- https://doi.org/10.1073/pnas.122617999
Abstract
Voltage-gated K+ channels control excitability in neuronal and various other tissues. We identified three unique α-subunits of voltage-gated K+-channels in the human genome. Analysis of the full-length sequences indicated that one represents a previously uncharacterized member of the Kv6 subfamily, Kv6.3, whereas the others are the first members of two unique subfamilies, Kv10.1 and Kv11.1. Although they have all of the hallmarks of voltage-gated K+ channel subunits, they did not produce K+ currents when expressed in mammalian cells. Confocal microscopy showed that Kv6.3, Kv10.1, and Kv11.1 alone did not reach the plasma membrane, but were retained in the endoplasmic reticulum. Yeast two-hybrid experiments failed to show homotetrameric interactions, but showed interactions with Kv2.1, Kv3.1, and Kv5.1. Co-expression of each of the previously uncharacterized subunits with Kv2.1 resulted in plasma membrane localization with currents that differed from typical Kv2.1 currents. This heteromerization was confirmed by co-immunoprecipitation. The Kv2 subfamily consists of only two members and uses interaction with “silent subunits” to diversify its function. Including the subunits described here, the “silent subunits” represent one-third of all Kv subunits, suggesting that obligatory heterotetramer formation is more widespread than previously thought.Keywords
This publication has 38 references indexed in Scilit:
- Molecular cloning and characterization of Kv6.3, a novel modulatory subunit for voltage‐gated K+ channel Kv2.11FEBS Letters, 2002
- Surface Expression of Kv1 Channels Is Governed by a C-terminal MotifJournal of Biological Chemistry, 2000
- Potassium Channels: Some Assembly RequiredNeuron, 1999
- Distinct Structural Requirements for Clustering and Immobilization of K+ Channels by PSD-95The Journal of general physiology, 1999
- Kv2.1 and electrically silent Kv6.1 potassium channel subunits combine and express a novel currentFEBS Letters, 1996
- Myocardial Potassium Channels: Electrophysiological and Molecular DiversityAnnual Review of Physiology, 1996
- Assembly of Voltage-gated Potassium ChannelsPublished by Elsevier ,1995
- Molecular recognition and assembly sequences involved in the subfamily-specific assembly of voltage-gated K+ channel subunit proteinsNeuron, 1995
- A new class of noninactivating K+ channels from aplysia capable of contributing to the resting potential and firing patterns of neuronsNeuron, 1994
- Shaker, Shal, Shab, and Shaw express independent K+ current systemsNeuron, 1991