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Functionally active t1-t1 interfaces revealed by the accessibility of intracellular thiolate groups in kv4 channels.
- Source :
-
The Journal of general physiology [J Gen Physiol] 2005 Jul; Vol. 126 (1), pp. 55-69. Date of Electronic Publication: 2005 Jun 13. - Publication Year :
- 2005
-
Abstract
- Gating of voltage-dependent K(+) channels involves movements of membrane-spanning regions that control the opening of the pore. Much less is known, however, about the contributions of large intracellular channel domains to the conformational changes that underlie gating. Here, we investigated the functional role of intracellular regions in Kv4 channels by probing relevant cysteines with thiol-specific reagents. We find that reagent application to the intracellular side of inside-out patches results in time-dependent irreversible inhibition of Kv4.1 and Kv4.3 currents. In the absence or presence of Kv4-specific auxiliary subunits, mutational and electrophysiological analyses showed that none of the 14 intracellular cysteines is essential for channel gating. C110, C131, and C132 in the intersubunit interface of the tetramerization domain (T1) are targets responsible for the irreversible inhibition by a methanethiosulfonate derivative (MTSET). This result is surprising because structural studies of Kv4-T1 crystals predicted protection of the targeted thiolate groups by constitutive high-affinity Zn(2+) coordination. Also, added Zn(2+) or a potent Zn(2+) chelator (TPEN) does not significantly modulate the accessibility of MTSET to C110, C131, or C132; and furthermore, when the three critical cysteines remained as possible targets, the MTSET modification rate of the activated state is approximately 200-fold faster than that of the resting state. Biochemical experiments confirmed the chemical modification of the intact alpha-subunit and the purified tetrameric T1 domain by MTS reagents. These results conclusively demonstrate that the T1--T1 interface of Kv4 channels is functionally active and dynamic, and that critical reactive thiolate groups in this interface may not be protected by Zn(2+) binding.
- Subjects :
- Animals
Binding Sites
Cells, Cultured
Dimerization
Intracellular Fluid
Mice
Potassium Channels, Voltage-Gated chemistry
Protein Binding
Protein Structure, Tertiary
Protein Subunits
Rats
Shal Potassium Channels
Structure-Activity Relationship
Sulfhydryl Compounds chemistry
Xenopus laevis
Ion Channel Gating physiology
Membrane Potentials physiology
Oocytes physiology
Potassium Channels, Voltage-Gated physiology
Sulfhydryl Compounds metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 0022-1295
- Volume :
- 126
- Issue :
- 1
- Database :
- MEDLINE
- Journal :
- The Journal of general physiology
- Publication Type :
- Academic Journal
- Accession number :
- 15955876
- Full Text :
- https://doi.org/10.1085/jgp.200509288