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Biophys J
2007 Oct 01;937:2307-14. doi: 10.1529/biophysj.107.104349.
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Electrostatic domino effect in the Shaker K channel turret.
Broomand A
,
Osterberg F
,
Wardi T
,
Elinder F
.
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Voltage-gated K channels are regulated by extracellular divalent cations such as Mg(2+) and Sr(2+), either by screening of fixed negative surface charges, by binding directly or close to the voltage sensor, or by binding to the pore. Different K channels display different sensitivity to divalent cations. For instance, 20 mM MgCl(2) shifts the conductance versus voltage curve, G(V), of the Kv1-type Shaker channel with 14 mV, while the G(V) of Kv2.1 is shifted only with 7 mV. This shift difference is paralleled with different working ranges. Kv1-type channels open at approximately -20 mV and Kv2.1 channel open at approximately +5 mV. The aim of this study was to identify critical residues for this Mg(2+)-induced G(V) shift by introducing Kv2.1 channel residues in the Shaker K channel. The K channels were expressed in Xenopus laevis oocytes and studied with the two-electrode voltage-clamp technique. We found that three neutral-to-positive amino-acid residue exchanges in the extracellular loops connecting transmembrane segments S5 and S6 transferred the Mg(2+)-shifting properties. The contributions of the three residues were additive, and thus independent of each other, with the contributions in the order 425 > 419 > 451. Charging 425 and 419 not only affect the Mg(2+)-induced G(V) shift with 5-6 mV, but also shifts the G(V) with 17 mV. Thus, a few strategically placed surface charges clearly modulate the channel's working range. Residue 425, located at some distance away from the voltage sensor, was shown to electrostatically affect residue K427, which in turn affects the voltage sensor S4-thus, an electrostatic domino effect.
Aqvist,
Ion permeation mechanism of the potassium channel.
2000, Pubmed
Aqvist,
Ion permeation mechanism of the potassium channel.
2000,
Pubmed
Broomand,
Molecular movement of the voltage sensor in a K channel.
2003,
Pubmed
,
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Cha,
Atomic scale movement of the voltage-sensing region in a potassium channel measured via spectroscopy.
1999,
Pubmed
Doyle,
The structure of the potassium channel: molecular basis of K+ conduction and selectivity.
1998,
Pubmed
Elinder,
Divalent cation effects on the Shaker K channel suggest a pentapeptide sequence as determinant of functional surface charge density.
1998,
Pubmed
,
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Elinder,
Localization of the extracellular end of the voltage sensor S4 in a potassium channel.
2001,
Pubmed
,
Xenbase
Elinder,
Metal ion effects on ion channel gating.
2003,
Pubmed
Elinder,
Role of individual surface charges of voltage-gated K channels.
1999,
Pubmed
Elinder,
S4 charges move close to residues in the pore domain during activation in a K channel.
2001,
Pubmed
,
Xenbase
Elinder,
Surface Charges of K channels. Effects of strontium on five cloned channels expressed in Xenopus oocytes.
1996,
Pubmed
,
Xenbase
Fernandez,
Molecular mapping of a site for Cd2+-induced modification of human ether-à-go-go-related gene (hERG) channel activation.
2005,
Pubmed
,
Xenbase
FRANKENHAEUSER,
The action of calcium on the electrical properties of squid axons.
1957,
Pubmed
Gandhi,
The orientation and molecular movement of a k(+) channel voltage-sensing domain.
2003,
Pubmed
,
Xenbase
Gunner,
Backbone dipoles generate positive potentials in all proteins: origins and implications of the effect.
2000,
Pubmed
Hoshi,
Biophysical and molecular mechanisms of Shaker potassium channel inactivation.
1990,
Pubmed
,
Xenbase
Kamb,
Molecular characterization of Shaker, a Drosophila gene that encodes a potassium channel.
1987,
Pubmed
Lainé,
Atomic proximity between S4 segment and pore domain in Shaker potassium channels.
2003,
Pubmed
,
Xenbase
Larsson,
A conserved glutamate is important for slow inactivation in K+ channels.
2000,
Pubmed
,
Xenbase
Long,
Voltage sensor of Kv1.2: structural basis of electromechanical coupling.
2005,
Pubmed
Luzhkov,
A computational study of ion binding and protonation states in the KcsA potassium channel.
2000,
Pubmed
Luzhkov,
Structure-activity relationship for extracellular block of K+ channels by tetraalkylammonium ions.
2003,
Pubmed
Marelius,
Q: a molecular dynamics program for free energy calculations and empirical valence bond simulations in biomolecular systems.
1998,
Pubmed
McLaughlin,
The electrostatic properties of membranes.
1989,
Pubmed
Neale,
Evidence for intersubunit interactions between S4 and S5 transmembrane segments of the Shaker potassium channel.
2003,
Pubmed
,
Xenbase
Osterberg,
Exploring blocker binding to a homology model of the open hERG K+ channel using docking and molecular dynamics methods.
2005,
Pubmed