XB-ART-46359
J Gen Physiol
2012 Aug 01;1402:207-18. doi: 10.1085/jgp.201210807.
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Relative transmembrane segment rearrangements during BK channel activation resolved by structurally assigned fluorophore-quencher pairing.
Pantazis A
,
Olcese R
.
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Voltage-activated proteins can sense, and respond to, changes in the electric field pervading the cell membrane by virtue of a transmembrane helix bundle, the voltage-sensing domain (VSD). Canonical VSDs consist of four transmembrane helices (S1-S4) of which S4 is considered a principal component because it possesses charged residues immersed in the electric field. Membrane depolarization compels the charges, and by extension S4, to rearrange with respect to the field. The VSD of large-conductance voltage- and Ca-activated K(+) (BK) channels exhibits two salient inconsistencies from the canonical VSD model: (1) the BK channel VSD possesses an additional nonconserved transmembrane helix (S0); and (2) it exhibits a "decentralized" distribution of voltage-sensing charges, in helices S2 and S3, in addition to S4. Considering these unique features, the voltage-dependent rearrangements of the BK VSD could differ significantly from the standard model of VSD operation. To understand the mode of operation of this unique VSD, we have optically tracked the relative motions of the BK VSD transmembrane helices during activation, by manipulating the quenching environment of site-directed fluorescent labels with native and introduced Trp residues. Having previously reported that S0 and S4 diverge during activation, in this work we demonstrate that S4 also diverges from S1 and S2, whereas S2, compelled by its voltage-sensing charged residues, moves closer to S1. This information contributes spatial constraints for understanding the BK channel voltage-sensing process, revealing the structural rearrangements in a non-canonical VSD.
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Species referenced: Xenopus
Genes referenced: acta4 tbx2
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References [+] :
Armstrong,
Voltage-gated K channels.
2003, Pubmed
Armstrong, Voltage-gated K channels. 2003, Pubmed
Bao, Gating and ionic currents reveal how the BKCa channel's Ca2+ sensitivity is enhanced by its beta1 subunit. 2005, Pubmed , Xenbase
Bao, Mapping the BKCa channel's "Ca2+ bowl": side-chains essential for Ca2+ sensing. 2004, Pubmed , Xenbase
Bezanilla, How membrane proteins sense voltage. 2008, Pubmed
Bian, Ca2+-binding activity of a COOH-terminal fragment of the Drosophila BK channel involved in Ca2+-dependent activation. 2001, Pubmed
Cha, Characterizing voltage-dependent conformational changes in the Shaker K+ channel with fluorescence. 1997, Pubmed , Xenbase
Chanda, A common pathway for charge transport through voltage-sensing domains. 2008, Pubmed
Claydon, Voltage clamp fluorimetry studies of mammalian voltage-gated K(+) channel gating. 2007, Pubmed
Cui, Molecular mechanisms of BK channel activation. 2009, Pubmed
Cui, Allosteric linkage between voltage and Ca(2+)-dependent activation of BK-type mslo1 K(+) channels. 2000, Pubmed
Díaz, Role of the S4 segment in a voltage-dependent calcium-sensitive potassium (hSlo) channel. 1998, Pubmed , Xenbase
Doose, Fluorescence quenching by photoinduced electron transfer: a reporter for conformational dynamics of macromolecules. 2009, Pubmed
Doose, A close look at fluorescence quenching of organic dyes by tryptophan. 2005, Pubmed
Gandhi, The voltage-clamp fluorometry technique. 2008, Pubmed , Xenbase
Haug, Regulation of K+ flow by a ring of negative charges in the outer pore of BKCa channels. Part I: Aspartate 292 modulates K+ conduction by external surface charge effect. 2004, Pubmed , Xenbase
Horrigan, Mg2+ enhances voltage sensor/gate coupling in BK channels. 2008, Pubmed , Xenbase
Horrigan, Coupling between voltage sensor activation, Ca2+ binding and channel opening in large conductance (BK) potassium channels. 2002, Pubmed , Xenbase
Hou, Modulation of BKCa channel gating by endogenous signaling molecules. 2009, Pubmed
Islas, Short-range molecular rearrangements in ion channels detected by tryptophan quenching of bimane fluorescence. 2006, Pubmed , Xenbase
Javaherian, Metal-driven operation of the human large-conductance voltage- and Ca2+-dependent potassium channel (BK) gating ring apparatus. 2011, Pubmed
Jeffries, Palmitoylation of the S0-S1 linker regulates cell surface expression of voltage- and calcium-activated potassium (BK) channels. 2010, Pubmed
Koval, A role for the S0 transmembrane segment in voltage-dependent gating of BK channels. 2007, Pubmed
Latorre, Conduction and selectivity in potassium channels. 1983, Pubmed
Latorre, Large conductance Ca2+-activated K+ (BK) channel: activation by Ca2+ and voltage. 2006, Pubmed
Latorre, Allosteric interactions and the modular nature of the voltage- and Ca2+-activated (BK) channel. 2010, Pubmed
Lee, BK channel activation: structural and functional insights. 2010, Pubmed
Lee, Modulation of BK channel gating by the ß2 subunit involves both membrane-spanning and cytoplasmic domains of Slo1. 2010, Pubmed , Xenbase
Liu, Locations of the beta1 transmembrane helices in the BK potassium channel. 2008, Pubmed
Liu, Location of modulatory beta subunits in BK potassium channels. 2010, Pubmed
Long, Crystal structure of a mammalian voltage-dependent Shaker family K+ channel. 2005, Pubmed
Long, Atomic structure of a voltage-dependent K+ channel in a lipid membrane-like environment. 2007, Pubmed
Lu, MaxiK channel partners: physiological impact. 2006, Pubmed
Ma, Role of charged residues in the S1-S4 voltage sensor of BK channels. 2006, Pubmed , Xenbase
Magleby, Gating mechanism of BK (Slo1) channels: so near, yet so far. 2003, Pubmed
Mannuzzu, Direct physical measure of conformational rearrangement underlying potassium channel gating. 1996, Pubmed , Xenbase
Mansoor, Mapping proximity within proteins using fluorescence spectroscopy. A study of T4 lysozyme showing that tryptophan residues quench bimane fluorescence. 2002, Pubmed
Mansoor, Distance mapping in proteins using fluorescence spectroscopy: the tryptophan-induced quenching (TrIQ) method. 2010, Pubmed
Meera, Large conductance voltage- and calcium-dependent K+ channel, a distinct member of voltage-dependent ion channels with seven N-terminal transmembrane segments (S0-S6), an extracellular N terminus, and an intracellular (S9-S10) C terminus. 1997, Pubmed
Morera, The first transmembrane domain (TM1) of β2-subunit binds to the transmembrane domain S1 of α-subunit in BK potassium channels. 2012, Pubmed
Morrow, Defining the BK channel domains required for beta1-subunit modulation. 2006, Pubmed
Nelson, Modular assembly of voltage-gated channel proteins: a sequence analysis and phylogenetic study. 1999, Pubmed
Orio, Differential effects of beta 1 and beta 2 subunits on BK channel activity. 2005, Pubmed , Xenbase
Orio, New disguises for an old channel: MaxiK channel beta-subunits. 2002, Pubmed
Pantazis, Operation of the voltage sensor of a human voltage- and Ca2+-activated K+ channel. 2010, Pubmed
Pantazis, Relative motion of transmembrane segments S0 and S4 during voltage sensor activation in the human BK(Ca) channel. 2010, Pubmed , Xenbase
Rothberg, Voltage and Ca2+ activation of single large-conductance Ca2+-activated K+ channels described by a two-tiered allosteric gating mechanism. 2000, Pubmed
Salkoff, High-conductance potassium channels of the SLO family. 2006, Pubmed
Savalli, Voltage-dependent conformational changes in human Ca(2+)- and voltage-activated K(+) channel, revealed by voltage-clamp fluorometry. 2006, Pubmed , Xenbase
Savalli, The contribution of RCK domains to human BK channel allosteric activation. 2012, Pubmed
Savalli, Modes of operation of the BKCa channel beta2 subunit. 2007, Pubmed , Xenbase
Schreiber, A novel calcium-sensing domain in the BK channel. 1997, Pubmed , Xenbase
Semenova, Bimane fluorescence scanning suggests secondary structure near the S3-S4 linker of BK channels. 2009, Pubmed
Shen, Tetraethylammonium block of Slowpoke calcium-activated potassium channels expressed in Xenopus oocytes: evidence for tetrameric channel formation. 1994, Pubmed , Xenbase
Stefani, Voltage-controlled gating in a large conductance Ca2+-sensitive K+channel (hslo). 1997, Pubmed , Xenbase
Stefani, Cut-open oocyte voltage-clamp technique. 1998, Pubmed , Xenbase
Sun, Regulation of Voltage-Activated K(+) Channel Gating by Transmembrane β Subunits. 2012, Pubmed
Swartz, Sensing voltage across lipid membranes. 2008, Pubmed
Swartz, Towards a structural view of gating in potassium channels. 2004, Pubmed
Sweet, Measurements of the BKCa channel's high-affinity Ca2+ binding constants: effects of membrane voltage. 2008, Pubmed
Tombola, How does voltage open an ion channel? 2006, Pubmed
Toro, Maxi-K(Ca), a Unique Member of the Voltage-Gated K Channel Superfamily. 1998, Pubmed
Unnerståle, Solution structure of the HsapBK K+ channel voltage-sensor paddle sequence. 2009, Pubmed
Wallner, Characterization of and modulation by a beta-subunit of a human maxi KCa channel cloned from myometrium. 1995, Pubmed , Xenbase
Wallner, Determinant for beta-subunit regulation in high-conductance voltage-activated and Ca(2+)-sensitive K+ channels: an additional transmembrane region at the N terminus. 1996, Pubmed
Wang, Structure of the BK potassium channel in a lipid membrane from electron cryomicroscopy. 2009, Pubmed
Wei, Calcium sensitivity of BK-type KCa channels determined by a separable domain. 1994, Pubmed
Wu, Structure of the gating ring from the human large-conductance Ca(2+)-gated K(+) channel. 2010, Pubmed
Wu, Location of the beta 4 transmembrane helices in the BK potassium channel. 2009, Pubmed
Wu, The BK potassium channel in the vascular smooth muscle and kidney: α- and β-subunits. 2010, Pubmed
Xia, Multiple regulatory sites in large-conductance calcium-activated potassium channels. 2002, Pubmed
Yang, Activation of Slo1 BK channels by Mg2+ coordinated between the voltage sensor and RCK1 domains. 2008, Pubmed
Yuan, Structure of the human BK channel Ca2+-activation apparatus at 3.0 A resolution. 2010, Pubmed
Yuan, Open structure of the Ca2+ gating ring in the high-conductance Ca2+-activated K+ channel. 2011, Pubmed
Yusifov, The RCK2 domain of the human BKCa channel is a calcium sensor. 2008, Pubmed
Yusifov, The RCK1 domain of the human BKCa channel transduces Ca2+ binding into structural rearrangements. 2010, Pubmed
Zeng, Divalent cation sensitivity of BK channel activation supports the existence of three distinct binding sites. 2005, Pubmed , Xenbase
Zhang, Ion sensing in the RCK1 domain of BK channels. 2010, Pubmed , Xenbase