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Under normal physiological conditions, Slo2.1K(+) channels are in a closed state unless activated by an elevation in [Na(+)]i. Fenamates such as niflumic acid also activate Slo2.1. Previous studies suggest that activation of Slo2.1 channels is mediated by a conformational change in the selectivity filter, and not a widening of the aperture formed by the S6 segment bundle crossing as occurs in voltage-gated K(+) channels. It is unclear how binding of Na(+) or fenamates is allosterically linked to opening of the presumed selectivity filter activation gate in Slo2.1. Here we examined the role of the S5 transmembrane segment in the activation of Slo2.1. Channels were heterologously expressed in Xenopus laevis oocytes and whole cell currents measured with the voltage-clamp technique. Ala substitution of five residues located on a single face of the S5 α-helical segment induced constitutive channel activity. Leu-209, predicted to face towards Phe-240 in the pore helix was investigated by further mutagenesis. Mutation of Leu-209 to Glu or Gln induced maximal channel activation as did the combined mutation to Ala of all three hydrophobic S5 residues predicted to be adjacent to Phe-240. Together these results suggest that hydrophobic interactions between residues in S5 and the C-terminal end of the pore helix stabilize Slo2.1 channels in a closed state.
Bader,
Sodium-activated potassium current in cultured avian neurones.
, Pubmed
Bader,
Sodium-activated potassium current in cultured avian neurones.
,
Pubmed
Berg,
TrpC3/C7 and Slo2.1 are molecular targets for metabotropic glutamate receptor signaling in rat striatal cholinergic interneurons.
2007,
Pubmed
Bhattacharjee,
Slick (Slo2.1), a rapidly-gating sodium-activated potassium channel inhibited by ATP.
2003,
Pubmed
,
Xenbase
Chen,
Charge substitution for a deep-pore residue reveals structural dynamics during BK channel gating.
2011,
Pubmed
Dai,
Activation of Slo2.1 channels by niflumic acid.
2010,
Pubmed
,
Xenbase
Garg,
Structure-activity relationship of fenamates as Slo2.1 channel activators.
2012,
Pubmed
,
Xenbase
Garg,
Intracellular ATP does not inhibit Slo2.1 K+ channels.
2014,
Pubmed
,
Xenbase
Garg,
Structural basis of ion permeation gating in Slo2.1 K+ channels.
2013,
Pubmed
,
Xenbase
Garneau,
Aromatic-aromatic interactions between residues in KCa3.1 pore helix and S5 transmembrane segment control the channel gating process.
2014,
Pubmed
,
Xenbase
Garneau,
Hydrophobic interactions as key determinants to the KCa3.1 channel closed configuration. An analysis of KCa3.1 mutants constitutively active in zero Ca2+.
2009,
Pubmed
Heginbotham,
Mutations in the K+ channel signature sequence.
1994,
Pubmed
,
Xenbase
Hite,
Cryo-electron microscopy structure of the Slo2.2 Na(+)-activated K(+) channel.
2015,
Pubmed
Horovitz,
Double-mutant cycles: a powerful tool for analyzing protein structure and function.
1996,
Pubmed
Jenkins,
Negative gating modulation by (R)-N-(benzimidazol-2-yl)-1,2,3,4-tetrahydro-1-naphthylamine (NS8593) depends on residues in the inner pore vestibule: pharmacological evidence of deep-pore gating of K(Ca)2 channels.
2011,
Pubmed
Kameyama,
Intracellular Na+ activates a K+ channel in mammalian cardiac cells.
,
Pubmed
Klein,
Structural determinants of the closed KCa3.1 channel pore in relation to channel gating: results from a substituted cysteine accessibility analysis.
2007,
Pubmed
,
Xenbase
Kowal,
Ligand-induced structural changes in the cyclic nucleotide-modulated potassium channel MloK1.
2014,
Pubmed
Krieger,
Increasing the precision of comparative models with YASARA NOVA--a self-parameterizing force field.
2002,
Pubmed
MacKinnon,
Structural conservation in prokaryotic and eukaryotic potassium channels.
1998,
Pubmed
Morais-Cabral,
Energetic optimization of ion conduction rate by the K+ selectivity filter.
2001,
Pubmed
Punta,
A knowledge-based scale for amino acid membrane propensity.
2003,
Pubmed
Richards,
Areas, volumes, packing and protein structure.
1977,
Pubmed
Roux,
The cavity and pore helices in the KcsA K+ channel: electrostatic stabilization of monovalent cations.
1999,
Pubmed
Schreibmayer,
Voltage clamping of Xenopus laevis oocytes utilizing agarose-cushion electrodes.
1994,
Pubmed
,
Xenbase
Seebohm,
Mutation of colocalized residues of the pore helix and transmembrane segments S5 and S6 disrupt deactivation and modify inactivation of KCNQ1 K+ channels.
2005,
Pubmed
,
Xenbase
Tamsett,
NAD+ activates KNa channels in dorsal root ganglion neurons.
2009,
Pubmed
Thomson,
Identification of the Intracellular Na+ Sensor in Slo2.1 Potassium Channels.
2015,
Pubmed
,
Xenbase
Wang,
Unexpected and differential effects of Cl- channel blockers on the Kv4.3 and Kv4.2 K+ channels. Implications for the study of the I(to2) current.
1997,
Pubmed
,
Xenbase
White,
Niflumic and flufenamic acids are potent reversible blockers of Ca2(+)-activated Cl- channels in Xenopus oocytes.
1990,
Pubmed
,
Xenbase
Yan,
Expression, purification and functional reconstitution of slack sodium-activated potassium channels.
2012,
Pubmed
Yuan,
The sodium-activated potassium channel is encoded by a member of the Slo gene family.
2003,
Pubmed
,
Xenbase
Zhou,
Chemistry of ion coordination and hydration revealed by a K+ channel-Fab complex at 2.0 A resolution.
2001,
Pubmed