Key result
Addition of Ba2+ and Cd2+ stabilized the tetrameric structure of the KirBac1.1 potassium channel, with Cd2+ coordinating at the inner cavity and Ba2+ at the selectivity filter entrance.
Ba2+ and Cd2+ (in specific mutants) stabilize the KirBac1.1 tetramer, suggesting simultaneous occupation of the channel by both ions at distinct sites.
No direct clinical implications; extends structural insights into Kir channel ion coordination.
Potassium channels are tetrameric proteins that mediate K(+)-selective transmembrane diffusion. For KcsA, tetramer stability depends on interactions between permeant ions and the channel pore. We have examined the role of pore blockers on the tetramer stability of KirBac1.1. In 150 mm KCl, purified KirBac1.1 protein migrates as a monomer (approximately 40 kDa) on SDS-PAGE. Addition of Ba(2+) (K(1/2) approximately 50 microm) prior to loading results in an additional tetramer band (approximately 160 kDa). Mutation A109C, at a residue located near the expected Ba(2+)-binding site, decreased tetramer stabilization by Ba(2+) (K(1/2) approximately 300 microm), whereas I131C, located nearby, stabilized tetramers in the absence of Ba(2+). Neither mutation affected Ba(2+) block of channel activity (using (86)Rb(+) flux assay). In contrast to Ba(2+), Mg(2+) had no effect on tetramer stability (even though Mg(2+) was a potent blocker). Many studies have shown Cd(2+) block of K(+) channels as a result of cysteine substitution of cavity-lining M2 (S6) residues, with the implicit interpretation that coordination of a single ion by cysteine side chains along the central axis effectively blocks the pore. We examined blocking and tetramer-stabilizing effects of Cd(2+) on KirBac1.1 with cysteine substitutions in M2. Cd(2+) block potency followed an alpha-helical pattern consistent with the crystal structure. Significantly, Cd(2+) strongly stabilized tetramers of I138C, located in the center of the inner cavity. This stabilization was additive with the effect of Ba(2+), consistent with both ions simultaneously occupying the channel: Ba(2+) at the selectivity filter entrance and Cd(2+) coordinated by I138C side chains in the inner cavity.
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Wang et al. (2008) studied Potassium channel tetramer stability. Pore blockers (Ba2+, Mg2+, Cd2+) vs. Absence of pore blockers was evaluated on Tetramer stability of KirBac1.1. Addition of Ba2+ and Cd2+ stabilized the tetrameric structure of the KirBac1.1 potassium channel, with Cd2+ coordinating at the inner cavity and Ba2+ at the selectivity filter entrance.
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