Center for Investigation of Membrane Excitability Diseases, and Department of Cell Biology and Physiology, Washington University School of Medicine, St. Louis, MO.
J Gen Physiol. 2021 May 3;153(5). doi: 10.1085/jgp.202012683.
Potassium (K+) channels are membrane proteins with the remarkable ability to very selectively conduct K+ ions across the membrane. High-resolution structures have revealed that dehydrated K+ ions permeate through the narrowest region of the pore, formed by the backbone carbonyls of the signature selectivity filter (SF) sequence TxGYG. However, the existence of nonselective channels with similar SF sequences, as well as effects of mutations in other regions on selectivity, suggest that the SF is not the sole determinant of selectivity. We changed the selectivity of the KirBac1.1 channel by introducing mutations at residue I131 in transmembrane helix 2 (TM2). These mutations increase Na+ flux in the absence of K+ and introduce significant proton conductance. Consistent with K+ channel crystal structures, single-molecule FRET experiments show that the SF is conformationally constrained and stable in high-K+ conditions but undergoes transitions to dilated low-FRET states in high-Na+/low-K+ conditions. Relative to wild-type channels, I131M mutants exhibit marked shifts in the K+ and Na+ dependence of SF dynamics to higher K+ and lower Na+ concentrations. These results illuminate the role of I131, and potentially other structural elements outside the SF, in controlling ion selectivity, by suggesting that the physical interaction of these elements with the SF contributes to the relative stability of the constrained K+-induced SF configuration versus nonselective dilated conformations.
钾(K+)通道是一种膜蛋白,具有非常选择性地在膜上传导 K+离子的非凡能力。高分辨率结构揭示,脱水的 K+离子通过由特征选择性过滤器(SF)序列 TxGYG 的骨架羰基形成的最窄区域渗透。然而,具有类似 SF 序列的非选择性通道的存在,以及其他区域突变对选择性的影响,表明 SF 不是选择性的唯一决定因素。我们通过在跨膜螺旋 2(TM2)中的残基 I131 引入突变来改变 KirBac1.1 通道的选择性。这些突变增加了无 K+存在时的 Na+通量,并引入了显著的质子电导。与 K+通道晶体结构一致,单分子 FRET 实验表明 SF 构象受限且在高 K+条件下稳定,但在高 Na+/低 K+条件下会发生向扩张的低 FRET 状态的转变。与野生型通道相比,I131M 突变体表现出 SF 动力学对 K+和 Na+依赖性的明显偏移,即对高 K+和低 Na+浓度的依赖性更高。这些结果阐明了 I131 以及 SF 以外的潜在其他结构元素在控制离子选择性方面的作用,表明这些元素与 SF 的物理相互作用有助于约束的 K+诱导的 SF 构象相对于非选择性扩张构象的相对稳定性。