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Protonation of lysine residues inverts cation/anion selectivity in a model channel.

机译:赖氨酸残基的质子化会反转模型通道中的阳离子/阴离子选择性。

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摘要

A dimeric alamethicin analog with lysine at position 18 in the sequence (alm-K18) was previously shown to form stable anion-selective channels in membranes at pH 7.0 [Starostin, A. V., R. Butan, V. Borisenko, D. A. James, H. Wenschuh, M. S. Sansom, and G. A. Woolley. 1999. Biochemistry. 38:6144-6150]. To probe the charge state of the conducting channel and how this might influence cation versus anion selectivity, we performed a series of single-channel selectivity measurements at different pH values. At pH 7.0 and below, only anion-selective channels were found with P(K(+))/P(Cl(-)) = 0. 25. From pH 8-10, a mixture of anion-selective, non-selective, and cation-selective channels was found. At pH > 11 only cation-selective channels were found with P(K(+))/P(Cl(-)) = 4. In contrast, native alamethicin-Q18 channels (with Gln in place of Lys at position 18) were cation-selective (P(K(+))/P(Cl(-)) = 4) at all pH values. Continuum electrostatics calculations were then carried out using an octameric model of the alm-K18 channel embedded in a low dielectric slab to simulate a membrane. Although the calculations can account for the apparent pK(a) of the channel, they fail to correctly predict the degree of selectivity. Although a switch from cation- to anion-selectivity as the channel becomes protonated is indicated, the degree of anion-selectivity is severely overestimated, suggesting that the continuum approach does not adequately represent some aspect of the electrostatics of permeation in these channels. Side-chain conformational changes upon protonation, conformational changes, and deprotonation caused by permeating cations and counterion binding by lysine residues upon protonation are considered as possible sources of the overestimation.
机译:先前显示在序列(alm-K18)的位置18处有赖氨酸的二聚阿拉美霉素类似物在膜中形成稳定的阴离子选择通道[Starostin,AV,R. Butan,V.Borisenko,DA James,H. Wenschuh,MS Sansom和GA Woolley。 1999。生物化学。 38:6144-6150]。为了探究导电通道的电荷状态以及它如何影响阳离子对阴离子的选择性,我们在不同的pH值下进行了一系列单通道选择性测量。在pH 7.0或更低的条件下,仅发现P(K(+))/ P(Cl(-))= 0的阴离子选择性通道。25.在pH 8-10下,阴离子选择性,非选择性的混合物,并发现了阳离子选择性通道。在pH> 11时,仅发现阳离子选择性通道,P(K(+))/ P(Cl(-))=4。相比之下,天然的alamethicin-Q18通道(Gln代替了18位的Lys)在所有pH值下阳离子选择性(P(K(+))/ P(Cl(-))= 4)。然后使用嵌入在低介电平板中的alm-K18通道的八聚体模型进行连续静电计算,以模拟膜。尽管计算可以解释通道的视在pK(a),但它们无法正确预测选择性程度。尽管指示了当通道质子化时从阳离子选择性转换为阴离子选择性,但阴离子选择性的程度被严重高估了,这表明连续谱方法不足以代表这些通道中渗透静电的某些方面。质子化时的侧链构象变化,构象变化和质子化时由渗透阳离子和赖氨酸残基结合的抗衡离子引起的去质子化被认为是高估的可能来源。

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