Sansom M S, Kerr I D, Mellor I R
Department of Life Science, University of Nottingham, United Kingdom.
Eur Biophys J. 1991;20(4):229-40. doi: 10.1007/BF00183460.
Channel forming peptides (CFPs) are amphipathic peptides, of length ca. 20 residues, which adopt an alpha-helical conformation in the presence of lipid bilayers and form ion channels with electrophysiological properties comparable to those of ion channel proteins. We have modelled CFP channels as bundles of parallel trans-bilayer helices surrounding a central ion-permeable pore. Ion-channel interactions have been explored via accessible surface area calculations, and via evaluation of changes in van der Waals and electrostatic energies as a K+ ion is translated along the length of the pore. Two CFPs have been modelled: (a) zervamicin-A1-16, a synthetic apolar peptaibol related to alamethicin, and (b) delta-toxin from Staphylococcus aureus. Both of these CFPs have previously been shown to form ion channels in planar lipid bilayers, and have been shown to have predominantly helical conformations. Zervamicin-A1-16 channels were modelled as bundles of 4 to 8 parallel helices. Two related helix bundle geometries were explored. K(+)-channel interactions have been shown to involve exposed backbone carbonyl oxygen atoms. delta-Toxin channels were modelled as bundles of 6 parallel helices. Residues Q3, D11 and D18 generate favourable K(+)-channel interactions. Rotation of W15 about its C beta-C gamma bond has been shown to be capable of occluding the central pore, and is discussed as a possible model for sidechain conformational changes in relation to ion channel gating.
通道形成肽(CFP)是一种两亲性肽,长度约为20个残基,在脂质双层存在的情况下会形成α-螺旋构象,并形成具有与离子通道蛋白相当的电生理特性的离子通道。我们将CFP通道模拟为围绕中心离子渗透孔的平行跨膜螺旋束。通过可及表面积计算以及评估当K⁺离子沿孔的长度移动时范德华力和静电能的变化来探索离子通道相互作用。已对两种CFP进行了建模:(a)zervamicin-A1-16,一种与短杆菌肽A相关的合成非极性肽菌素,以及(b)金黄色葡萄球菌的δ-毒素。此前已证明这两种CFP都能在平面脂质双层中形成离子通道,并且已证明它们主要具有螺旋构象。Zervamicin-A1-16通道被模拟为4至8个平行螺旋束。探索了两种相关的螺旋束几何结构。已表明K⁺通道相互作用涉及暴露的主链羰基氧原子。δ-毒素通道被模拟为包含6个平行螺旋的束。残基Q3、D11和D18产生有利的K⁺通道相互作用。已表明W15围绕其Cβ-Cγ键的旋转能够堵塞中心孔,并作为与离子通道门控相关的侧链构象变化的一种可能模型进行了讨论。