首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Conformational plasticity of the influenza A M2 transmembrane helix in lipid bilayers under varying pH, drug binding, and membrane thickness.
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Conformational plasticity of the influenza A M2 transmembrane helix in lipid bilayers under varying pH, drug binding, and membrane thickness.

机译:在变化的pH,药物结合和膜厚度下,脂质双层中A型M2流感跨膜螺旋的构象可塑性。

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Membrane proteins change their conformations to respond to environmental cues, thus conformational plasticity is important for function. The influenza A M2 protein forms an acid-activated proton channel important for the virus lifecycle. Here we have used solid-state NMR spectroscopy to examine the conformational plasticity of membrane-bound transmembrane domain of M2 (M2TM). (13)C and (15)N chemical shifts indicate coupled conformational changes of several pore-facing residues due to changes in bilayer thickness, drug binding, and pH. The structural changes are attributed to the formation of a well-defined helical kink at G34 in the drug-bound state and in thick lipid bilayers, nonideal backbone conformation of the secondary-gate residue V27 in the presence of drug, and nonideal conformation of the proton-sensing residue H37 at high pH. The chemical shifts constrained the (varphi, psi) torsion angles for three "basis" states, the equilibrium among which explains the multiple resonances per site in the NMR spectra under different combinations of bilayer thickness, drug binding, and pH conditions. Thus, conformational plasticity is important for the proton conduction and inhibition of M2TM. The study illustrates the utility of NMR chemical shifts for probing the structural plasticity and folding of membrane proteins.
机译:膜蛋白会改变其构象以响应环境提示,因此构象可塑性对于功能至关重要。甲型M2流感病毒蛋白形成酸激活的质子通道,对病毒的生命周期至关重要。在这里,我们已使用固态NMR光谱来检查M2(M2TM)的膜结合跨膜结构域的构象可塑性。 (13)C和(15)N化学位移表明由于双层厚度,药物结合力和pH值的变化,几个面向孔的残基的构象改变。结构变化归因于在药物结合状态和厚脂双层中在G34处形成的明确的螺旋扭结,在存在药物的情况下二级门残基V27的非理想骨架构象,以及在药物存在下的非理想构象。高pH时质子敏感残基H37。化学位移限制了三个“基本”状态的(varphi,psi)扭转角,其中的平衡解释了在双层厚度,药物结合和pH条件的不同组合下NMR谱中每个位点的多重共振。因此,构象可塑性对于质子传导和抑制M2TM至关重要。该研究说明了NMR化学位移在探测膜蛋白的结构可塑性和折叠中的作用。

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