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A designed four-alpha-helix bundle that binds the volatile general anesthetic halothane with high affinity.

机译:设计的四-α-螺旋束以高亲和力结合挥发性全麻氟烷。

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摘要

The structural features of volatile anesthetic binding sites on proteins are being examined with the use of a defined model system consisting of a four-alpha-helix bundle scaffold with a hydrophobic core. Previous work has suggested that introducing a cavity into the hydrophobic core improves anesthetic binding affinity. The more polarizable methionine side chain was substituted for a leucine, in an attempt to enhance the dispersion forces between the ligand and the protein. The resulting bundle variant has an improved affinity (K(d) = 0.20 +/- 0.01 mM) for halothane binding, compared with the leucine-containing bundle (K(d) = 0.69 +/- 0.06 mM). Photoaffinity labeling with (14)C-halothane reveals preferential labeling of the W15 residue in both peptides, supporting the view that fluorescence quenching by bound anesthetic reports both the binding energetics and the location of the ligand in the hydrophobic core. The rates of amide hydrogen exchange were similar for the two bundles, suggesting that differences in binding affinity were not due to changes in protein stability. Binding of halothane to both four-alpha-helix bundle proteins stabilized the native folded conformations. Molecular dynamics simulations of the bundles illustrate the existence of the hydrophobic core, containing both W15 residues. These results suggest that in addition to packing defects, enhanced dispersion forces may be important in providing higher affinity anesthetic binding sites. Alternatively, the effect of the methionine substitution on halothane binding energetics may reflect either improved access to the binding site or allosteric optimization of the dimensions of the binding pocket. Finally, preferential stabilization of folded protein conformations may represent a fundamental mechanism of inhaled anesthetic action.
机译:正在使用定义的模型系统检查蛋白质上挥发性麻醉剂结合位点的结构特征,该模型系统由具有疏水核心的四α-螺旋束支架组成。先前的工作表明,将空腔引入疏水核中可改善麻醉剂的结合亲和力。为了增强配体与蛋白质之间的分散力,将更具极化性的蛋氨酸侧链取代了亮氨酸。与含亮氨酸的束(K(d)= 0.69 +/- 0.06 mM)相比,所得的束变体对氟烷的结合具有更高的亲和力(K(d)= 0.20 +/- 0.01 mM)。用(14)​​C-氟烷进行光亲和标记揭示了两个肽中W15残基的优先标记,支持以下观点:通过结合麻醉剂进行的荧光淬灭既报告了结合能,也报告了配体在疏水核中的位置。对于两个束,酰胺氢交换的速率相似,这表明结合亲和力的差异不是由于蛋白质稳定性的改变。氟烷与两个四个α-螺旋束蛋白的结合稳定了天然的折叠构象。束的分子动力学模拟说明了疏水核的存在,其中包含两个W15残基。这些结果表明,除了堆积缺陷外,增强的分散力对于提供更高亲和力的麻醉剂结合位点可能也很重要。备选地,蛋氨酸取代对氟烷结合能的影响可能反映出对结合位点的改善的进入或结合口袋尺寸的变构优化。最后,折叠蛋白构象的优先稳定可能代表吸入麻醉作用的基本机制。

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