Ye Shixin, Strzalka Joseph, Churbanova Inna Y, Zheng Songyan, Johansson Jonas S, Blasie J Kent
Department of Chemistry, Department of Anesthesiology, University of Pennsylvania, Philadelphia, Pennsylvania.
Biophys J. 2004 Dec;87(6):4065-74. doi: 10.1529/biophysj.104.051045. Epub 2004 Oct 1.
Earlier work demonstrated that a water-soluble four-helix bundle protein designed with a cavity in its nonpolar core is capable of binding the volatile anesthetic halothane with near-physiological affinity (0.7 mM Kd). To create a more relevant, model membrane protein receptor for studying the physicochemical specificity of anesthetic binding, we have synthesized a new protein that builds on the anesthetic-binding, hydrophilic four-helix bundle and incorporates a hydrophobic domain capable of ion-channel activity, resulting in an amphiphilic four-helix bundle that forms stable monolayers at the air/water interface. The affinity of the cavity within the core of the bundle for volatile anesthetic binding is decreased by a factor of 4-3.1 mM Kd as compared to its water-soluble counterpart. Nevertheless, the absence of the cavity within the otherwise identical amphiphilic peptide significantly decreases its affinity for halothane similar to its water-soluble counterpart. Specular x-ray reflectivity shows that the amphiphilic protein orients vectorially in Langmuir monolayers at higher surface pressure with its long axis perpendicular to the interface, and that it possesses a length consistent with its design. This provides a successful starting template for probing the nature of the anesthetic-peptide interaction, as well as a potential model system in structure/function correlation for understanding the anesthetic binding mechanism.
早期研究表明,一种设计为在其非极性核心具有空腔的水溶性四螺旋束蛋白能够以接近生理亲和力(0.7 mM解离常数)结合挥发性麻醉剂氟烷。为了构建一个更具相关性的模型膜蛋白受体来研究麻醉剂结合的物理化学特异性,我们合成了一种新蛋白,该蛋白基于具有麻醉剂结合能力的亲水性四螺旋束构建,并整合了一个具有离子通道活性的疏水域,从而形成一种两亲性四螺旋束,它能在空气/水界面形成稳定的单分子层。与水溶性对应物相比,束核心内空腔对挥发性麻醉剂结合的亲和力降低了4倍,降至3.1 mM解离常数。然而,在其他方面相同的两亲性肽中缺少该空腔,会显著降低其对氟烷的亲和力,这与其水溶性对应物类似。镜面X射线反射率表明,两亲性蛋白在较高表面压力下在Langmuir单分子层中矢量取向,其长轴垂直于界面,并且其长度与其设计一致。这为探究麻醉剂 - 肽相互作用的本质提供了一个成功的起始模板,也是用于理解麻醉剂结合机制的结构/功能相关性的潜在模型系统。