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豆蔻酰化蛋白与脂膜的结合受与极性头基团区域相互作用的影响。

Binding of a Myristoylated Protein to the Lipid Membrane Influenced by Interactions with the Polar Head Group Region.

机构信息

Faculty of Chemistry, Biological and Chemical Research Centre , University of Warsaw , ul. Żwirki i Wigury 101 , 02-089 Warsaw , Poland.

出版信息

Langmuir. 2018 Nov 20;34(46):14022-14032. doi: 10.1021/acs.langmuir.8b02265. Epub 2018 Nov 8.

Abstract

Many cytoplasmic proteins contain a hydrophobic acyl chain, which facilitates protein binding to cell membranes. Hydrophobic interactions between the exposed acyl chain of the protein and hydrocarbon chains of lipids in the cell membrane are the driving force for this specific lipid-protein interaction. Recent studies point out that in addition to hydrophobic interactions the charge-charge and charge-dipole interactions between the polar head groups and basic amino acids contribute significantly to the binding process. Recoverin possesses a myristoyl chain at the N-terminus. In the presence of Ca ions, the protein undergoes structural rearrangements, leading to the extrusion of the myristoyl chain, facilitating the protein binding to the membrane. In this work, we investigate the impact of interactions between the polar head group region of lipid molecules and recoverin which binds to the model membrane. The interaction with a planar lipid bilayer composed of phosphatidylcholine and cholesterol with myristoylated and nonmyristoylated recoverin is studied by in situ polarization modulation infrared reflection absorption spectroscopy. The binding of recoverin to the lipid bilayer depends on the transmembrane potential, indicating that the orientation of the permanent surface dipole in the supramolecular assembly of the lipid membrane influences the protein attachment to the membrane surface. Analysis of the amide I' mode indicates that the orientation of recoverin bound to the lipid bilayer is independent of the presence of myristoyl chain in the protein and of the folding of the protein into the tense or relaxed state. In contrast, it changes as a function of the membrane potential. At positive transmembrane potentials, the α-helical fragments of recoverin are oriented predominantly parallel to the bilayer surface. This orientation facilitates the insertion of the acyl chain of the protein into the hydrophobic region of the bilayer. At negative transmembrane potentials, the α-helical fragments of recoverin change their orientation with respect to the membrane surface, which is followed by the removal of the myristoyl chain from the membrane.

摘要

许多细胞质蛋白含有疏水性酰基链,这有利于蛋白质与细胞膜结合。蛋白质暴露的酰基链与细胞膜中脂质的烃链之间的疏水相互作用是这种特定脂质-蛋白质相互作用的驱动力。最近的研究指出,除了疏水相互作用之外,极性头基团和碱性氨基酸之间的电荷-电荷和电荷-偶极相互作用对结合过程也有重要贡献。恢复蛋白在 N 端具有豆蔻酰链。在钙离子存在下,蛋白质发生结构重排,导致豆蔻酰链的挤出,促进蛋白质与膜结合。在这项工作中,我们研究了脂质分子的极性头基团区域与结合到模型膜上的恢复蛋白之间相互作用的影响。通过原位极化调制红外反射吸收光谱研究了由磷脂酰胆碱和胆固醇组成的平面脂质双层与豆蔻酰化和非豆蔻酰化恢复蛋白的相互作用。恢复蛋白与脂质双层的结合取决于跨膜电位,表明脂质膜超分子组装中永久表面偶极的取向影响蛋白质与膜表面的附着。酰胺 I' 模式的分析表明,与脂质双层结合的恢复蛋白的取向与蛋白质中豆蔻酰链的存在以及蛋白质折叠成紧张或松弛状态无关,而是与膜电位有关。在正跨膜电位下,恢复蛋白的α-螺旋片段主要平行于双层表面取向。这种取向有利于蛋白质的酰基链插入双层的疏水区。在负跨膜电位下,恢复蛋白的α-螺旋片段相对于膜表面的取向发生变化,随后豆蔻酰链从膜中去除。

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