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Investigation of the Binding Geometry of a Peripheral Membrane Protein

机译:外围膜蛋白结合几何的研究

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A growing number of modules including FYVE domains target key signaling proteins to membranes through specific recognition of lipid headgroups and hydrophobic insertion into bilayers.Despite the critical role of membrane insertion in the function of these modules,the structural mechanism of membrane docking and penetration remains unclear.In particular,the three-dimensional orientation of the inserted proteins with respect to the membrane surface is difficult to define quantitatively.Here,we determined the geometry of the micelle penetration of the early endosome antigen 1(EEA1)FYVE domain by obtaining NMR-derived restraints that correlate with the distances between protein backbone amides and spin-labeled probes.The 5-and 14-doxyl-phosphatidylcholine spin-labels were incorporated into dodecylphosphocholine(DPC)micelles,and the reduction of amide signal intensities of the FYVE domain due to paramagnetic relaxation enhancement was measured.The vector of the FYVE domain insertion was estimated relative to the molecular axis by minimizing the paramagnetic restraints obtained in phosphatidylinositol 3-phosphate(PI3P)-enriched micelles containing only DPC or mixed with phos-phatidylserine(PS).Additional distance restraints were obtained using a novel spin-label mimetic of PI-(3)P that contains a nitroxyl radical near the threitol group of the lipid.Conformational changes indicative of elongation of the membrane insertion loop(MIL)were detected upon micelle interaction,in which the hydrophobic residues of the loop tend to move deeper into the nonpolar core of micelles.The micelle insertion mechanism of the FYVE domain defined in this study is consistent with mutagenesis data and chemical shift perturbations and demonstrates the advantage of using the spin-label NMR approach for investigating the binding geometry by peripheral membrane proteins.
机译:越来越多的模块(包括FYVE域)通过特异性识别脂质头基和疏水性插入双层而将关键信号蛋白靶向膜。尽管膜插入在这些模块的功能中起着关键作用,但膜对接和渗透的结构机制仍不清楚特别是,插入的蛋白质相对于膜表面的三维取向很难定量确定。在这里,我们通过获得NMR-来确定早期内体抗原1(EEA1)FYVE域的胶束渗透的几何形状。衍生的约束条件与蛋白质骨架酰胺和自旋标记探针之间的距离有关。将5-和14-二氧基磷脂酰胆碱自旋标记物掺入十二烷基磷酸胆碱(DPC)胶束中,并降低了由于FYVE域引起的酰胺信号强度FYVE结构域插入的载体为est通过最小化富含磷脂酰肌醇3-磷酸(PI3P)的仅包含DPC或与磷脂酰丝氨酸(PS)混合的胶束中获得的顺磁约束而获得的距离限制。使用PI的新型自旋标记模拟物获得了其他距离约束-(3)P在脂质的苏糖醇基团附近包含一个硝基氧基。胶束相互作用时检测到表明膜插入环(MIL)伸长的构象变化,其中环的疏水残基倾向于向更深处移动在这项研究中定义的FYVE域的胶束插入机制与诱变数据和化学位移扰动相一致,并证明了使用自旋标记NMR方法研究外围膜蛋白的结合几何结构的优势。

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