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人肌营养不良蛋白与阴离子膜脂质结合后的结构变化。

Human Dystrophin Structural Changes upon Binding to Anionic Membrane Lipids.

机构信息

Université de Rennes, Rennes, France; Institut de Génétique et Développement de Rennes, CNRS UMR 6290, Rennes, France; Laboratoire Léon-Brillouin, UMR 12 CEA-CNRS, Université Paris-Saclay, CEA-Saclay, Gif-sur-Yvette, France; SWING Beamline, Synchrotron SOLEIL, L'Orme des Merisiers, Saint-Aubin, Gif-sur-Yvette, France.

Université de Rennes, Rennes, France; Institut de Génétique et Développement de Rennes, CNRS UMR 6290, Rennes, France.

出版信息

Biophys J. 2018 Oct 2;115(7):1231-1239. doi: 10.1016/j.bpj.2018.07.039. Epub 2018 Aug 17.

Abstract

Scaffolding proteins play important roles in supporting the plasma membrane (sarcolemma) of muscle cells. Among them, dystrophin strengthens the sarcolemma through protein-lipid interactions, and its absence due to gene mutations leads to the severe Duchenne muscular dystrophy. Most of the dystrophin protein consists of a central domain made of 24 spectrin-like coiled-coil repeats (R). Using small angle neutron scattering (SANS) and the contrast variation technique, we specifically probed the structure of the three first consecutive repeats 1-3 (R1-3), a part of dystrophin known to physiologically interact with membrane lipids. R1-3 free in solution was compared to its structure adopted in the presence of phospholipid-based bicelles. SANS data for the protein/lipid complexes were obtained with contrast-matched bicelles under various phospholipid compositions to probe the role of electrostatic interactions. When bound to anionic bicelles, large modifications of the protein three-dimensional structure were detected, as revealed by a significant increase of the protein gyration radius from 42 ± 1 to 60 ± 4 Å. R1-3/anionic bicelle complexes were further analyzed by coarse-grained molecular dynamics simulations. From these studies, we report an all-atom model of R1-3 that highlights the opening of the R1 coiled-coil repeat when bound to the membrane lipids. This model is totally in agreement with SANS and click chemistry/mass spectrometry data. We conclude that the sarcolemma membrane anchoring that occurs during the contraction/elongation process of muscles could be ensured by this coiled-coil opening. Therefore, understanding these structural changes may help in the design of rationalized shortened dystrophins for gene therapy. Finally, our strategy opens up new possibilities for structure determination of peripheral and integral membrane proteins not compatible with different high-resolution structural methods.

摘要

支架蛋白在支持肌肉细胞膜(肌膜)方面发挥着重要作用。其中,肌营养不良蛋白通过蛋白-脂质相互作用增强肌膜,由于基因突变导致其缺失会导致严重的杜氏肌营养不良症。肌营养不良蛋白的大部分由中央结构域组成,由 24 个类似血影蛋白的卷曲螺旋重复(R)组成。使用小角中子散射(SANS)和对比变化技术,我们专门探测了三个连续重复 1-3(R1-3)的结构,这是肌营养不良蛋白中已知与膜脂生理性相互作用的一部分。与存在磷脂双脂体时的结构相比,我们比较了在溶液中自由的 R1-3 的结构。使用具有匹配对比度的双脂体,在各种磷脂组成下获得了蛋白质/脂质复合物的 SANS 数据,以探测静电相互作用的作用。当与阴离子双脂体结合时,检测到蛋白质三维结构的大的修饰,表明蛋白质回转半径从 42 ± 1 显著增加到 60 ± 4 Å。通过粗粒分子动力学模拟进一步分析了 R1-3/阴离子双脂体复合物。从这些研究中,我们报告了 R1-3 的全原子模型,该模型突出了当与膜脂质结合时 R1 卷曲螺旋重复的打开。该模型完全符合 SANS 和点击化学/质谱数据。我们得出结论,肌肉收缩/伸长过程中发生的肌膜锚定可以通过这种卷曲螺旋的打开来保证。因此,理解这些结构变化可能有助于设计用于基因治疗的合理化缩短的肌营养不良蛋白。最后,我们的策略为不能与不同高分辨率结构方法兼容的外周和整合膜蛋白的结构测定开辟了新的可能性。

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