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首页> 外文期刊>Chemistry and Physics of Lipids >Maximally asymmetric transbilayer distribution of anionic lipids alters the structure and interaction with lipids of an amyloidogenic protein dimer bound to the membrane surface
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Maximally asymmetric transbilayer distribution of anionic lipids alters the structure and interaction with lipids of an amyloidogenic protein dimer bound to the membrane surface

机译:阴离子脂质的最大不对称双分子层分布改变了与膜表面结合的淀粉样蛋白二聚体的结构和与脂质的相互作用

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We used molecular dynamics simulations to explore the effects of asymmetric transbilayer distribution of anionic phosphatidylserine (PS) lipids on the structure of a protein on the membrane surface and subsequent protein-lipid interactions. Our simulation systems consisted of an amyloidogenic, beta-sheet rich dimeric protein (D42) absorbed to the phosphatidylcholine (PC) leaflet, or protein-contact PC leaflet, of two membrane systems: a single-component PC bilayer and double PC/PS bilayers. The latter comprised of a stable but asymmetric transbilayer distribution of PS in the presence of counterions, with a 1-component PC leaflet coupled to a 1-component PS leaflet in each bilayer. The maximally asymmetric PC/PS bilayer had a non-zero transmembrane potential (TMP) difference and higher lipid order packing, whereas the symmetric PC bilayer had a zero TMP difference and lower lipid order packing under physiologically relevant conditions. Analysis of the adsorbed protein structures revealed weaker protein binding, more folding in the N-terminal domain, more aggregation of the N- and C-terminal domains and larger tilt angle of D42 on the PC leaflet surface of the PC/PS bilayer versus the PC bilayer. Also, analysis of protein-induced membrane structural disruption revealed more localized bilayer thinning in the PC/PS versus PC bilayer. Although the electric field profile in the non-protein-contact PS leaflet of the PC/PS bilayer differed significantly from that in the non-protein-contact PC leaflet of the PC bilayer, no significant difference in the electric field profile in the protein-contact PC leaflet of either bilayer was evident. We speculate that lipid packing has a larger effect on the surface adsorbed protein structure than the electric field for a maximally asymmetric PC/PS bilayer. Our results support the mechanism that the higher lipid packing in a lipid leaflet promotes stronger protein-protein but weaker protein-lipid interactions for a dimeric protein on membrane surfaces. (C) 2016 Elsevier Ireland Ltd. All rights reserved.
机译:我们使用分子动力学模拟来探索阴离子磷脂酰丝氨酸(PS)脂质的不对称双分子层分布对膜表面蛋白质结构以及随后的蛋白质-脂质相互作用的影响。我们的模拟系统由两个膜系统组成的吸收淀粉磷脂的胆碱(PC)小叶或与蛋白接触的PC小叶中吸收淀粉样蛋白的富含β-折叠的二聚体蛋白质(D42)组成:单组分PC双层和双层PC / PS双层。后者由在抗衡离子存在下PS稳定但不对称的跨双层分布组成,每个双层中都有1组分PC瓣叶与1组分PS瓣叶耦合。在生理相关条件下,最大不对称PC / PS双层具有非零跨膜电位(TMP)差异和较高的脂质有序堆积,而对称PC双层具有零TMP差异和较低的脂质有序堆积。吸附蛋白结构的分析显示,与PC / PS双层PC相比,PC / PS双层PC瓣叶表面的蛋白结合较弱,在N端结构域中折叠更多,在N和C端结构域中聚集更多,D42的倾斜角更大。 PC双层。同样,对蛋白质诱导的膜结构破坏的分析显示,与PC双层相比,PC / PS中的双层双层变薄。尽管PC / PS双层的非蛋白质接触PS小叶中的电场分布与PC双层的非蛋白质接触PC小叶中的电场分布有显着差异,但蛋白质-任一双层的接触式PC传单均显而易见。我们推测,对于最大不对称的PC / PS双层,脂质堆积对电场吸附的表面结构比电场具有更大的影响。我们的结果支持脂质小叶中较高的脂质堆积促进膜表面上的二聚体蛋白较强的蛋白质-蛋白质但较弱的蛋白质-脂质相互作用的机理。 (C)2016 Elsevier Ireland Ltd.保留所有权利。

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