Department of Chemical and Biomolecular Engineering, University of Illinois Urbana-Champaign, Urbana, IL, 61801, USA.
Department of Chemistry, University of Illinois Urbana-Champaign, Urbana, IL, 61801, USA.
Nat Commun. 2024 Feb 28;15(1):1848. doi: 10.1038/s41467-024-46027-y.
With the diversity of lipid-protein interactions, any observed membrane protein dynamics or functions directly depend on the lipid bilayer selection. However, the implications of lipid bilayer choice are seldom considered unless characteristic lipid-protein interactions have been previously reported. Using molecular dynamics simulation, we characterize the effects of membrane embedding on plant aquaporin SoPIP2;1, which has no reported high-affinity lipid interactions. The regulatory impacts of a realistic lipid bilayer, and nine different homogeneous bilayers, on varying SoPIP2;1 dynamics are examined. We demonstrate that SoPIP2;1's structure, thermodynamics, kinetics, and water transport are altered as a function of each membrane construct's ensemble properties. Notably, the realistic bilayer provides stabilization of non-functional SoPIP2;1 metastable states. Hydrophobic mismatch and lipid order parameter calculations further explain how lipid ensemble properties manipulate SoPIP2;1 behavior. Our results illustrate the importance of careful bilayer selection when studying membrane proteins. To this end, we advise cautionary measures when performing membrane protein molecular dynamics simulations.
由于脂质-蛋白质相互作用的多样性,任何观察到的膜蛋白动力学或功能都直接取决于脂质双层的选择。然而,除非之前已经报道了特征脂质-蛋白质相互作用,否则很少考虑脂质双层选择的含义。我们使用分子动力学模拟,对没有报道的高亲和力脂质相互作用的植物水通道蛋白 SoPIP2;1 的膜嵌入效应进行了特征描述。研究了现实的脂质双层和 9 种不同的均匀双层对 SoPIP2;1 动力学变化的调节影响。我们证明,SoPIP2;1 的结构、热力学、动力学和水传输都随着每种膜结构的整体性质而发生变化。值得注意的是,现实的双层提供了非功能性 SoPIP2;1 亚稳态的稳定性。疏水性不匹配和脂质有序参数计算进一步解释了脂质整体性质如何操纵 SoPIP2;1 的行为。我们的结果说明了在研究膜蛋白时仔细选择双层的重要性。为此,我们建议在进行膜蛋白分子动力学模拟时采取谨慎措施。