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Extension of the Highly Mobile Membrane Mimetic to Transmembrane Systems Through Customized in silico Solvents

机译:通过定制的硅溶剂将高流动性膜模拟物扩展到跨膜系统

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摘要

The mechanics of the protein-lipid interactions of transmembrane proteins are difficult to capture with conventional atomic molecular dynamics, due to the slow lateral diffusion of lipids restricting sampling to states near the initial membrane configuration. The highly mobile membrane mimetic (HMMM) model accelerates lipid dynamics by modeling the acyl tails nearest the membrane center as a fluid organic solvent while maintaining an atomic description of the lipid headgroups and short acyl tails. The HMMM has been applied to many peripheral protein systems, however the organic solvent used to date caused deformations in transmembrane proteins by intercalating into the protein and disrupting interactions between individual side chains.We ameliorate the effect of the solvent on transmembrane protein structure through the development of two new in silico Lennard-Jones solvents. The parameters for the new solvents were determined through an extensive parameter search in order to match the bulk properties of alkanes in a highly simplified model. Using these new solvents, we substantially improve the insertion free energy profiles of ten protein side chain analogs across the entire bilayer. In addition, we reduce the intercalation of solvent into transmembrane systems, resulting in native-like transmembrane protein structures from five different topological classes within a HMMM bilayer. The parameterization of the solvents, in addition to their computed physical properties are discussed. By combining high lipid lateral diffusion with intact transmembrane proteins, we foresee the developed solvents being useful to efficiently identify membrane composition inhomogeneities and lipid binding caused by the presence of membrane proteins.
机译:跨膜蛋白的蛋白质-脂质相互作用的机理很难用常规的原子分子动力学来捕获,这是因为脂质的缓慢横向扩散将样品限制在接近初始膜构型的状态。高流动性膜模拟物(HMMM)模型通过将最靠近膜中心的酰基尾部建模为流体有机溶剂来加速脂质动力学,同时保持对脂质头基和短酰基尾部的原子描述。 HMMM已应用于许多外围蛋白质系统,但是迄今为止,有机溶剂通过插入蛋白质中并破坏各个侧链之间的相互作用而引起跨膜蛋白质变形。我们通过开发来改善溶剂对跨膜蛋白质结构的影响两种新型硅酸Lennard-Jones溶剂。通过广泛的参数搜索来确定新溶剂的参数,以便在高度简化的模型中匹配烷烃的整体性质。使用这些新的溶剂,我们大大改善了整个双层中十个蛋白质侧链类似物的无插入能谱。此外,我们减少了溶剂跨膜系统的插入,从而在HMMM双层结构中产生了来自五个不同拓扑类别的天然类跨膜蛋白结构。除了计算的物理性质外,还讨论了溶剂的参数化。通过结合高度脂类横向扩散与完整的跨膜蛋白,我们可以预见,开发的溶剂可用于有效地鉴定膜蛋白的不均匀性和膜蛋白的存在所引起的脂质结合。

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