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Phase Separation Behavior of Mixed Lipid Systems atNeutral and Low pH: Coarse-Grained Simulations with DMD/LIME

机译:混合脂质体系的相分离行为中性和低pH:使用DMD / LIME的粗粒度模拟

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摘要

We extend LIME, an intermediate resolution, implicit solvent model for phospholipids previously used in discontinuous molecular dynamics simulations of 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC) bilayer formation at 325 K, to the description of the geometry and energetics of 1,2-distearoyl-sn-glycero-3-phospho-l-serine (DSPS) and 1,2-dihenarachidoyl-sn-glycero-3-phosphocholine (21PC) and mixtures thereof at both neutral and low pH at 310 K. A multiscale modeling approach is used to calculate the LIME parameters from atomistic simulation data on a mixed DPPC/DSPS system at different pH values. In the model, 17 coarse-grained sites represent DSPS and 18 coarse-grained sites represent 21PC. Each of these coarse-grained sites is classified as 1 of 9 types. LIME/DMD simulations of equimolar bilayers show the following: (1) 21PC/DSPS bilayers with and without surface area restrictions separate faster at low pH than at neutral pH, (2) 21PC/DSPS systems separate at approximately the same rate regardless of whether they are subjected to surface area restrictions, and (3) bilayers with a molar ratio of 9:1 (21PC:DSPS) phase separateto form heterogeneous domains faster at low pH than at neutral pH.Our results are consistent with experimental findings of Sofou andco-workers (Bandekar et al. Mol. Pharmaceutics, 2013, 10, 152–160; Karve et al. Biomaterials, 2010, 31, 4409–4416) that more doxorubicin is released from 21PC/DSPS liposomes at lowpH than at neutral pH, presumably because greater phase separationis achieved at low pH than at neutral pH. These are the first molecular-levelsimulations of the phase separation in mixed lipid bilayers inducedby a change in pH.
机译:我们将LIME(先前用于325 K下1,2-二棕榈酰基-sn-甘油-3-磷酸胆碱(DPPC)双层形成的不连续分子动力学模拟的磷脂)的中分辨率隐式溶剂模型扩展到几何形状和1,310-中性和低pH下1,2-二硬脂酰基-sn-甘油-3-磷酸-1-丝氨酸(DSPS)和1,2-二苯并花生酰-sn-甘油-3-磷酸胆碱(21PC)的能量学及其混合物K.一种多尺度建模方法用于根据混合pH值不同的DPPC / DSPS系统上的原子模拟数据计算LIME参数。在该模型中,有17个粗粒度站点代表DSPS,有18个粗粒度站点代表21PC。这些粗粒度站点中的每一个都被分类为9种类型中的1种。等摩尔双层的LIME / DMD模拟显示以下内容:(1)具有和不具有表面积限制的21PC / DSPS双层在低pH下的分离速度要快于中性pH;(2)21PC / DSPS系统以大约相同的速率分离,无论是否它们受到表面积限制,并且(3)摩尔比为9:1(21PC:DSPS)的双层相分离在低pH下比在中性pH下形成异质域的速度更快。我们的结果与Sofou和同事(Bandekar等人,Mol。Pharmaceutics,2013,10,152–160; Karve等人,Biomaterials,2010,31,4409–4416),从21PC / DSPS脂质体中释放出的阿霉素量较低pH值比中性pH值大,大概是因为相分离更大在低pH值下比在中性pH值下可以达到。这些是第一个分子水平混合脂质双层中相分离的模拟通过改变pH值。

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