...
首页> 外文期刊>ACS Omega >Interfacial Water Structure at Zwitterionic Membrane/Water Interface: The Importance of Interactions between Water and Lipid Carbonyl Groups
【24h】

Interfacial Water Structure at Zwitterionic Membrane/Water Interface: The Importance of Interactions between Water and Lipid Carbonyl Groups

机译:两性离子膜/水界面的界面水结构:水和脂质羰基之间相互作用的重要性

获取原文

摘要

In this work, atomistic molecular dynamics (MD) simulations of palmitoyl-oleoyl-phosphatidylcholine (POPC) bilayer were carried out to investigate the effect of water models on membrane dipole potential, which is primarily associated with the preferential orientation of molecular dipoles at the membrane–water interface. We discovered that the overestimation of the dipole potential by the TIPS3P water model can be effectively reduced by the TIP4P water model. On the one hand, the TIP4P water model decreases the negative contribution of lipid to the dipole potential through influencing the orientation of lipid headgroups. On the other hand, the TIP4P water model reduces the positive contribution of water to the dipole potential by increasing the preference of H-down orientation (the water dipole orients toward the bilayer center). Interestingly, the TIP4P water model affects the orientation of interfacial water molecules more obviously than that of lipid headgroups, leading to the decrease in the dipole potential. Furthermore, the MD results revealed that the water close to the positively charged choline (namely, N-associated water) prefers the H-down orientation while the water around the negatively charged phosphate (namely, P-associated water) favors the H-up orientation, in support of recent experimental and MD studies. However, interfacial water molecules are more strongly influenced by the phosphate groups than by the choline groups, resulting in the net H-up orientation (the water dipole orients toward the bilayer center) in the region of lipid headgroups. In addition, it is intriguing that the preference of H-up orientation decreases when water molecules penetrate more deeply into the lipid bilayer. This is attributed to the counteracting effect of lipid carbonyl groups, and the effect varies with the lipid chains (oleoyl and palmitoyl chains), suggesting the important role of lipid carbonyl groups.
机译:在这项工作中,进行了棕榈酰-O10oyl-磷脂酰胆碱(POPC)双层的原子分子动力学(MD)模拟,以研究水模型对膜偶极电位的影响,其主要与膜上分子偶极子的优先取向相关 - 水界面。我们发现,Tip4P水模型可以有效地减少提示3P水模型的偶极电位的高估。一方面,通过影响脂质头组的取向,Tip4P水模型通过影响脂质头组的取向降低了脂质对偶极电位的负贡献。另一方面,通过增加H-Down取向的偏好(水偶极子朝向双层中心的水偶极器或者朝向双层中心)来降低水对偶极电位的正贡献。有趣的是,Tip4P水模型比脂质头组更明显地影响界面水分子的取向,导致偶极电位的降低。此外,MD结果表明,靠近带正电荷的胆碱(即,N相关水)的水更喜欢在带负电荷的磷酸盐(即,p-相关水)周围的水中的H-Down取向方向,支持最近的实验和MD研究。然而,界面水分子受磷酸基团的影响比胆碱基团更强烈地影响,导致脂质标题区域中的净H-UP取向(水偶极子朝向双层中心)。此外,当水分子更深地渗透到脂质双层时,诱使H-UP取向的偏好降低。这归因于脂质羰基的抵抗作用,并且脂质链(油棕榈和棕榈酰基链)变化,表明脂质羰基的重要作用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号