Martinez-Seara Hector, Róg Tomasz, Pasenkiewicz-Gierula Marta, Vattulainen Ilpo, Karttunen Mikko, Reigada Ramon
Physical Chemistry Department, University of Barcelona, 08028 Barcelona, Spain.
J Phys Chem B. 2007 Sep 27;111(38):11162-8. doi: 10.1021/jp071894d. Epub 2007 Aug 31.
Phosphatidylcholines (PCs) are among the most common phospholipids in plasma membranes. Their structural and dynamic properties are known to be strongly affected by unsaturation of lipid hydrocarbon chains, yet the role of the exact positions of the double bonds is poorly understood. In this work, we shed light on this matter through atomic-scale molecular dynamics simulations of eight different one-component lipid bilayers comprised of PCs with 18 carbons in their acyl chains. By introducing a single double bond in each acyl chain and varying its position in a systematic manner, we elucidate the effects of a double bond on various membrane properties. Studies in the fluid phase show that a number of membrane properties depend on the double bond position. In particular, when the double bond in an acyl chain is located close to the membrane-water interface, the area per lipid is considerably larger than that found for a saturated lipid. Further, when the double bond is shifted from the interfacial region toward membrane center, the area per lipid is observed to increase and have a maximum when the double bond is in the middle of the chain. Beyond this point, the surface area decreases systematically as the double bond approaches membrane center. These changes in area per lipid are accompanied by corresponding changes in membrane thickness and ordering of the chains. Further changes are observed in the tilt angles of the chains, membrane hydration together with changes in the number of gauche conformations, and direct head group interactions. All of these effects can be associated with changes in acyl chain conformations and local effects of the double bond on the packing of the surrounding atoms.
磷脂酰胆碱(PCs)是质膜中最常见的磷脂之一。已知它们的结构和动态特性会受到脂质烃链不饱和度的强烈影响,然而双键的确切位置所起的作用却鲜为人知。在这项工作中,我们通过对由酰基链中含有18个碳原子的PCs组成的八种不同单组分脂质双层进行原子尺度的分子动力学模拟,来阐明这一问题。通过在每个酰基链中引入一个双键并系统地改变其位置,我们阐明了双键对各种膜特性的影响。在流体相中的研究表明,许多膜特性取决于双键的位置。特别是,当酰基链中的双键靠近膜 - 水界面时,每个脂质的面积比饱和脂质的面积大得多。此外,当双键从界面区域向膜中心移动时,观察到每个脂质的面积增加,并且当双键位于链的中间时达到最大值。超过这一点,随着双键接近膜中心,表面积会系统地减小。每个脂质面积的这些变化伴随着膜厚度和链的有序性的相应变化。在链的倾斜角度、膜水合作用以及gauche构象数量的变化以及直接的头部基团相互作用方面还观察到了进一步的变化。所有这些效应都可能与酰基链构象的变化以及双键对周围原子堆积的局部效应有关。