de Meyer Frédérick Jean-Marie, Venturoli Maddalena, Smit Berend
Centre Européen de Calcul Atomique et Moléculaire, Ecole Normale Supérieure, Lyon, France.
Biophys J. 2008 Aug;95(4):1851-65. doi: 10.1529/biophysj.107.124164. Epub 2008 May 16.
Recent experimental results revealed that lipid-mediated interactions due to hydrophobic forces may be important in determining the protein topology after insertion in the membrane, in regulating the protein activity, in protein aggregation and in signal transduction. To gain insight into the lipid-mediated interactions between two intrinsic membrane proteins, we developed a mesoscopic model of a lipid bilayer with embedded proteins, which we studied with dissipative particle dynamics. Our calculations of the potential of mean force between transmembrane proteins show that hydrophobic forces drive long-range protein-protein interactions and that the nature of these interactions depends on the length of the protein hydrophobic segment, on the three-dimensional structure of the protein and on the properties of the lipid bilayer. To understand the nature of the computed potentials of mean force, the concept of hydrophilic shielding is introduced. The observed protein interactions are interpreted as resulting from the dynamic reorganization of the system to maintain an optimal hydrophilic shielding of the protein and lipid hydrophobic parts, within the constraint of the flexibility of the components. Our results could lead to a better understanding of several membrane processes in which protein interactions are involved.
最近的实验结果表明,由疏水作用力介导的脂质相互作用在决定蛋白质插入膜后的拓扑结构、调节蛋白质活性、蛋白质聚集以及信号转导方面可能起着重要作用。为了深入了解两种内在膜蛋白之间的脂质介导相互作用,我们构建了一个嵌入蛋白质的脂质双层介观模型,并采用耗散粒子动力学方法对其进行研究。我们对跨膜蛋白之间平均作用力势的计算表明,疏水作用力驱动长程蛋白质-蛋白质相互作用,且这些相互作用的性质取决于蛋白质疏水片段的长度、蛋白质的三维结构以及脂质双层的性质。为了理解所计算的平均作用力势的本质,引入了亲水性屏蔽的概念。观察到的蛋白质相互作用被解释为系统动态重组的结果,即在各组分灵活性的限制范围内,维持蛋白质和脂质疏水部分的最佳亲水性屏蔽。我们的结果可能有助于更好地理解涉及蛋白质相互作用的几种膜过程。