Tobias D J, Mar W, Blasie J K, Klein M L
Department of Chemistry, University of Pennsylvania, Philadelphia 19104-6323, USA.
Biophys J. 1996 Dec;71(6):2933-41. doi: 10.1016/S0006-3495(96)79497-3.
Molecular dynamics simulations have been used to investigate the behavior of the peripheral membrane protein, cytochrome c, covalently tethered to hydrophobic (methyl-terminated) and hydrophilic (thiol-terminated) self-assembled monolayers (SAMs). The simulations predict that the protein will undergo minor structural changes when it is tethered to either surface, and the structures differ qualitatively on the two surfaces: the protein is less spherical on the hydrophilic SAM where the polar surface residues reach out to interact with the SAM surface. The protein is completely excluded from the hydrophobic SAM but partially dissolves in the hydrophilic SAM. Consequently, the surface of the thiol-terminated SAM is considerably less ordered than that of the methyl-terminated SAM, although a comparable, high degree of order is maintained in the bulk of both SAMs: the chains exhibit collective tilts in the nearest-neighbor direction at angles of 20 degrees and 17 degrees with respect to the surface normal in the hydrophobic and the hydrophilic SAMs, respectively. On the hydrophobic SAM the protein is oriented so that the heme plane is more nearly parallel to the surface, whereas on the hydrophilic surface it is more nearly perpendicular. The secondary structure of the protein, dominated by alpha helices, is not significantly affected, but the structure of the loops as well as the helix packing is slightly modified by the surfaces.
分子动力学模拟已被用于研究共价连接到疏水(甲基封端)和亲水(硫醇封端)自组装单分子层(SAMs)上的外周膜蛋白细胞色素c的行为。模拟预测,当该蛋白连接到任何一个表面时,都会发生微小的结构变化,并且在两个表面上的结构在性质上有所不同:在亲水SAM上,蛋白质的球形度较低,极性表面残基会伸出与SAM表面相互作用。蛋白质完全被疏水SAM排斥,但部分溶解于亲水SAM中。因此,硫醇封端的SAM表面的有序程度比甲基封端的SAM表面低得多,尽管在两种SAM的主体中都保持了相当高的有序度:在疏水和亲水SAM中,链分别相对于表面法线在最近邻方向上呈现20度和17度的集体倾斜。在疏水SAM上,蛋白质的取向使得血红素平面更接近与表面平行,而在亲水表面上则更接近垂直。以α螺旋为主的蛋白质二级结构没有受到显著影响,但环的结构以及螺旋堆积会受到表面的轻微修饰。