首页> 外文会议>Bioinformatics and Biomedical Engineering , 2009. ICBBE 2009 >SMD Simulations of Shear Loading Induced Dissociation of P-Selectin/PSGL-1 Complex
【24h】

SMD Simulations of Shear Loading Induced Dissociation of P-Selectin/PSGL-1 Complex

机译:剪切载荷诱导P-选择素/ PSGL-1复合物解离的SMD模拟

获取原文

摘要

Selectin/ligand interactions mediate the tethering and rolling processes of blood cells on vascular surfaces. It has been demonstrated that flow is required during this adhesion process. But the molecular mechanism, e.g. how the shear loading from the hydrodynamic environment of the circulation influences the rupture of selectin/ligand complex, is still unclear. In this study, we simulated the dissociation process of P-selectin/PSGL-1 complex under shear loading at the atomic level. The shear field was established by stretching the top layer of water molecules using SMD method. The dynamic evolvement of microstructure of P-LE/SGP-3 complex, the minimal functional unit of P-selectin/PSGL-1 complex, for different shear velocity was studied. The simulation results indicated that the extension in P- LE occurred before the dissociation of P-LE/SGP-3 complex. During the dissociation process, two anti-parallel beta-sheets in EGF and hydrogen bonds at the interface of EGF-Lec domains were broken, but the structure of Lec domain remained unchanged. Under the same initial inclination angle of molecular complex relative to flow direction, structural destruction time decreased but dissociation speed of the complex increased along with the increase of shear velocity. For the same shear velocity, the dissociation of the complex was speeded up when decreasing the initial inclination angle. This work provide a insight into understand the structural bases for the rupture of P-selectin/PSGL-1 bond at atomic level.
机译:选择素/配体相互作用介导血管表面上血细胞的束缚和滚动过程。已经证明在该粘合过程中需要流动。但是分子机制例如尚不清楚来自循环水动力环境的剪切负荷如何影响选择素/配体复合物的破裂。在这项研究中,我们模拟了P-选择素/ PSGL-1配合物在剪切载荷下在原子水平下的解离过程。通过使用SMD方法拉伸水分子的顶层来建立剪切场。研究了P-LE / SGP-3复合物(P-选择素/ PSGL-1复合物的最小功能单元)在不同剪切速度下的微观结构的动态演变。模拟结果表明P-LE中的延伸发生在P-LE / SGP-3复合物解离之前。在解离过程中,EGF-Lec结构域界面处的EGF和氢键两个反平行的β-折叠被破坏,但Lec结构域的结构保持不变。在相同的分子配合物相对于流动方向的初始倾角下,结构破坏时间减少,但随着剪切速度的增加,配合物的解离速度增加。对于相同的剪切速度,当减小初始倾斜角时,复合物的离解速度加快。这项工作提供了了解原子级P-选择素/ PSGL-1键断裂的结构基础的见解。

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