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Dynamic properties of oligomers that characterize low-frequency normal modes

机译:表征低频正常模式的低聚物的动态特性

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摘要

Dynamics of oligomeric proteins (one trimer, two tetramers, and one hexamer) were studied by elastic network model-based normal mode analysis to characterize their large-scale concerted motions. First, the oligomer motions were simplified by considering rigid-body motions of individual subunits. The subunit motions were resolved into three components in a cylindrical coordinate system: radial, tangential, and axial ones. Single component is dominant in certain normal modes. However, more than one component is mixed in others. The subunits move symmetrically in certain normal modes and as a standing wave with several wave nodes in others. Secondly, special attention was paid to atoms on inter-subunit interfaces. Their displacement vectors were decomposed into intra-subunit deformative (internal) and rigid-body (external) motions in individual subunits. The fact that most of the cosines of the internal and external motion vectors were negative for the atoms on the inter-subunit interfaces, indicated their opposing movements. Finally, a structural network of residues defined for each normal mode was investigated; the network was constructed by connecting two residues in contact and moving coherently. The centrality measure “betweenness” of each residue was calculated for the networks. Several residues with significantly high betweenness were observed on the inter-subunit interfaces. The results indicate that these residues are responsible for oligomer dynamics. It was also observed that amino acid residues with significantly high betweenness were more conservative. This supports that the betweenness is an effective characteristic for identifying an important residue in protein dynamics.
机译:通过基于弹性网络模型的正态模式分析研究了寡聚蛋白(一个三聚体,两个四聚体和一个六聚体)的动力学,以表征它们的大规模协同运动。首先,通过考虑单个亚基的刚体运动简化了低聚物运动。亚单位运动被分解为圆柱坐标系中的三个部分:径向,切向和轴向。在某些正常模式下,单个成分占主导。但是,不止一种组分混合在其他组分中。这些子单元在某些法向模式下对称移动,并在其他波阵中以驻波的形式对称移动。其次,要特别注意亚基间界面上的原子。它们的位移向量被分解为单个亚基中的亚基内部变形(内部)运动和刚体(外部)运动。内部和外部运动矢量的大多数余弦对于亚基间界面上的原子都是负的事实,表明它们是相反的运动。最后,研究了为每个正常模式定义的残基结构网络;该网络是通过将两个残基接触并相干移动而构建的。计算了每个残基的中心度“中间性”。在亚基间的界面上观察到几个残基之间的间隔显着高。结果表明这些残基负责低聚物动力学。还观察到具有显着高中间性的氨基酸残基更为保守。这支持了中间性是鉴定蛋白质动力学中重要残基的有效特征。

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