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What makes IgG binding domain of protein L fold up to native state: a simulation study with physical oriented energy functions coupled to topology induced terms

机译:蛋白质L折叠到原生状态的IgG结合结构域是什么:具有与拓扑诱导术语耦合的物理导向能量功能的模拟研究

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The folding pathways and mechanisms of IgG binding domain of protein L composed of 62 residues are simulated by an over-damped Langevin dynamics with a coarse-grained chain representation. Physical oriented effective energy functions (EEFs) are employed for sequence-specific interactions as well as topology induced energies to bias overall energies to native basin. We observed the preferential formation ofN terminal hairpin and the break of structural symmetry during folding. In the free energy profile calculated from equilibrium sampling and histogram method, it clearly shows two state folding scenario with transition state (TS). In the TS regime, N terminal hairpin already forms whereas C terminal hairpin and alpha helix are not structured yet. The predicted results are fully consistent with experimental data. Moreover, we found that hydrophobicity and secondary local propensity among many physical interactions determine the overall folding routes significantly by reduced model studies.
机译:由62个残基组成的蛋白质L的IgG结合结构域的折叠途径和机制通过具有粗粒链表示的过度阻尼的Langevin动态来模拟。物理取向有效能量功能(EEFS)用于序列特异性相互作用以及拓扑诱导的能量,以偏向天然盆地的总能量。我们观察到折叠期间的终端发夹的优先形成和结构对称的断裂。在由均衡采样和直方图方法计算的自由能谱中,它清楚地示出了具有过渡状态(TS)的两个状态折叠场景。在TS制度中,N终端发夹已经形成,而C终端发夹和alpha螺旋也没有结构。预测结果与实验数据完全一致。此外,我们发现许多物理相互作用之间的疏水性和次要局部倾向通过减少模型研究来显着决定了整体折叠途径。

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