Department of Chemistry, University of Basel , Klingelbergstrasse 80, CH-4056 Basel, Switzerland.
Struct Dyn. 2016 Feb 17;3(1):012003. doi: 10.1063/1.4940228. eCollection 2016 Jan.
The structural dynamics of dimeric hemoglobin (HbI) from Scapharca inaequivalvis in different ligand-binding states is studied from atomistic simulations on the μs time scale. The intermediates are between the fully ligand-bound (R) and ligand-free (T) states. Tertiary structural changes, such as rotation of the side chain of Phe97, breaking of the Lys96-heme salt bridge, and the Fe-Fe separation, are characterized and the water dynamics along the R-T transition is analyzed. All these properties for the intermediates are bracketed by those determined experimentally for the fully ligand-bound and ligand-free proteins, respectively. The dynamics of the two monomers is asymmetric on the 100 ns timescale. Several spontaneous rotations of the Phe97 side chain are observed which suggest a typical time scale of 50-100 ns for this process. Ligand migration pathways include regions between the B/G and C/G helices and, if observed, take place in the 100 ns time scale.
从微秒时间尺度的原子模拟研究了来自 Scapharca inaequivalvis 的二聚血红蛋白(HbI)在不同配体结合状态下的结构动力学。这些中间态介于完全配体结合(R)和无配体(T)状态之间。特征描述了三级结构的变化,如 Phe97 侧链的旋转、Lys96-血红素盐桥的断裂以及 Fe-Fe 分离,并分析了沿 R-T 转变的水动力学。所有这些中间态的性质都分别被实验确定的完全配体结合和无配体蛋白所确定的性质所包围。在 100 ns 的时间尺度上,两个单体的动力学是不对称的。观察到 Phe97 侧链的几次自发旋转,这表明该过程的典型时间尺度为 50-100 ns。配体迁移途径包括 B/G 和 C/G 螺旋之间的区域,如果观察到,发生在 100 ns 的时间尺度内。