论文标题

从局部疏水性分析中的T0和R4围绕T0的水动力学

Water Dynamics around T0 vs. R4 of Hemoglobin from Local Hydrophobicity Analysis

论文作者

Salehi, Seyedeh Maryam, Pezzella, Marco, Willard, Adam, Meuwly, Markus, Karplus, Martin

论文摘要

根据分子动力学模拟,分析了T $ _0 $和R $ _4 $构象取代的四聚体HB周围的局部水合。分析$α_1β_2$和$α_2β_1$接口的所有残基的局部疏水性(LH),负责第四纪T $ \ rightarrow $ r转变,该转变是在MWC模型中编码的,并与MOWC的早期计算进行了比较,并确定了量化的量化(SASA)的早期计算(使SASA的量化方面),这两个方面都可以清晰地(SASA)。局部疏水性量化了界面处的水分子的存在和结构,而``掩埋的表面''报告了有关溶剂的可用空间。对于HB冻结在其T $ _0 $和R $ _4 $中的模拟,LH和埋入表面之间的相关系数分别为0.36和0.44,但如果使用95 \%置信区间,则相关系数大大增加。对于大多数残留物,在接口处的残留物中,HB冷冻和灵活的LH变化几乎没有变化,但对于一些精选的残留物而言,THR41 $α$,Tyr42 $α$,Tyr140 $α$,Trp37 $β$,GLU101 $β$(对于T $ _0 $)和THR38 $α$α$,Tyr42 $α$α$,Tyr142 $β$,Tyr142 $β$,Tyr142 $β$,TYR142 $β$,TYR142 $α$,TYR142 $α$,TYR142 $α$α$,Tyr142 r $ _4 $)。界面处的水分子数量增加了$ \ sim 25 $ \%的t $ _0 $$ \ rightarrow $ r $ _4 $,这与早期的测量相一致。由于发现水合对于蛋白质功能至关重要,因此很明显,水合在变构中也起着至关重要的作用。

The local hydration around tetrameric Hb in its T$_0$ and R$_4$ conformational substates is analyzed based on molecular dynamics simulations. Analysis of the local hydrophobicity (LH) for all residues at the $α_1 β_2$ and $α_2 β_1$ interfaces, responsible for the quaternary T$\rightarrow$R transition, which is encoded in the MWC model, as well as comparison with earlier computations of the solvent accessible surface area (SASA), makes clear that the two quantities measure different aspects of hydration. Local hydrophobicity quantifies the presence and structure of water molecules at the interface whereas ``buried surface'' reports on the available space for solvent. For simulations with Hb frozen in its T$_0$ and R$_4$ states the correlation coefficient between LH and buried surface is 0.36 and 0.44, respectively, but it increases considerably if the 95 \% confidence interval is used. The LH with Hb frozen and flexible changes little for most residues at the interfaces but is significantly altered for a few select ones, which are Thr41$α$, Tyr42$α$, Tyr140$α$, Trp37$β$, Glu101$β$ (for T$_0$) and Thr38$α$, Tyr42$α$, Tyr140$α$ (for R$_4$). The number of water molecules at the interface is found to increase by $\sim 25$ \% for T$_0$$\rightarrow$R$_4$ which is consistent with earlier measurements. Since hydration is found to be essential to protein function, it is clear that hydration also plays an essential role in allostery.

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