首页> 美国卫生研究院文献>Biophysical Journal >Structural and dynamic properties of the homodimeric hemoglobin from Scapharca inaequivalvis Thr-72--Ile mutant: molecular dynamics simulation low temperature visible absorption spectroscopy and resonance Raman spectroscopy studies.
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Structural and dynamic properties of the homodimeric hemoglobin from Scapharca inaequivalvis Thr-72--Ile mutant: molecular dynamics simulation low temperature visible absorption spectroscopy and resonance Raman spectroscopy studies.

机译:Scapharca inaequivalvis Thr-72- Ile突变体同型二聚体血红蛋白的结构和动力学性质:分子动力学模拟低温可见吸收光谱和共振拉曼光谱研究。

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摘要

Molecular dynamics simulations, low temperature visible absorption spectroscopy, and resonance Raman spectroscopy have been performed on a mutant of the Scapharca inaequivalvis homodimeric hemoglobin, where residue threonine 72, at the subunit interface, has been substituted by isoleucine. Molecular dynamics simulation indicates that in the Thr-72-->Ile mutant several residues that have been shown to play a role in ligand binding fluctuate around orientations and distances similar to those observed in the x-ray structure of the CO derivative of the native hemoglobin, although the overall structure remains in the T state. Visible absorption spectroscopy data indicate that in the deoxy form the Soret band is less asymmetric in the mutant than in the native protein, suggesting a more planar heme structure; moreover, these data suggest a similar heme-solvent interaction in both the liganded and unliganded states of the mutant protein, at variance with that observed in the native protein. The "conformation sensitive" band III of the deoxy mutant protein is shifted to lower energy by >100 cm-1 with respect to the native one, about one-half of that observed in the low temperature photoproducts of both proteins, indicating a less polar or more hydrophobic heme environment. Resonance Raman spectroscopy data show a slight shift of the iron-proximal histidine stretching mode of the deoxy mutant toward lower frequency with respect to the native protein, which can be interpreted in terms of either a change in packing of the phenyl ring of Phe-97, as also observed from the simulation, or a loss of water in the heme pocket. In line with this latter interpretation, the number of water molecules that dynamically enters the intersubunit interface, as calculated by the molecular dynamics simulation, is lower in the mutant than in the native protein. The 10-ns photoproduct for the carbonmonoxy mutant derivative has a higher iron-proximal histidine stretching frequency than does the native protein. This suggests a subnanosecond relaxation that is slowed in the mutant, consistent with a stabilization of the R structure. Taken together, the molecular dynamics and the spectroscopic data indicate that the higher oxygen affinity displayed by the Thr-72-->Ile mutant is mainly due to a local perturbation in the dimer interface that propagates to the heme region, perturbing the polarity of the heme environment and propionate interactions. These changes are consistent with a destabilization of the T state and a stabilization of the R state in the mutant relative to the native protein.
机译:已经对Scapharca inaequivalvis同二聚体血红蛋白的突变体进行了分子动力学模拟,低温可见吸收光谱和共振拉曼光谱,其中亚单位界面上的苏氨酸72残基已被异亮氨酸取代。分子动力学模拟表明,在Thr-72-> Ile突变体中,已证明在配体结合中起作用的几个残基围绕方向和距离波动,类似于在天然CO衍生物的X射线结构中观察到的方向和距离。血红蛋白,尽管总体结构保持在T状态。可见吸收光谱数据表明,与天然蛋白相比,脱氧形式的Soret带在突变体中的不对称性更低,这表明其血红素结构更平坦。此外,这些数据表明,在突变蛋白的配体和未配体状态下,血红素-溶剂之间的相互作用都相似,与天然蛋白中观察到的有所不同。脱氧突变蛋白的“构象敏感”带III相对于天然能量转移到较低的能量> 100 cm-1,约为两种蛋白质低温光产物中观察到的能量的一半,表明极性较小或更疏水的血红素环境。共振拉曼光谱数据显示脱氧突变体的铁近端组氨酸延伸模式相对于天然蛋白质向较低频率的轻微偏移,这可以用Phe-97苯环的堆积变化来解释如从模拟中观察到的那样,或血红素袋中的水丢失。与后一种解释一致,通过分子动力学模拟计算,突变体中动态进入亚基界面的水分子数量要少于天然蛋白。碳单氧基突变体衍生物的10 ns光产物比天然蛋白具有更高的铁近端组氨酸拉伸频率。这表明亚纳秒松弛在突变体中减慢了,这与R结构的稳定相一致。总之,分子动力学和光谱数据表明,Thr-72-> Ile突变体显示出更高的氧亲和力,主要是由于二聚体界面中的局部扰动传播到血红素区域,扰乱了血红素的极性。血红素环境和丙酸酯相互作用。这些变化与突变体相对于天然蛋白质的T状态的不稳定和R状态的稳定一致。

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