首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >Response of dynamic structure to removal of a disulfide bond: normal mode refinement of C77A/C95A mutant of human lysozyme.
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Response of dynamic structure to removal of a disulfide bond: normal mode refinement of C77A/C95A mutant of human lysozyme.

机译:动态结构对二硫键去除的响应:人溶菌酶C77A / C95A突变体的正常模式提纯。

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摘要

In order to investigate the response of dynamic structure to removal of a disulfide bond, the dynamic structure of human lysozyme has been compared to its C77A/C95A mutant. The dynamic structures of the wild type and mutant are determined by normal mode refinement of 1.5-A-resolution X-ray data. The C77A/C95A mutant shows an increase in apparent fluctuations at most residues. However, most of the change originates from an increase in the external fluctuations, reflecting the effect of the mutation on the quality of crystals. The effects of disulfide bond removal on the internal fluctuations are almost exclusively limited to the mutation site at residue 77. No significant change in the correlation of the internal fluctuations is found in either the overall or local dynamics. This indicates that the disulfide bond does not have any substantial role to play in the dynamic structure. A comparison of the wild-type and mutant coordinates suggests that the disulfide bond does not prevent the 2 domains from parting from each other. Instead, the structural changes are characteristic of a cavity-creating mutation, where atoms surrounding the mutation site move cooperatively toward the space created by the smaller alanine side chain. Although this produces tighter packing, more than half of the cavity volume remains unoccupied, thus destabilizing the native state.
机译:为了研究动态结构对二硫键去除的响应,已将人溶菌酶的动态结构与其C77A / C95A突变体进行了比较。野生型和突变体的动态结构是通过1.5A分辨率X射线数据的常规模式优化确定的。 C77A / C95A突变体显示大多数残基的表观波动增加。但是,大多数变化源自外部波动的增加,反映出突变对晶体质量的影响。去除二硫键对内部波动的影响几乎只限于残基77处的突变位点。在整体或局部动力学中,内部波动的相关性均未发现明显变化。这表明二硫键在动力学结构中没有任何实质性的作用。野生型和突变体坐标的比较表明,二硫键不会阻止两个结构域彼此分开。取而代之的是,结构变化是产生腔的突变的特征,突变位点周围的原子协同朝着由较小的丙氨酸侧链产生的空间移动。尽管这会产生更紧密的堆积,但超过一半的腔体空间仍未被占用,从而破坏了原始状态的稳定性。

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