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非局部相互作用是导致葡萄球菌核酸酶三级结构形成的原因。

Nonlocal interactions are responsible for tertiary structure formation in staphylococcal nuclease.

机构信息

Graduate School of Materials Science, Nara Institute of Science and Technology, Nara, Japan.

出版信息

Biophys J. 2010 Feb 17;98(4):678-86. doi: 10.1016/j.bpj.2009.10.048.

Abstract

Rapid molecular collapse mediated by nonlocal interactions is believed to be a crucial event for protein folding. To investigate the role of nonlocal interactions in tertiary structure formation, we performed a nonlocal interaction substitution mutation analysis on staphylococcal nuclease (SNase). Y54 and I139 of wild-type (WT) SNase and Delta140-149 were substituted by cysteine to form intramolecular disulfide bonds, respectively called WT-SS and Delta140-149-SS. Under physiological conditions, the reduced form of Delta140-149-SS appears to assume a denatured structure; in contrast, the oxidized form of Delta140-149-SS forms a native-like structure. From this result, we conclude that the C-terminal region participates in a nonlocal interaction that is indispensable for the native structure. Although the oxidized form of WT-SS assumes a more compact denatured structure under acidic conditions than the WT, the kinetic measurements reveal that the refolding reactions of both the reduced and oxidized forms of WT-SS are similar to those of the WT, suggesting that an intact nonlocal interaction is established within the dead time (22 ms). On the basis of these results, we propose that the native nonlocal contact established at the early stage of the folding process facilitates further secondary structure formation.

摘要

非局部相互作用介导的快速分子崩溃被认为是蛋白质折叠的关键事件。为了研究非局部相互作用在三级结构形成中的作用,我们对枯草溶菌素核酸酶(SNase)进行了非局部相互作用取代突变分析。野生型(WT)SNase 的 Y54 和 I139 以及 Delta140-149 分别被半胱氨酸取代以形成分子内二硫键,分别称为 WT-SS 和 Delta140-149-SS。在生理条件下,Delta140-149-SS 的还原形式似乎呈现变性结构;相比之下,Delta140-149-SS 的氧化形式形成类似天然的结构。从这个结果中,我们得出结论,C 末端区域参与了对天然结构不可或缺的非局部相互作用。尽管在酸性条件下,氧化形式的 WT-SS 比 WT 呈现更紧凑的变性结构,但动力学测量表明,WT-SS 的还原和氧化形式的复性反应与 WT 的相似,表明在死时间(22ms)内建立了完整的非局部相互作用。基于这些结果,我们提出在折叠过程的早期形成的天然非局部接触促进了进一步的二级结构形成。

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