Protein stability for single substitution mutants and the extent of local compactness in the denatured state.

S Miyazawa, R L Jernigan
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引用次数: 61

Abstract

The stability changes caused by single amino acid substitutions are studied by a simple, empirical method which takes account of the free energy change in the compact denatured state as well as in the native state. The conformational free energy is estimated from effective inter-residue contact energies, as evaluated in our previous study. When this method is applied, with a simple assumption about the compactness of the denatured state, for single amino acid replacements at Glu49 of the tryptophan synthase alpha subunit and at Ile3 of bacteriophage T4 lysozyme, the estimates of the unfolding Gibbs free energy changes correlate well with observed values, especially for hydrophobic amino acids, and it also yields the same magnitudes of energy as the observed values for both proteins. When it is also applied for amino acid replacements at various positions to estimate the average number of contacts at each position in the denatured state from the observed value of unfolding free energy change, those values for replacements with Gly and Ala at the same residue position in staphylococcal nuclease correlate well with each other. The estimated numbers of contacts indicate that the protein is not fully expanded in the denatured state and also that the compact denatured state may have a substantially native-like topology, like the molten globule state, in that there is a weak correlation between the estimated average number of contacts at each residue position in the denatured state and the number of contacts in the native structure. These results provide some further evidence that the inter-residue contact energies as applied here (i) properly reflect actual inter-residue interactions and (ii) can be considered to be a pairwise hydrophobicity scale. Also, the results indicate that characterization of the denatured state is critical to understanding the folding process.

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单替代突变体的蛋白质稳定性和变性状态下的局部紧密度。
采用一种简单的经验方法研究了单氨基酸取代引起的稳定性变化,该方法考虑了致密变性态和天然态的自由能变化。构象自由能由有效残馀接触能估计,如我们先前的研究所评估的。当应用该方法时,对于色氨酸合成酶α亚基的Glu49和噬菌体T4溶菌酶的Ile3上的单个氨基酸替换,简单假设变性状态的紧密性,对吉布斯自由能变化的预估与观测值相吻合,特别是对疏水氨基酸,它也产生与两种蛋白质的观测值相同的能量值。当将其应用于不同位置的氨基酸置换时,通过观察到的展开自由能变化值来估计变性状态下每个位置的平均接触数时,葡萄球菌核酸酶中相同残基位置的Gly和Ala置换值具有很好的相关性。估计的接触数表明蛋白质在变性状态下没有完全膨胀,并且紧凑的变性状态可能具有本质上类似于天然结构的拓扑结构,如熔融球状态,因为在变性状态下每个残留位置的估计平均接触数与天然结构中的接触数之间存在弱相关性。这些结果进一步证明,这里应用的残基间接触能(i)正确地反映了残基间的实际相互作用,(ii)可以被认为是一对疏水性标度。此外,研究结果表明,表征变性状态对理解折叠过程至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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